Engineering heterogeneous semiconductors for solar water splitting

There is a growing interest in the conversion of water and solar energy into clean and renewable H2 fuels using earth-abundant materials due to the depletion of fossil fuel and its serious environmental impact. This critical review highlights some key factors influencing the efficiency of heterogeneous semiconductors for solar water splitting (i.e. improved charge separation and transfer, promoted optical absorption, optimized band gap position, lowered cost and toxicity, and enhanced stability and water splitting kinetics). Moreover, different engineering strategies, such as band structure engineering, micro/nano engineering, bionic engineering, co-catalyst engineering, surface/interface engineering of heterogeneous semiconductors are summarized and discussed thoroughly. The synergistic effects of the different engineering strategies, especially for the combination of co-catalyst loading and other strategies seem to be more promising for the development of highly efficient photocatalysts. A thorough understanding of electron and hole transfer thermodynamics and kinetics at the fundamental level is also important for elucidating the key efficiency-limiting step and designing highly efficient solar-to-fuel conversion systems. In this review, we provide not only a summary of the recent progress in the different engineering strategies of heterogeneous semiconductors for solar water splitting, but also some potential opportunities for designing and optimizing solar cells, photocatalysts for the reduction of CO2 and pollutant degradation, and electrocatalysts for water splitting.

[1]  Li-ping Zhu,et al.  A full compositional range for a (Ga1-x Zn x )(N1-x O x ) nanostructure: high efficiency for overall water splitting and optical properties. , 2015, Small.

[2]  Jiaguo Yu,et al.  Enhanced visible-light photocatalytic H2 production by Znx Cd1-x S modified with earth-abundant nickel-based cocatalysts. , 2014, ChemSusChem.

[3]  B. Xiang,et al.  Direct growth of porous crystalline NiCo2O4 nanowire arrays on a conductive electrode for high-performance electrocatalytic water oxidation , 2014 .

[4]  Say Chye Joachim Loo,et al.  Noble-metal-free g-C3N4/Ni(dmgH)2 composite for efficient photocatalytic hydrogen evolution under visible light irradiation , 2014 .

[5]  Xun Wang,et al.  Rapid synthesis of mesoporous NixCo3−x(PO4)2 hollow shells showing enhanced electrocatalytic and supercapacitor performance , 2014 .

[6]  M. Jaroniec,et al.  Earth-abundant cocatalysts for semiconductor-based photocatalytic water splitting. , 2014, Chemical Society reviews.

[7]  K. Domen,et al.  Recent advances in semiconductors for photocatalytic and photoelectrochemical water splitting. , 2014, Chemical Society reviews.

[8]  W. Shangguan,et al.  Promotion effect of nickel loaded on CdS for photocatalytic H 2 production in lactic acid solution , 2014 .

[9]  B. Hwang,et al.  The synergetic effect of graphene on Cu2O nanowire arrays as a highly efficient hydrogen evolution photocathode in water splitting , 2014 .

[10]  Dan Xiao,et al.  Three-dimensional amorphous tungsten-doped nickel phosphide microsphere as an efficient electrocatalyst for hydrogen evolution , 2014 .

[11]  Bin Zhang,et al.  Nanoporous hollow transition metal chalcogenide nanosheets synthesized via the anion-exchange reaction of metal hydroxides with chalcogenide ions. , 2014, ACS nano.

[12]  Lisong Xiao,et al.  Graphene Acting as Surface Phase Junction in Anatase–Graphene–Rutile Heterojunction Photocatalysts for H2 Production from Water Splitting , 2014 .

[13]  Xiaoqiang An,et al.  Sandwich SrTiO3/TiO2/H-Titanate nanofiber composite photocatalysts for efficient photocatalytic hydrogen evolution , 2014 .

[14]  Ji‐Hyun Jang,et al.  Efficient photoelectrochemical water splitting of nanostructured hematite on a three-dimensional nanoporous metal electrode , 2014 .

[15]  Chang Ming Li,et al.  Controlled synthesis of FeP nanorod arrays as highly efficient hydrogen evolution cathode , 2014 .

[16]  Jiaguo Yu,et al.  Direct Z-scheme anatase/rutile bi-phase nanocomposite TiO 2 nanofiber photocatalyst with enhanced photocatalytic H 2 -production activity , 2014 .

[17]  T. Xie,et al.  Highly Efficient CdS/WO3 Photocatalysts: Z-Scheme Photocatalytic Mechanism for Their Enhanced Photocatalytic H2 Evolution under Visible Light , 2014 .

[18]  D. Astruc,et al.  Nanogold plasmonic photocatalysis for organic synthesis and clean energy conversion. , 2014, Chemical Society reviews.

[19]  Jiaguo Yu,et al.  Morphology-dependent photocatalytic H2-production activity of CdS , 2014 .

[20]  Junwang Tang,et al.  Visible light-driven pure water splitting by a nature-inspired organic semiconductor-based system. , 2014, Journal of the American Chemical Society.

[21]  C. Mullins,et al.  Electrodeposition of Ni-doped FeOOH oxygen evolution reaction catalyst for photoelectrochemical water splitting , 2014 .

[22]  Jiaguo Yu,et al.  Two-dimensional layered composite photocatalysts. , 2014, Chemical communications.

[23]  T. Xie,et al.  Enhanced photocatalytic H₂ generation on cadmium sulfide nanorods with cobalt hydroxide as cocatalyst and insights into their photogenerated charge transfer properties. , 2014, ACS applied materials & interfaces.

[24]  P. He,et al.  Highly efficient photocatalytic hydrogen evolution by nickel phosphide nanoparticles from aqueous solution. , 2014, Chemical communications.

[25]  Jimmy C. Yu,et al.  g-C3N4 quantum dots: direct synthesis, upconversion properties and photocatalytic application. , 2014, Chemical communications.

[26]  Yongsheng Zhu,et al.  Cobalt sulfide modified graphitic carbon nitride semiconductor for solar hydrogen production , 2014 .

[27]  Qian Liu,et al.  Closely Interconnected Network of Molybdenum Phosphide Nanoparticles: A Highly Efficient Electrocatalyst for Generating Hydrogen from Water , 2014, Advanced materials.

[28]  Fan Zuo,et al.  Branched WO3 Nanosheet Array with Layered C3N4 Heterojunctions and CoOx Nanoparticles as a Flexible Photoanode for Efficient Photoelectrochemical Water Oxidation , 2014, Advanced materials.

[29]  Jingdong Lin,et al.  TiO2 promoted by two different non-noble metal cocatalysts for enhanced photocatalytic H2 evolution , 2014 .

[30]  Yi Luo,et al.  A Unique Semiconductor–Metal–Graphene Stack Design to Harness Charge Flow for Photocatalysis , 2014, Advanced materials.

[31]  Chenghua Sun,et al.  Constructing a Metallic/Semiconducting TaB2/Ta2O5 Core/Shell Heterostructure for Photocatalytic Hydrogen Evolution , 2014 .

[32]  M. Jaroniec,et al.  All‐Solid‐State Z‐Scheme Photocatalytic Systems , 2014, Advanced materials.

[33]  De-jun Wang,et al.  Surface treatment with Al3+on a Ti-doped α-Fe2O3 nanorod array photoanode for efficient photoelectrochemical water splitting , 2014 .

[34]  Y. Chabal,et al.  Graphitic carbon nitride nano-emitters on silicon: a photoelectrochemical heterojunction composed of earth-abundant materials for enhanced evolution of hydrogen , 2014 .

[35]  E. Aydil,et al.  Doping high-surface-area mesoporous TiO2 microspheres with carbonate for visible light hydrogen production , 2014 .

[36]  Xiaoming Ge,et al.  Molybdenum phosphide as an efficient electrocatalyst for the hydrogen evolution reaction , 2014 .

[37]  Xiaoqiang An,et al.  The effect of the Ga content on the photocatalytic hydrogen evolution of CuIn1−xGaxS2 nanocrystals , 2014 .

[38]  Can Li,et al.  A tantalum nitride photoanode modified with a hole-storage layer for highly stable solar water splitting. , 2014, Angewandte Chemie.

[39]  Zhengxiao Guo,et al.  Highly Efficient Photocatalytic H2 Evolution from Water using Visible Light and Structure-Controlled Graphitic Carbon Nitride** , 2014, Angewandte Chemie (International Ed. in English).

[40]  K. Domen,et al.  Core/Shell Structured La- and Rh-Codoped SrTiO3 as a Hydrogen Evolution Photocatalyst in Z-Scheme Overall Water Splitting under Visible Light Irradiation , 2014 .

[41]  Zhiliang Wang,et al.  Solar-to-hydrogen efficiency exceeding 2.5% achieved for overall water splitting with an all earth-abundant dual-photoelectrode. , 2014, Physical chemistry chemical physics : PCCP.

[42]  Vincent Artero,et al.  Mimicking hydrogenases: From biomimetics to artificial enzymes , 2014 .

[43]  Junwang Tang,et al.  1D Co‐Pi Modified BiVO4/ZnO Junction Cascade for Efficient Photoelectrochemical Water Cleavage , 2014 .

[44]  Yun Jeong Hwang,et al.  Morphology control of one-dimensional heterojunctions for highly efficient photoanodes used for solar water splitting , 2014 .

[45]  Jiaguo Yu,et al.  Visible-light photocatalytic hydrogen production activity of ZnIn2 S4 microspheres using carbon quantum dots and platinum as dual co-catalysts. , 2014, Chemistry, an Asian journal.

[46]  Jingpei Huo,et al.  Facile preparation of yttrium and aluminum co-doped ZnO via a sol–gel route for photocatalytic hydrogen production , 2014 .

[47]  Jiaguo Yu,et al.  Ternary NiS/ZnxCd1‐xS/Reduced Graphene Oxide Nanocomposites for Enhanced Solar Photocatalytic H2‐Production Activity , 2014 .

[48]  Gongxuan Lu,et al.  The roles of various Ni species over SnO2 in enhancing the photocatalytic properties for hydrogen generation under visible light irradiation , 2014 .

[49]  Yang Xu,et al.  Photoelectrodes based upon Mo:BiVO4 inverse opals for photoelectrochemical water splitting. , 2014, ACS nano.

[50]  Xiaoqiang An,et al.  Cu(2)ZnSnS(4)-Pt and Cu(2)ZnSnS(4)-Au heterostructured nanoparticles for photocatalytic water splitting and pollutant degradation. , 2014, Journal of the American Chemical Society.

[51]  Nicholas J Porubsky,et al.  A survey of diverse earth abundant oxygen evolution electrocatalysts showing enhanced activity from Ni–Fe oxides containing a third metal , 2014 .

[52]  Xin Guo,et al.  Cu2O Decorated with Cocatalyst MoS2 for Solar Hydrogen Production with Enhanced Efficiency under Visible Light , 2014 .

[53]  Ji-Wook Jang,et al.  An exceptionally facile method to produce layered double hydroxides on a conducting substrate and their application for solar water splitting without an external bias , 2014 .

[54]  Wei Xiao,et al.  Enhanced photocatalytic CO₂-reduction activity of anatase TiO₂ by coexposed {001} and {101} facets. , 2014, Journal of the American Chemical Society.

[55]  Jinhua Ye,et al.  MoS2/graphene cocatalyst for efficient photocatalytic H2 evolution under visible light irradiation. , 2014, ACS nano.

[56]  K. Maeda Photocatalytic properties of rutile TiO2 powder for overall water splitting , 2014 .

[57]  Jiaguo Yu,et al.  g-C3N4-Based Photocatalysts for Hydrogen Generation. , 2014, The journal of physical chemistry letters.

[58]  D. Zhao,et al.  Ordered Macro‐/Mesoporous Anatase Films with High Thermal Stability and Crystallinity for Photoelectrocatalytic Water‐Splitting , 2014 .

[59]  Matthew R. Shaner,et al.  Amorphous TiO2 coatings stabilize Si, GaAs, and GaP photoanodes for efficient water oxidation , 2014, Science.

[60]  Yong Qin,et al.  Enhanced photoelectrochemical water splitting performance of TiO2 nanotube arrays coated with an ultrathin nitrogen-doped carbon film by molecular layer deposition. , 2014, Nanoscale.

[61]  A. Manivannan,et al.  Solar hydrogen generation by a CdS-Au-TiO2 sandwich nanorod array enhanced with Au nanoparticle as electron relay and plasmonic photosensitizer. , 2014, Journal of the American Chemical Society.

[62]  C. Mullins,et al.  Synthesis of BiVO4 nanoflake array films for photoelectrochemical water oxidation , 2014 .

[63]  Hui‐Ming Cheng,et al.  CdS–mesoporous ZnS core–shell particles for efficient and stable photocatalytic hydrogen evolution under visible light , 2014 .

[64]  Xinchen Wang,et al.  Two dimensional conjugated polymers with enhanced optical absorption and charge separation for photocatalytic hydrogen evolution , 2014 .

[65]  R. Marschall,et al.  Tetragonal tungsten bronze-type nanorod photocatalysts with tunnel structures: Ta substitution for Nb and overall water splitting , 2014 .

[66]  Nathan S Lewis,et al.  Highly active electrocatalysis of the hydrogen evolution reaction by cobalt phosphide nanoparticles. , 2014, Angewandte Chemie.

[67]  Abdullah M. Asiri,et al.  Self-supported nanoporous cobalt phosphide nanowire arrays: an efficient 3D hydrogen-evolving cathode over the wide range of pH 0-14. , 2014, Journal of the American Chemical Society.

[68]  S. Kaneco,et al.  Z-scheme photocatalytic hydrogen production over WO3/g-C3N4 composite photocatalysts , 2014 .

[69]  Tianquan Lian,et al.  Hole removal rate limits photodriven H2 generation efficiency in CdS-Pt and CdSe/CdS-Pt semiconductor nanorod-metal tip heterostructures. , 2014, Journal of the American Chemical Society.

[70]  E. Palomares,et al.  Efficient and limiting reactions in aqueous light-induced hydrogen evolution systems using molecular catalysts and quantum dots. , 2014, Journal of the American Chemical Society.

[71]  Miaofang Chi,et al.  Fully alloyed Ag/Au nanospheres: combining the plasmonic property of Ag with the stability of Au. , 2014, Journal of the American Chemical Society.

[72]  B. Pan,et al.  Oxygen vacancies confined in ultrathin indium oxide porous sheets for promoted visible-light water splitting. , 2014, Journal of the American Chemical Society.

[73]  T. Tachikawa,et al.  Single-particle study of Pt-modified Au nanorods for plasmon-enhanced hydrogen generation in visible to near-infrared region. , 2014, Journal of the American Chemical Society.

[74]  Xu‐Bing Li,et al.  Photocatalytic hydrogen evolution from glycerol and water over nickel-hybrid cadmium sulfide quantum dots under visible-light irradiation. , 2014, ChemSusChem.

[75]  Shean-Jen Chen,et al.  Nitrogen‐Doped Graphene Oxide Quantum Dots as Photocatalysts for Overall Water‐Splitting under Visible Light Illumination , 2014, Advanced materials.

[76]  Z. Mi,et al.  Tuning the surface Fermi level on p-type gallium nitride nanowires for efficient overall water splitting , 2014, Nature Communications.

[77]  Yao Zheng,et al.  Hydrogen evolution by a metal-free electrocatalyst , 2014, Nature Communications.

[78]  F. Toma,et al.  Efficient and sustained photoelectrochemical water oxidation by cobalt oxide/silicon photoanodes with nanotextured interfaces. , 2014, Journal of the American Chemical Society.

[79]  N. Lewis,et al.  Photoelectrochemical behavior of hierarchically structured Si/WO3 core-shell tandem photoanodes. , 2014, Nano letters.

[80]  Ping Zhang,et al.  A novel composite of TiO2 nanotubes with remarkably high efficiency for hydrogen production in solar-driven water splitting , 2014 .

[81]  R. Marschall,et al.  Non-metal doping of transition metal oxides for visible-light photocatalysis , 2014 .

[82]  A. Bard,et al.  Improvement of Hematite as Photocatalyst by Doping with Tantalum , 2014 .

[83]  Shuru Chen,et al.  Bottom-up synthesis of high surface area mesoporous crystalline silicon and evaluation of its hydrogen evolution performance , 2014, Nature Communications.

[84]  R. Amal,et al.  TiO2-supported copper nanoparticles prepared via ion exchange for photocatalytic hydrogen production , 2014 .

[85]  Zhongnan Guo,et al.  Enhanced photocatalytic H2 evolution over micro-SiC by coupling with CdS under visible light irradiation , 2014 .

[86]  J. Barber,et al.  Improving the efficiency of hematite nanorods for photoelectrochemical water splitting by doping with manganese. , 2014, ACS applied materials & interfaces.

[87]  Xudong Wang,et al.  Highly Efficient Capillary Photoelectrochemical Water Splitting Using Cellulose Nanofiber‐Templated TiO2 Photoanodes , 2014, Advanced materials.

[88]  L. De Gioia,et al.  The oxidative inactivation of FeFe hydrogenase reveals the flexibility of the H-cluster. , 2014, Nature chemistry.

[89]  Moreno de Respinis,et al.  Time-resolved observations of water oxidation intermediates on a cobalt oxide nanoparticle catalyst. , 2014, Nature chemistry.

[90]  Shihe Yang,et al.  Coupling surface plasmon resonance of gold nanoparticles with slow-photon-effect of TiO2 photonic crystals for synergistically enhanced photoelectrochemical water splitting , 2014 .

[91]  M. Jensen,et al.  Designer titania-supported Au-Pd nanoparticles for efficient photocatalytic hydrogen production. , 2014, ACS nano.

[92]  O. Prezhdo,et al.  Instantaneous generation of charge-separated state on TiO₂ surface sensitized with plasmonic nanoparticles. , 2014, Journal of the American Chemical Society.

[93]  Molly B. Wilker,et al.  Electron transfer kinetics in CdS nanorod-[FeFe]-hydrogenase complexes and implications for photochemical H₂ generation. , 2014, Journal of the American Chemical Society.

[94]  K. Domen,et al.  Hydrogen evolution from water using Ag(x)Cu(1-x)GaSe2 photocathodes under visible light. , 2014, Physical chemistry chemical physics : PCCP.

[95]  A. Kudo,et al.  BiVO4–Ru/SrTiO3:Rh composite Z-scheme photocatalyst for solar water splitting , 2014 .

[96]  L. Yin,et al.  Light irradiation-assisted synthesis of ZnO-CdS/reduced graphene oxide heterostructured sheets for efficient photocatalytic H2 evolution. , 2014, Chemical communications.

[97]  W. You,et al.  L-Cystine-assisted hydrothermal synthesis of Mn1−xCdxS solid solutions with hexagonal wurtzite structure for efficient photocatalytic hydrogen evolution under visible light irradiation , 2014 .

[98]  Kyoung-Shin Choi,et al.  Nanoporous BiVO4 Photoanodes with Dual-Layer Oxygen Evolution Catalysts for Solar Water Splitting , 2014, Science.

[99]  Sang Jun Kim,et al.  Efficient Co–Fe layered double hydroxide photocatalysts for water oxidation under visible light , 2014 .

[100]  Xinglong Wu,et al.  Amorphous Nickel-Based Thin Film As a Janus Electrocatalyst for Water Splitting , 2014 .

[101]  Guan Zhang,et al.  Visible light driven photocatalysis mediated via ligand-to-metal charge transfer (LMCT): an alternative approach to solar activation of titania , 2014 .

[102]  Chongyin Yang,et al.  Effective nonmetal incorporation in black titania with enhanced solar energy utilization , 2014 .

[103]  Junwang Tang,et al.  Enhanced photoelectrochemical water splitting by nanostructured BiVO4–TiO2 composite electrodes , 2014 .

[104]  Jiaguo Yu,et al.  Microwave-assisted hydrothermal synthesis of graphene based Au–TiO2 photocatalysts for efficient visible-light hydrogen production , 2014 .

[105]  Qianqian Hu,et al.  Enhanced hydrogen production by water splitting using Cu-doped TiO2 film with preferred (0 0 1) orientation , 2014 .

[106]  K. Parida,et al.  Fabrication of In2O3 modified ZnO for enhancing stability, optical behaviour, electronic properties and photocatalytic activity for hydrogen production under visible light , 2014 .

[107]  H. Nemoto,et al.  A visible light responsive rhodium and antimony-codoped SrTiO3 powdered photocatalyst loaded with an IrO2 cocatalyst for solar water splitting. , 2014, Chemical communications.

[108]  Allen J. Bard,et al.  Amorphous FeOOH oxygen evolution reaction catalyst for photoelectrochemical water splitting. , 2014, Journal of the American Chemical Society.

[109]  David G. Evans,et al.  NiTi-Layered double hydroxides nanosheets as efficient photocatalysts for oxygen evolution from water using visible light , 2014 .

[110]  Xin Li,et al.  Topological morphology conversion towards SnO2/SiC hollow sphere nanochains with efficient photocatalytic hydrogen evolution. , 2014, Chemical communications.

[111]  Jin-Young Jung,et al.  Long-term durable silicon photocathode protected by a thin Al2O3/SiOx layer for photoelectrochemical hydrogen evolution , 2014 .

[112]  Clare E. Rowland,et al.  In situ optical and structural studies on photoluminesence quenching in CdSe/CdS/Au heterostructures. , 2014, Journal of the American Chemical Society.

[113]  G. Lu,et al.  Photocatalytic hydrogen production in a noble-metal-free system catalyzed by in situ grown molybdenum sulfide catalyst , 2014 .

[114]  K. Domen,et al.  Enhancing photocatalytic activity of LaTiO2N by removal of surface reconstruction layer. , 2014, Nano letters.

[115]  Liejin Guo,et al.  Co3O4 quantum dots: reverse micelle synthesis and visible-light-driven photocatalytic overall water splitting. , 2014, Chemical communications.

[116]  Xiaolin Zheng,et al.  Simultaneously efficient light absorption and charge separation in WO3/BiVO4 core/shell nanowire photoanode for photoelectrochemical water oxidation. , 2014, Nano letters.

[117]  Slobodan Mitrovic,et al.  Discovering Ce-rich oxygen evolution catalysts, from high throughput screening to water electrolysis , 2014 .

[118]  C. Ziegler,et al.  Crystalline carbon nitride nanosheets for improved visible-light hydrogen evolution. , 2014, Journal of the American Chemical Society.

[119]  K. Domen,et al.  Interface engineering in nanocarbon–Ta2O5 hybrid photocatalysts , 2014 .

[120]  Matthew R. Shaner,et al.  Photoelectrochemistry of core–shell tandem junction n–p^+-Si/n-WO_3 microwire array photoelectrodes , 2014 .

[121]  Z. Zou,et al.  Cathodic shift of onset potential for water oxidation on a Ti4+ doped Fe2O3 photoanode by suppressing the back reaction , 2014 .

[122]  Jiaguo Yu,et al.  Enhanced visible-light photocatalytic activity of plasmonic Ag and graphene co-modified Bi2WO6 nanosheets. , 2014, Physical chemistry chemical physics : PCCP.

[123]  Jiaguo Yu,et al.  Enhanced photocatalytic hydrogen-production performance of graphene-Zn(x)Cd(1-x)S composites by using an organic S source. , 2014, Chemistry.

[124]  C. M. Araujo,et al.  Photocatalytic hydrogen production with visible light over Mo and Cr-doped BiNb(Ta)O4 , 2014 .

[125]  James R. McKone,et al.  Will Solar-Driven Water-Splitting Devices See the Light of Day? , 2014 .

[126]  Yongdan Li,et al.  Photocatalytic overall water splitting under visible light over an In–Ni–Ta–O–N solid solution without an additional cocatalyst , 2014 .

[127]  Michael Grätzel,et al.  Hydrogen evolution from a copper(I) oxide photocathode coated with an amorphous molybdenum sulphide catalyst , 2014, Nature Communications.

[128]  Li Li,et al.  Silicon/hematite core/shell nanowire array decorated with gold nanoparticles for unbiased solar water oxidation. , 2014, Nano letters.

[129]  G. Rohrer,et al.  Photocatalysts with internal electric fields. , 2014, Nanoscale.

[130]  T. Peng,et al.  Highly Asymmetric Phthalocyanine as a Sensitizer of Graphitic Carbon Nitride for Extremely Efficient Photocatalytic H2 Production under Near-Infrared Light , 2014 .

[131]  J. Durrant,et al.  Versatile Photocatalytic Systems for H2 Generation in Water Based on an Efficient DuBois-Type Nickel Catalyst , 2013, Journal of the American Chemical Society.

[132]  N. English,et al.  Defects are needed for fast photo-induced electron transfer from a nanocrystal to a molecule: time-domain ab initio analysis. , 2013, Journal of the American Chemical Society.

[133]  Xu‐Bing Li,et al.  An Exceptional Artificial Photocatalyst, Nih‐CdSe/CdS Core/Shell Hybrid, Made In Situ from CdSe Quantum Dots and Nickel Salts for Efficient Hydrogen Evolution , 2013, Advanced materials.

[134]  Matthew R. Shaner,et al.  Enhanced Stability and Activity for Water Oxidation in Alkaline Media with Bismuth Vanadate Photoelectrodes Modified with a Cobalt Oxide Catalytic Layer Produced by Atomic Layer Deposition , 2013 .

[135]  Alexander J. Cowan,et al.  Efficient Suppression of Electron–Hole Recombination in Oxygen-Deficient Hydrogen-Treated TiO2 Nanowires for Photoelectrochemical Water Splitting , 2013, The journal of physical chemistry. C, Nanomaterials and interfaces.

[136]  B. Pan,et al.  Controllable disorder engineering in oxygen-incorporated MoS2 ultrathin nanosheets for efficient hydrogen evolution. , 2013, Journal of the American Chemical Society.

[137]  J. Jasinski,et al.  Tungsten oxide-coated copper oxide nanowire arrays for enhanced activity and durability with photoelectrochemical water splitting , 2013 .

[138]  H. Dai,et al.  High-Performance Silicon Photoanodes Passivated with Ultrathin Nickel Films for Water Oxidation , 2013, Science.

[139]  J. Turner A Nickel Finish Protects Silicon Photoanodes for Water Splitting , 2013, Science.

[140]  B. Hong,et al.  N-doped monolayer graphene catalyst on silicon photocathode for hydrogen production , 2013 .

[141]  Chongyin Yang,et al.  Core-shell nanostructured "black" rutile titania as excellent catalyst for hydrogen production enhanced by sulfur doping. , 2013, Journal of the American Chemical Society.

[142]  K. Domen,et al.  Photocatalytic oxygen evolution using BaNbO2N modified with cobalt oxide under photoexcitation up to 740 nm , 2013 .

[143]  J. Long,et al.  Electrodeposited cobalt-sulfide catalyst for electrochemical and photoelectrochemical hydrogen generation from water. , 2013, Journal of the American Chemical Society.

[144]  Adam C. Nielander,et al.  Photoelectrochemical behavior of n-type Si(111) electrodes coated with a single layer of graphene. , 2013, Journal of the American Chemical Society.

[145]  Wei Zhang,et al.  A Facile Method to Improve the Photocatalytic and Lithium‐Ion Rechargeable Battery Performance of TiO2 Nanocrystals , 2013 .

[146]  Xu‐Bing Li,et al.  Chitosan confinement enhances hydrogen photogeneration from a mimic of the diiron subsite of [FeFe]-hydrogenase , 2013, Nature Communications.

[147]  K. Domen,et al.  Core/Shell photocatalyst with spatially separated co-catalysts for efficient reduction and oxidation of water. , 2013, Angewandte Chemie.

[148]  S. Jiao,et al.  Cobalt-bilayer catalyst decorated Ta3N5 nanorod arrays as integrated electrodes for photoelectrochemical water oxidation , 2013 .

[149]  Tao Yu,et al.  A co-catalyst-loaded Ta(3)N(5) photoanode with a high solar photocurrent for water splitting upon facile removal of the surface layer. , 2013, Angewandte Chemie.

[150]  J. Barber,et al.  Artificial photosynthetic hydrogen evolution over g-C3N4 nanosheets coupled with cobaloxime. , 2013, Physical chemistry chemical physics : PCCP.

[151]  Jiaguo Yu,et al.  Efficient visible-light photocatalytic hydrogen evolution and enhanced photostability of core/shell CdS/g-C3N4 nanowires. , 2013, ACS applied materials & interfaces.

[152]  T. Do,et al.  Design of water-soluble CdS–titanate–nickel nanocomposites for photocatalytic hydrogen production under sunlight , 2013 .

[153]  O. Terasaki,et al.  Cobalt phosphate-modified barium-doped tantalum nitride nanorod photoanode with 1.5% solar energy conversion efficiency , 2013, Nature Communications.

[154]  H. Irie,et al.  A visible-light-induced overall water-splitting photocatalyst: conduction-band-controlled silver tantalate. , 2013, Chemical communications.

[155]  S. Apte,et al.  Novel nanocrystalline zinc silver antimonate (ZnAg3SbO4): an efficient & ecofriendly visible light photocatalyst with enhanced hydrogen generation , 2013 .

[156]  Changcun Han,et al.  In situ synthesis of cobalt–phosphate (Co–Pi) modified g-C3N4 photocatalysts with enhanced photocatalytic activities , 2013 .

[157]  S. Fukuzumi,et al.  Bioinspired Photocatalytic Water Reduction and Oxidation with Earth-Abundant Metal Catalysts , 2013 .

[158]  A. Das,et al.  Photogeneration of hydrogen from water using CdSe nanocrystals demonstrating the importance of surface exchange , 2013, Proceedings of the National Academy of Sciences.

[159]  X. Jiao,et al.  Photocatalytic water splitting of surfactant-free fabricated high surface area NaTaO3 nanocrystals , 2013 .

[160]  Jiajing Zhou,et al.  Immobilizing CdS quantum dots and dendritic Pt nanocrystals on thiolated graphene nanosheets toward highly efficient photocatalytic H2 evolution. , 2013, Nanoscale.

[161]  Bin Zhang,et al.  Synthesis of ultrathin CdS nanosheets as efficient visible-light-driven water splitting photocatalysts for hydrogen evolution. , 2013, Chemical communications.

[162]  E. Reisner,et al.  Photocatalytic Hydrogen Evolution with a Hydrogenase in a Mediator-Free System under High Levels of Oxygen** , 2013, Angewandte Chemie.

[163]  S. Ogale,et al.  Quantum dot CdS coupled Cd2SnO4 photoanode with high photoelectrochemical water splitting efficiency , 2013 .

[164]  Chongyin Yang,et al.  Visible-light photocatalytic, solar thermal and photoelectrochemical properties of aluminium-reduced black titania , 2013 .

[165]  Nathan S. Lewis,et al.  An analysis of the optimal band gaps of light absorbers in integrated tandem photoelectrochemical water-splitting systems , 2013 .

[166]  Arne Thomas,et al.  Doping carbons beyond nitrogen: an overview of advanced heteroatom doped carbons with boron, sulphur and phosphorus for energy applications , 2013 .

[167]  Jae Sung Lee,et al.  Single-crystalline, wormlike hematite photoanodes for efficient solar water splitting , 2013, Scientific Reports.

[168]  Rony S. Khnayzer,et al.  Robust cuprous phenanthroline sensitizer for solar hydrogen photocatalysis. , 2013, Journal of the American Chemical Society.

[169]  Jimmy C. Yu,et al.  Pt3Co-loaded CdS and TiO2 for photocatalytic hydrogen evolution from water , 2013 .

[170]  Han Yang,et al.  Unidirectional suppression of hydrogen oxidation on oxidized platinum clusters , 2013, Nature Communications.

[171]  Zhen He,et al.  Self-biased solar-microbial device for sustainable hydrogen generation. , 2013, ACS nano.

[172]  Jinghai Liu,et al.  Dispersed conductive polymer nanoparticles on graphitic carbon nitride for enhanced solar-driven hydrogen evolution from pure water. , 2013, Nanoscale.

[173]  Liejin Guo,et al.  Twin-induced one-dimensional homojunctions yield high quantum efficiency for solar hydrogen generation , 2013, Nature Communications.

[174]  S. Jiao,et al.  Ternary 3D architectures of CdS QDs/graphene/ZnIn2S4 heterostructures for efficient photocatalytic H2 production. , 2013, Physical chemistry chemical physics : PCCP.

[175]  Yong Zhao,et al.  Nitrogen-doped carbon nanomaterials as non-metal electrocatalysts for water oxidation , 2013, Nature Communications.

[176]  Ueli Heiz,et al.  Cluster size effects in the photocatalytic hydrogen evolution reaction. , 2013, Journal of the American Chemical Society.

[177]  K. Maeda Direct splitting of pure water into hydrogen and oxygen using rutile titania powder as a photocatalyst. , 2013, Chemical communications.

[178]  Jiaguo Yu,et al.  Single crystal CdS nanowires with high visible-light photocatalytic H2-production performance , 2013 .

[179]  Jiangtao Li,et al.  Enhanced photoelectrochemical water splitting on novel nanoflake WO3 electrodes by dealloying of amorphous Fe–W alloys , 2013 .

[180]  C. Tung,et al.  Interface-directed assembly of a simple precursor of [FeFe]–H2ase mimics on CdSe QDs for photosynthetic hydrogen evolution in water , 2013 .

[181]  S. Campidelli,et al.  A H2-evolving photocathode based on direct sensitization of MoS3 with an organic photovoltaic cell. , 2013, Energy, sustainability and society.

[182]  Y. Tong,et al.  Au nanostructure-decorated TiO2 nanowires exhibiting photoactivity across entire UV-visible region for photoelectrochemical water splitting. , 2013, Nano letters.

[183]  Zhiqiang Ji,et al.  Photostable p-type dye-sensitized photoelectrochemical cells for water reduction. , 2013, Journal of the American Chemical Society.

[184]  U. Bach,et al.  Highly active nickel oxide water oxidation catalysts deposited from molecular complexes , 2013 .

[185]  C. Tung,et al.  Exceptional poly(acrylic acid)-based artificial [FeFe]-hydrogenases for photocatalytic H2 production in water. , 2013, Angewandte Chemie.

[186]  Miro Zeman,et al.  Efficient solar water splitting by enhanced charge separation in a bismuth vanadate-silicon tandem photoelectrode , 2013, Nature Communications.

[187]  C. Berlinguette,et al.  Water oxidation catalysis: electrocatalytic response to metal stoichiometry in amorphous metal oxide films containing iron, cobalt, and nickel. , 2013, Journal of the American Chemical Society.

[188]  Kevin C. Leonard,et al.  Unbiased photoelectrochemical water splitting in Z-scheme device using W/Mo-doped BiVO4 and Zn(x)Cd(1-x)Se. , 2013, Chemphyschem : a European journal of chemical physics and physical chemistry.

[189]  A. Bard,et al.  Combined charge carrier transport and photoelectrochemical characterization of BiVO4 single crystals: intrinsic behavior of a complex metal oxide. , 2013, Journal of the American Chemical Society.

[190]  Jiaguo Yu,et al.  Hierarchical porous CdS nanosheet-assembled flowers with enhanced visible-light photocatalytic H2-production performance , 2013 .

[191]  J. Barber,et al.  Novel cobalt/nickel–tungsten-sulfide catalysts for electrocatalytic hydrogen generation from water , 2013 .

[192]  Giulia Galli,et al.  Synthesis, photoelectrochemical properties, and first principles study of n-type CuW1−xMoxO4 electrodes showing enhanced visible light absorption , 2013 .

[193]  N. Lewis,et al.  Comparison between the Quantum Yields of Compact and Porous WO_3 Photoanodes , 2013 .

[194]  Di Zhang,et al.  Butterfly wing architecture assisted CdS/Au/TiO2 Z-scheme type photocatalytic water splitting , 2013 .

[195]  Kazunari Domen,et al.  Fabrication of an efficient BaTaO2N photoanode harvesting a wide range of visible light for water splitting. , 2013, Journal of the American Chemical Society.

[196]  Jiaguo Yu,et al.  Fabrication of NiS modified CdS nanorod p-n junction photocatalysts with enhanced visible-light photocatalytic H2-production activity. , 2013, Physical chemistry chemical physics : PCCP.

[197]  K. Domen,et al.  Recent progress in the development of (oxy)nitride photocatalysts for water splitting under visible-light irradiation ☆ , 2013 .

[198]  S. Jiao,et al.  Hierarchical metastable γ-TaON hollow structures for efficient visible-light water splitting , 2013 .

[199]  J. Coleman,et al.  Liquid Exfoliation of Layered Materials , 2013, Science.

[200]  K. Domen,et al.  Oxidation of water under visible-light irradiation over modified BaTaO2N photocatalysts promoted by tungsten species. , 2013, Angewandte Chemie.

[201]  James R. McKone,et al.  Nanostructured nickel phosphide as an electrocatalyst for the hydrogen evolution reaction. , 2013, Journal of the American Chemical Society.

[202]  J. Barber,et al.  Assembling graphitic-carbon-nitride with cobalt-oxide-phosphate to construct an efficient hybrid photocatalyst for water splitting application , 2013 .

[203]  Feng Huang,et al.  Noble metal-free Ni(OH)2–g-C3N4 composite photocatalyst with enhanced visible-light photocatalytic H2-production activity , 2013 .

[204]  Wei Zhang,et al.  Carbon nitride nanosheets for photocatalytic hydrogen evolution: remarkably enhanced activity by dye sensitization , 2013 .

[205]  Liejin Guo,et al.  Metal sulphide semiconductors for photocatalytic hydrogen production , 2013 .

[206]  G. Jung,et al.  Tailoring n-ZnO/p-Si branched nanowire heterostructures for selective photoelectrochemical water oxidation or reduction. , 2013, Nano letters.

[207]  K. Maeda Z-Scheme Water Splitting Using Two Different Semiconductor Photocatalysts , 2013 .

[208]  K. Domen,et al.  A redox-mediator-free solar-driven Z-scheme water-splitting system consisting of modified Ta3N5 as an oxygen-evolution photocatalyst. , 2013, Chemistry.

[209]  Can Li,et al.  Hybrid artificial photosynthetic systems comprising semiconductors as light harvesters and biomimetic complexes as molecular cocatalysts. , 2013, Accounts of chemical research.

[210]  Hyunwoong Park,et al.  Surface modification of TiO2 photocatalyst for environmental applications , 2013 .

[211]  Igor Levin,et al.  H2 evolution at Si-based metal-insulator-semiconductor photoelectrodes enhanced by inversion channel charge collection and H spillover. , 2013, Nature materials.

[212]  Xiangqing Li,et al.  Preparation of Cu-loaded SrTiO3 nanoparticles and their photocatalytic activity for hydrogen evolution from methanol aqueous solution , 2013 .

[213]  H. Misawa,et al.  Surface plasmon-enhanced photochemical reactions , 2013 .

[214]  Yimei Zhu,et al.  Biomass-derived electrocatalytic composites for hydrogen evolution , 2013 .

[215]  Xiuli Wang,et al.  Dual Cocatalysts Loaded Type I CdS/ZnS Core/Shell Nanocrystals as Effective and Stable Photocatalysts for H2 Evolution , 2013 .

[216]  Xi-hong Lu,et al.  Computational and Photoelectrochemical Study of Hydrogenated Bismuth Vanadate , 2013 .

[217]  Xuxu Wang,et al.  Synthesis and photocatalytic hydrogen production of a novel photocatalyst LaCO3OH , 2013 .

[218]  J. Xue,et al.  CuInZnS-decorated graphene nanosheets for highly efficient visible-light-driven photocatalytic hydrogen production , 2013 .

[219]  P. Ajayan,et al.  Exfoliated Graphitic Carbon Nitride Nanosheets as Efficient Catalysts for Hydrogen Evolution Under Visible Light , 2013, Advanced materials.

[220]  B. Liu,et al.  A fully integrated nanosystem of semiconductor nanowires for direct solar water splitting. , 2013, Nano letters.

[221]  Jeng-Yu Lin,et al.  Facile synthesis of MoS3/carbon nanotube nanocomposite with high catalytic activity toward hydrogen evolution reaction , 2013 .

[222]  A. Bard,et al.  Rapid Screening by Scanning Electrochemical Microscopy (SECM) of Dopants for Bi2WO6 Improved Photocatalytic Water Oxidation with Zn Doping , 2013 .

[223]  B. Matt,et al.  Charge Photo-Accumulation and Photocatalytic Hydrogen Evolution Under Visible Light at an Iridium(III)-Photosensitized Polyoxotungstate. , 2013, Energy & environmental science.

[224]  K. Domen,et al.  Solar-Driven Z-scheme Water Splitting Using Modified BaZrO3–BaTaO2N Solid Solutions as Photocatalysts , 2013 .

[225]  Nan Zhang,et al.  Defective TiO2 with oxygen vacancies: synthesis, properties and photocatalytic applications. , 2013, Nanoscale.

[226]  R. Sinclair,et al.  Erratum: Codoping titanium dioxide nanowires with tungsten and carbon for enhanced photoelectrochemical performance , 2013, Nature Communications.

[227]  Jinhua Ye,et al.  Reduced TiO2 nanotube arrays for photoelectrochemical water splitting , 2013 .

[228]  K. Domen,et al.  Direct water splitting into hydrogen and oxygen under visible light by using modified TaON photocatalysts with d(0) electronic configuration. , 2013, Chemistry.

[229]  Jiaguo Yu,et al.  Zn1–xCdxS Solid Solutions with Controlled Bandgap and Enhanced Visible-Light Photocatalytic H2-Production Activity , 2013 .

[230]  Zhipan Zhang,et al.  Photochemical Route for Accessing Amorphous Metal Oxide Materials for Water Oxidation Catalysis , 2013, Science.

[231]  Matthew R. Shaner,et al.  Electrical and Photoelectrochemical Properties of WO3/Si Tandem Photoelectrodes , 2013 .

[232]  Martin Moskovits,et al.  An autonomous photosynthetic device in which all charge carriers derive from surface plasmons. , 2013, Nature nanotechnology.

[233]  K. Domen,et al.  Fabrication of CaFe2O4/TaON heterojunction photoanode for photoelectrochemical water oxidation. , 2013, Journal of the American Chemical Society.

[234]  A. Kudo,et al.  [Co(bpy)3](3+/2+) and [Co(phen)3](3+/2+) electron mediators for overall water splitting under sunlight irradiation using Z-scheme photocatalyst system. , 2013, Journal of the American Chemical Society.

[235]  S. Woo,et al.  Enhanced hydrogen generation from methanol aqueous solutions over Pt/MoO3/TiO2 under ultraviolet light , 2013 .

[236]  Can Li,et al.  Roles of cocatalysts in photocatalysis and photoelectrocatalysis. , 2013, Accounts of chemical research.

[237]  Yongsheng Zhu,et al.  Layered nanojunctions for hydrogen-evolution catalysis. , 2013, Angewandte Chemie.

[238]  N. Dimitrijević,et al.  Ultra-stable CdS incorporated Ti-MCM-48 mesoporous materials for efficient photocatalytic decomposition of water under visible light illumination. , 2013, Chemical communications.

[239]  A. Manivannan,et al.  Photocatalytic Water Oxidation by Hematite/Reduced Graphene Oxide Composites , 2013 .

[240]  J. Rosen,et al.  Ordered mesoporous cobalt oxide as highly efficient oxygen evolution catalyst. , 2013, Journal of the American Chemical Society.

[241]  C. Tung,et al.  Facile synthesis of hierarchical ZnIn2S4 submicrospheres composed of ultrathin mesoporous nanosheets as a highly efficient visible-light-driven photocatalyst for H2 production , 2013 .

[242]  Xi-hong Lu,et al.  CdS/CeOx heterostructured nanowires for photocatalytic hydrogen production , 2013 .

[243]  J. Zai,et al.  3D-hierarchical Cu3SnS4 flowerlike microspheres: controlled synthesis, formation mechanism and photocatalytic activity for H2 evolution from water , 2013 .

[244]  N. Lewis,et al.  Photoelectrochemical Behavior of n‑type Si(100) Electrodes Coated with Thin Films of Manganese Oxide Grown by Atomic Layer Deposition , 2013 .

[245]  Jun Kubota,et al.  Stable hydrogen evolution from CdS-modified CuGaSe2 photoelectrode under visible-light irradiation. , 2013, Journal of the American Chemical Society.

[246]  F. Wang,et al.  Carbon quantum dot sensitized TiO₂ nanotube arrays for photoelectrochemical hydrogen generation under visible light. , 2013, Nanoscale.

[247]  Frank E. Osterloh,et al.  Inorganic nanostructures for photoelectrochemical and photocatalytic water splitting. , 2013, Chemical Society reviews.

[248]  Daniel G. Nocera,et al.  Mechanistic studies of the oxygen evolution reaction mediated by a nickel-borate thin film electrocatalyst. , 2013, Journal of the American Chemical Society.

[249]  Z. Yin,et al.  Hierarchical hollow spheres composed of ultrathin Fe2O3 nanosheets for lithium storage and photocatalytic water oxidation , 2013 .

[250]  Jiaguo Yu,et al.  Graphene-Based Photocatalysts for Hydrogen Generation. , 2013, The journal of physical chemistry letters.

[251]  Chongyin Yang,et al.  Observation of an Intermediate Band in Sn-doped Chalcopyrites with Wide-spectrum Solar Response , 2013, Scientific Reports.

[252]  Say Chye Joachim Loo,et al.  In-situ growth of CdS quantum dots on g-C3N4 nanosheets for highly efficient photocatalytic hydrogen generation under visible light irradiation , 2013 .

[253]  Lain-Jong Li,et al.  Highly Efficient Electrocatalytic Hydrogen Production by MoSx Grown on Graphene‐Protected 3D Ni Foams , 2013, Advanced materials.

[254]  Can Li,et al.  Spatial separation of photogenerated electrons and holes among {010} and {110} crystal facets of BiVO4 , 2013, Nature Communications.

[255]  Peng Wang,et al.  Carbon-layer-protected cuprous oxide nanowire arrays for efficient water reduction. , 2013, ACS nano.

[256]  Sudip Kumar Batabyal,et al.  In situ photo-assisted deposition of MoS₂ electrocatalyst onto zinc cadmium sulphide nanoparticle surfaces to construct an efficient photocatalyst for hydrogen generation. , 2013, Nanoscale.

[257]  K. Domen,et al.  Photoelectrochemical properties of LaTiO2N electrodes prepared by particle transfer for sunlight-driven water splitting , 2013 .

[258]  G. Lu,et al.  Self-assembled CdS/Au/ZnO heterostructure induced by surface polar charges for efficient photocatalytic hydrogen evolution , 2013 .

[259]  N. Umezawa,et al.  Anatase TiO2 Single Crystals Exposed with High-Reactive {111} Facets Toward Efficient H2 Evolution , 2013 .

[260]  Quan Li,et al.  Highly aligned Cu2O/CuO/TiO2 core/shell nanowire arrays as photocathodes for water photoelectrolysis , 2013 .

[261]  J. S. Lee,et al.  Highly Efficient and Stable Cadmium Chalcogenide Quantum Dot/ZnO Nanowires for Photoelectrochemical Hydrogen Generation , 2013 .

[262]  Pingyun Feng,et al.  A three-dimensional branched cobalt-doped α-Fe2O3 nanorod/MgFe2O4 heterojunction array as a flexible photoanode for efficient photoelectrochemical water oxidation. , 2013, Angewandte Chemie.

[263]  Xizhang Wang,et al.  Can boron and nitrogen co-doping improve oxygen reduction reaction activity of carbon nanotubes? , 2013, Journal of the American Chemical Society.

[264]  Jiaguo Yu,et al.  Enhanced photocatalytic hydrogen production activities of Au-loaded ZnS flowers. , 2013, ACS applied materials & interfaces.

[265]  Ib Chorkendorff,et al.  Using TiO2 as a conductive protective layer for photocathodic H2 evolution. , 2013, Journal of the American Chemical Society.

[266]  K. Domen,et al.  Sulfurization-Assisted Cobalt Deposition on Sm2Ti2S2O5 Photocatalyst for Water Oxidation under Visible Light Irradiation , 2013 .

[267]  Peng Wang,et al.  Plasmonic gold nanocrystals coupled with photonic crystal seamlessly on TiO2 nanotube photoelectrodes for efficient visible light photoelectrochemical water splitting. , 2013, Nano letters.

[268]  James R. McKone,et al.  Hydrogen evolution from Pt/Ru-coated p-type WSe2 photocathodes. , 2013, Journal of the American Chemical Society.

[269]  K. Domen,et al.  Vertically Aligned Ta3N5 Nanorod Arrays for Solar‐Driven Photoelectrochemical Water Splitting , 2013, Advanced materials.

[270]  Fan Zuo,et al.  Visible-light-responsive copper(II) borate photocatalysts with intrinsic midgap states for water splitting , 2013 .

[271]  James R. McKone,et al.  Ni–Mo Nanopowders for Efficient Electrochemical Hydrogen Evolution , 2013 .

[272]  M. Beller,et al.  Photocatalytic water reduction with copper-based photosensitizers: a noble-metal-free system. , 2013, Angewandte Chemie.

[273]  Can Li,et al.  Photocatalytic overall water splitting promoted by an α-β phase junction on Ga2O3. , 2012, Angewandte Chemie.

[274]  Sung Ki Cho,et al.  Electrodeposition of crystalline and photoactive silicon directly from silicon dioxide nanoparticles in molten CaCl2. , 2012, Angewandte Chemie.

[275]  H. Vrubel,et al.  Molybdenum boride and carbide catalyze hydrogen evolution in both acidic and basic solutions. , 2012, Angewandte Chemie.

[276]  Patrick L. Holland,et al.  Robust Photogeneration of H2 in Water Using Semiconductor Nanocrystals and a Nickel Catalyst , 2012, Science.

[277]  X. Lou,et al.  Formation of 1D Hierarchical Structures Composed of Ni3S2 Nanosheets on CNTs Backbone for Supercapacitors and Photocatalytic H2 Production , 2012 .

[278]  D. Bahnemann,et al.  Kinetics and mechanisms of charge transfer processes in photocatalytic systems: A review , 2012 .

[279]  K. Domen,et al.  Enhanced water oxidation on Ta3N5 photocatalysts by modification with alkaline metal salts. , 2012, Journal of the American Chemical Society.

[280]  Fan Zuo,et al.  Visible light-driven α-Fe₂O₃ nanorod/graphene/BiV₁-xMoxO₄ core/shell heterojunction array for efficient photoelectrochemical water splitting. , 2012, Nano letters.

[281]  Jiaguo Yu,et al.  Enhanced visible-light photocatalytic H2-production performance of multi-armed CdS nanorods , 2012 .

[282]  Robert Kostecki,et al.  Nanomaterials for renewable energy production and storage. , 2012, Chemical Society reviews.

[283]  Chia-Yu Lin,et al.  Cu2O|NiOx nanocomposite as an inexpensive photocathode in photoelectrochemical water splitting , 2012 .

[284]  K. Domen,et al.  A titanium-based oxysulfide photocatalyst: La5Ti2MS5O7 (M = Ag, Cu) for water reduction and oxidation. , 2012, Physical chemistry chemical physics : PCCP.

[285]  Hui‐Ming Cheng,et al.  A red anatase TiO2 photocatalyst for solar energy conversion , 2012 .

[286]  G. Wallace,et al.  Sustained solar hydrogen generation using a dye-sensitised NiO photocathode/BiVO4 tandem photo-electrochemical device , 2012 .

[287]  James R. McKone,et al.  Hydrogen-evolution characteristics of Ni–Mo-coated, radial junction, n+p-silicon microwire array photocathodes , 2012 .

[288]  Yat Li,et al.  Oxygen-deficient metal oxide nanostructures for photoelectrochemical water oxidation and other applications. , 2012, Nanoscale.

[289]  J. Feldmann,et al.  Size-selected subnanometer cluster catalysts on semiconductor nanocrystal films for atomic scale insight into photocatalysis. , 2012, Nano letters.

[290]  S. Jiao,et al.  In situ chemical reduction of the Ta3N5 quantum dots coupled TaON hollow spheres heterojunction photocatalyst for water oxidation , 2012 .

[291]  Xiang-Yun Guo,et al.  Photocatalytic hydrogen production over modified SiC nanowires under visible light irradiation , 2012 .

[292]  Pingwu Du,et al.  Photodriven charge separation dynamics in CdSe/ZnS core/shell quantum dot/cobaloxime hybrid for efficient hydrogen production. , 2012, Journal of the American Chemical Society.

[293]  Jiaguo Yu,et al.  Surface plasmon resonance-mediated photocatalysis by noble metal-based composites under visible light , 2012 .

[294]  M. Field,et al.  Copper molybdenum sulfide: a new efficient electrocatalyst for hydrogen production from water , 2012 .

[295]  M. Matsuka,et al.  Preparation of tantalum-based oxynitride nanosheets by exfoliation of a layered oxynitride, CsCa2Ta3O(10-x)N(y), and their photocatalytic activity. , 2012, Journal of the American Chemical Society.

[296]  Gongxuan Lu,et al.  Enhanced Electron Transfer from the Excited Eosin Y to mpg-C3N4 for Highly Efficient Hydrogen Evolution under 550 nm Irradiation , 2012 .

[297]  S. Dahl,et al.  Hydrogen production using a molybdenum sulfide catalyst on a titanium-protected n(+)p-silicon photocathode. , 2012, Angewandte Chemie.

[298]  M. Fontecave,et al.  A Janus cobalt-based catalytic material for electro-splitting of water. , 2012, Nature materials.

[299]  A. Fujishima,et al.  TiO2 photocatalysis: Design and applications , 2012 .

[300]  Mietek Jaroniec,et al.  Noble metal-free reduced graphene oxide-ZnxCd₁-xS nanocomposite with enhanced solar photocatalytic H₂-production performance. , 2012, Nano letters.

[301]  Y. Tachibana,et al.  Artificial photosynthesis for solar water-splitting , 2012, Nature Photonics.

[302]  N. Browning,et al.  Nanoscale strontium titanate photocatalysts for overall water splitting. , 2012, ACS nano.

[303]  Tao Yu,et al.  Co3O4 Nanoparticles as Robust Water Oxidation Catalysts Towards Remarkably Enhanced Photostability of a Ta3N5 Photoanode , 2012 .

[304]  K. Domen,et al.  Visible-light-driven nonsacrificial water oxidation over tungsten trioxide powder modified with two different cocatalysts , 2012 .

[305]  Dehua Zheng,et al.  Photocatalytic H2 production in aqueous solution with host-guest inclusions formed by insertion of an FeFe-hydrogenase mimic and an organic dye into cyclodextrins , 2012 .

[306]  Alexander J. Cowan,et al.  Dynamics of photogenerated holes in surface modified α-Fe2O3 photoanodes for solar water splitting , 2012, Proceedings of the National Academy of Sciences.

[307]  W. Li,et al.  Efficient photocatalytic hydrogen evolution over hydrogenated ZnO nanorod arrays. , 2012, Chemical communications.

[308]  Tianquan Lian,et al.  Near unity quantum yield of light-driven redox mediator reduction and efficient H2 generation using colloidal nanorod heterostructures. , 2012, Journal of the American Chemical Society.

[309]  Xiaoxiang Xu,et al.  A red metallic oxide photocatalyst. , 2012, Nature materials.

[310]  A. Bard,et al.  Synthesis and characterization of a p-type boron arsenide photoelectrode. , 2012, Journal of the American Chemical Society.

[311]  Lin Zhuang,et al.  First implementation of alkaline polymer electrolyte water electrolysis working only with pure water , 2012 .

[312]  Sungho Jin,et al.  Nickel oxide functionalized silicon for efficient photo-oxidation of water , 2012 .

[313]  F. Quentel,et al.  Electrochemical hydrogen production in aqueous micellar solution by a diiron benzenedithiolate complex relevant to [FeFe] hydrogenases. , 2012, Physical chemistry chemical physics : PCCP.

[314]  A. Frenkel,et al.  Hydrogen-evolution catalysts based on non-noble metal nickel-molybdenum nitride nanosheets. , 2012, Angewandte Chemie.

[315]  Michael Stewart,et al.  Acidic ionic liquid/water solution as both medium and proton source for electrocatalytic H2 evolution by [Ni(P2N2)2]2+ complexes , 2012, Proceedings of the National Academy of Sciences.

[316]  A. Belcher,et al.  Biotemplated Synthesis of Perovskite Nanomaterials for Solar Energy Conversion , 2012, Advanced materials.

[317]  Maria Chan,et al.  Trends in activity for the water electrolyser reactions on 3d M(Ni,Co,Fe,Mn) hydr(oxy)oxide catalysts. , 2012, Nature materials.

[318]  F. Wei,et al.  An oxygen reduction electrocatalyst based on carbon nanotube-graphene complexes. , 2012, Nature nanotechnology.

[319]  P. Dhanasekaran,et al.  Visible-Light-Induced Photosplitting of Water over γ′-Fe4N and γ′-Fe4N/α-Fe2O3 Nanocatalysts , 2012 .

[320]  Xiaoyan Qin,et al.  Hydrogenated titania: synergy of surface modification and morphology improvement for enhanced photocatalytic activity. , 2012, Chemical communications.

[321]  K. Domen,et al.  Cobalt-modified porous single-crystalline LaTiO2N for highly efficient water oxidation under visible light. , 2012, Journal of the American Chemical Society.

[322]  Zhi Wei Seh,et al.  Janus Au‐TiO2 Photocatalysts with Strong Localization of Plasmonic Near‐Fields for Efficient Visible‐Light Hydrogen Generation , 2012, Advanced materials.

[323]  K. Domen,et al.  Photocatalytic water splitting using modified GaN:ZnO solid solution under visible light: long-time operation and regeneration of activity. , 2012, Journal of the American Chemical Society.

[324]  Can Li,et al.  A hybrid photocatalytic system comprising ZnS as light harvester and an [Fe(2)S(2)] hydrogenase mimic as hydrogen evolution catalyst. , 2012, ChemSusChem.

[325]  John R. Swierk,et al.  Improving the efficiency of water splitting in dye-sensitized solar cells by using a biomimetic electron transfer mediator , 2012, Proceedings of the National Academy of Sciences.

[326]  X. Duan,et al.  Towards highly efficient photocatalysts using semiconductor nanoarchitectures , 2012 .

[327]  M. Marelli,et al.  Effect of nature and location of defects on bandgap narrowing in black TiO2 nanoparticles. , 2012, Journal of the American Chemical Society.

[328]  Yichuan Ling,et al.  The influence of oxygen content on the thermal activation of hematite nanowires. , 2012, Angewandte Chemie.

[329]  Kazunari Domen,et al.  Highly stable water splitting on oxynitride TaON photoanode system under visible light irradiation. , 2012, Journal of the American Chemical Society.

[330]  Vittal K. Yachandra,et al.  Structure-activity correlations in a nickel-borate oxygen evolution catalyst. , 2012, Journal of the American Chemical Society.

[331]  P. Fornasiero,et al.  Nonaqueous synthesis of TiO2 nanocrystals using TiF4 to engineer morphology, oxygen vacancy concentration, and photocatalytic activity. , 2012, Journal of the American Chemical Society.

[332]  Mietek Jaroniec,et al.  Synergetic effect of MoS2 and graphene as cocatalysts for enhanced photocatalytic H2 production activity of TiO2 nanoparticles. , 2012, Journal of the American Chemical Society.

[333]  Daniel G Nocera,et al.  The artificial leaf. , 2012, Accounts of chemical research.

[334]  Jiaguo Yu,et al.  Noble-metal-free carbon nanotube-Cd0.1Zn0.9S composites for high visible-light photocatalytic H2-production performance. , 2012, Nanoscale.

[335]  Jae Sung Lee,et al.  Phosphate doping into monoclinic BiVO4 for enhanced photoelectrochemical water oxidation activity. , 2012, Angewandte Chemie.

[336]  Can Li,et al.  Photocatalytic H2production on Pt/TiO2–SO42−with tuned surface-phase structures: enhancing activity and reducing CO formation , 2012 .

[337]  Molly B. Wilker,et al.  Characterization of photochemical processes for H2 production by CdS nanorod-[FeFe] hydrogenase complexes. , 2012, Journal of the American Chemical Society.

[338]  Wenzhong Wang,et al.  A simple template-free synthesis of ultrathin Cu2ZnSnS4 nanosheets for highly stable photocatalytic H2 evolution , 2012 .

[339]  Jinhua Ye,et al.  Single-crystal nanosheet-based hierarchical AgSbO3 with exposed {001} facets: topotactic synthesis and enhanced photocatalytic activity. , 2012, Chemistry.

[340]  Jing Jiang,et al.  Synthesis and facet-dependent photoreactivity of BiOCl single-crystalline nanosheets. , 2012, Journal of the American Chemical Society.

[341]  Pingwu Du,et al.  Catalysts made of earth-abundant elements (Co, Ni, Fe) for water splitting: Recent progress and future challenges , 2012 .

[342]  H. Vrubel,et al.  Hydrogen evolution catalyzed by MoS3 and MoS2 particles , 2012 .

[343]  P. Dhanasekaran,et al.  Factors affecting the production of H2 by water splitting over a novel visible-light-driven photocatalyst GaFeO3 , 2012 .

[344]  A. Xu,et al.  Room-temperature synthesis of Zn(0.80)Cd(0.20)S solid solution with a high visible-light photocatalytic activity for hydrogen evolution. , 2012, Nanoscale.

[345]  A. Emeline,et al.  Semiconductor Photocatalysis - Past, Present, and Future Outlook. , 2012, The journal of physical chemistry letters.

[346]  G. Gary Wang,et al.  Hydrogen-treated WO3 nanoflakes show enhanced photostability , 2012 .

[347]  P. Yang,et al.  Si/InGaN core/shell hierarchical nanowire arrays and their photoelectrochemical properties. , 2012, Nano letters.

[348]  P. Kamat Manipulation of Charge Transfer Across Semiconductor Interface. A Criterion That Cannot Be Ignored in Photocatalyst Design. , 2012, The journal of physical chemistry letters.

[349]  Nathan T. Hahn,et al.  Enhancing visible light photo-oxidation of water with TiO2 nanowire arrays via cotreatment with H2 and NH3: synergistic effects between Ti3+ and N. , 2012, Journal of the American Chemical Society.

[350]  A. Bard,et al.  Tantalum Cobalt Nitride Photocatalysts for Water Oxidation under Visible Light , 2012 .

[351]  Yixin Zhao,et al.  Development of plasmonic semiconductor nanomaterials with copper chalcogenides for a future with sustainable energy materials , 2012 .

[352]  Ib Chorkendorff,et al.  Molybdenum sulfides—efficient and viable materials for electro - and photoelectrocatalytic hydrogen evolution , 2012 .

[353]  Yifu Yu,et al.  Nanoporous single-crystal-like Cd(x)Zn(1-x)S nanosheets fabricated by the cation-exchange reaction of inorganic-organic hybrid ZnS-amine with cadmium ions. , 2012, Angewandte Chemie.

[354]  Kyoung-Shin Choi,et al.  Efficient and stable photo-oxidation of water by a bismuth vanadate photoanode coupled with an iron oxyhydroxide oxygen evolution catalyst. , 2012, Journal of the American Chemical Society.

[355]  Peng Wang,et al.  Highly stable copper oxide composite as an effective photocathode for water splitting via a facile electrochemical synthesis strategy , 2012 .

[356]  Colin Finn,et al.  Molecular approaches to the electrochemical reduction of carbon dioxide. , 2012, Chemical communications.

[357]  F. Osterloh,et al.  Quantum confinement controlled photocatalytic water splitting by suspended CdSe nanocrystals. , 2012, Chemical communications.

[358]  Markus Antonietti,et al.  Photocatalytic oxidation of water by polymeric carbon nitride nanohybrids made of sustainable elements , 2012 .

[359]  M. Jaroniec,et al.  Graphene-based semiconductor photocatalysts. , 2012, Chemical Society Reviews.

[360]  Markus Antonietti,et al.  Bioinspired hollow semiconductor nanospheres as photosynthetic nanoparticles , 2012, Nature Communications.

[361]  V. Stamenkovic,et al.  Enhancing Hydrogen Evolution Activity in Water Splitting by Tailoring Li+-Ni(OH)2-Pt Interfaces , 2011, Science.

[362]  Kazuhiko Maeda,et al.  Photocatalytic water splitting using semiconductor particles: History and recent developments , 2011 .

[363]  S. Linic,et al.  Plasmonic-metal nanostructures for efficient conversion of solar to chemical energy. , 2011, Nature materials.

[364]  T. Furtak,et al.  Cobalt-phosphate (Co-Pi) catalyst modified Mo-doped BiVO4 photoelectrodes for solar water oxidation , 2011 .

[365]  D. Nocera,et al.  Wireless Solar Water Splitting Using Silicon-Based Semiconductors and Earth-Abundant Catalysts , 2011, Science.

[366]  Michael Grätzel,et al.  Porphyrin-Sensitized Solar Cells with Cobalt (II/III)–Based Redox Electrolyte Exceed 12 Percent Efficiency , 2011, Science.

[367]  Xiaolin Zheng,et al.  Branched TiO₂ nanorods for photoelectrochemical hydrogen production. , 2011, Nano letters.

[368]  R. Scotti,et al.  Photogenerated defects in shape-controlled TiO2 anatase nanocrystals: a probe to evaluate the role of crystal facets in photocatalytic processes. , 2011, Journal of the American Chemical Society.

[369]  A. Alivisatos,et al.  Structural and electronic study of an amorphous MoS3 hydrogen-generation catalyst on a quantum-controlled photosensitizer. , 2011, Angewandte Chemie.

[370]  F. Osterloh,et al.  Sequestering High-Energy Electrons to Facilitate Photocatalytic Hydrogen Generation in CdSe/CdS Nanocrystals , 2011 .

[371]  Kui‐Qing Peng,et al.  High-performance silicon nanowire array photoelectrochemical solar cells through surface passivation and modification. , 2011, Angewandte Chemie.

[372]  Jiaguo Yu,et al.  Visible light photocatalytic H₂-production activity of CuS/ZnS porous nanosheets based on photoinduced interfacial charge transfer. , 2011, Nano letters.

[373]  Frank E. Osterloh,et al.  Photocatalytic water oxidation with suspended alpha-Fe2O3 particles-effects of nanoscaling , 2011 .

[374]  Prashant Nagpal,et al.  Role of mid-gap states in charge transport and photoconductivity in semiconductor nanocrystal films , 2011, Nature communications.

[375]  Tao Yu,et al.  Solar hydrogen generation from seawater with a modified BiVO4 photoanode , 2011 .

[376]  Kazunari Domen,et al.  Fabrication of efficient TaON and Ta3N5 photoanodes for water splitting under visible light irradiation , 2011 .

[377]  Xiujian Zhao,et al.  Tuning the relative concentration ratio of bulk defects to surface defects in TiO2 nanocrystals leads to high photocatalytic efficiency. , 2011, Journal of the American Chemical Society.

[378]  Anna Fischer,et al.  Condensed Graphitic Carbon Nitride Nanorods by Nanoconfinement: Promotion of Crystallinity on Photocatalytic Conversion , 2011 .

[379]  D. Klug,et al.  The role of cobalt phosphate in enhancing the photocatalytic activity of α-Fe2O3 toward water oxidation. , 2011, Journal of the American Chemical Society.

[380]  M. Jaroniec,et al.  Enhanced photocatalytic H₂-production activity of graphene-modified titania nanosheets. , 2011, Nanoscale.

[381]  Nathan S. Lewis,et al.  Evaluation of Pt, Ni, and Ni–Mo electrocatalysts for hydrogen evolution on crystalline Si electrodes , 2011 .

[382]  Gang Chen,et al.  Hierarchical architectures of porous ZnS-based microspheres by assembly of heterostructure nanoflakes: lateral oriented attachment mechanism and enhanced photocatalytic activity , 2011 .

[383]  A. Bard,et al.  Factors in the Metal Doping of BiVO4 for Improved Photoelectrocatalytic Activity as Studied by Scanning Electrochemical Microscopy and First-Principles Density-Functional Calculation , 2011 .

[384]  Yabo Wang,et al.  Highly active ZnxCd1−xS photocatalysts containing earth abundant elements only for H2 production from water under visible light , 2011 .

[385]  R. Morris Bullock,et al.  A Synthetic Nickel Electrocatalyst with a Turnover Frequency Above 100,000 s−1 for H2 Production , 2011, Science.

[386]  M. Fontecave,et al.  Splitting water with cobalt. , 2011, Angewandte Chemie.

[387]  Mietek Jaroniec,et al.  Anatase TiO2 with Dominant High-Energy {001} Facets: Synthesis, Properties, and Applications , 2011 .

[388]  Miaofang Chi,et al.  A highly active titanium dioxide based visible-light photocatalyst with nonmetal doping and plasmonic metal decoration. , 2011, Angewandte Chemie.

[389]  Can Li,et al.  Photocatalytic H2 production on hybrid catalyst system composed of inorganic semiconductor and cobaloximes catalysts , 2011 .

[390]  Jian Shi,et al.  Three-dimensional high-density hierarchical nanowire architecture for high-performance photoelectrochemical electrodes. , 2011, Nano letters.

[391]  H. Gray,et al.  Shedding light on solar fuel efficiencies. , 2011, Science.

[392]  R. Amal,et al.  Reduced graphene oxide as a solid-state electron mediator in Z-scheme photocatalytic water splitting under visible light. , 2011, Journal of the American Chemical Society.

[393]  Michael Grätzel,et al.  Cathodic shift in onset potential of solar oxygen evolution on hematite by 13-group oxide overlayers , 2011 .

[394]  Jiaguo Yu,et al.  Highly efficient visible-light-driven photocatalytic hydrogen production of CdS-cluster-decorated graphene nanosheets. , 2011, Journal of the American Chemical Society.

[395]  Marco Califano,et al.  Size-dependent valence and conduction band-edge energies of semiconductor nanocrystals. , 2011, ACS nano.

[396]  H. Vrubel,et al.  Amorphous molybdenum sulfide films as catalysts for electrochemical hydrogen production in water , 2011 .

[397]  A. Bard,et al.  Screening of Electrocatalysts for Photoelectrochemical Water Oxidation on W-Doped BiVO4 Photocatalysts by Scanning Electrochemical Microscopy , 2011 .

[398]  T. Buonassisi,et al.  Light-induced water oxidation at silicon electrodes functionalized with a cobalt oxygen-evolving catalyst , 2011, Proceedings of the National Academy of Sciences.

[399]  Vincent Laporte,et al.  Highly active oxide photocathode for photoelectrochemical water reduction. , 2011, Nature materials.

[400]  Ib Chorkendorff,et al.  Bioinspired molecular co-catalysts bonded to a silicon photocathode for solar hydrogen evolution. , 2011, Nature materials.

[401]  Jinhua Ye,et al.  Enhanced incident photon-to-electron conversion efficiency of tungsten trioxide photoanodes based on 3D-photonic crystal design. , 2011, ACS nano.

[402]  Di Zhang,et al.  Hydrogen evolution via sunlight water splitting on an artificial butterfly wing architecture. , 2011, Physical chemistry chemical physics : PCCP.

[403]  Hongjian Yan,et al.  Photocatalytic H2 Evolution on CdS Loaded with WS2 as Cocatalyst under Visible Light Irradiation , 2011 .

[404]  A. Xu,et al.  Highly Durable N-Doped Graphene/CdS Nanocomposites with Enhanced Photocatalytic Hydrogen Evolution from Water under Visible Light Irradiation , 2011 .

[405]  P. Ajayan,et al.  Nitrogen-doped anatase nanofibers decorated with noble metal nanoparticles for photocatalytic production of hydrogen. , 2011, ACS nano.

[406]  M. Jaroniec,et al.  Photocatalytic hydrogen production over CuO-modified titania. , 2011, Journal of colloid and interface science.

[407]  Jae Sung Lee,et al.  Heterojunction BiVO4/WO3 electrodes for enhanced photoactivity of water oxidation , 2011 .

[408]  M. Grätzel,et al.  Photo-assisted electrodeposition of cobalt–phosphate (Co–Pi) catalyst on hematite photoanodes for solar water oxidation , 2011 .

[409]  M. Jaroniec,et al.  Preparation and enhanced visible-light photocatalytic H2-production activity of CdS-sensitized Pt/TiO2 nanosheets with exposed (001) facets. , 2011, Physical chemistry chemical physics : PCCP.

[410]  Z. Zou,et al.  Facile temperature-controlled synthesis of hexagonal Zn2GeO4 nanorods with different aspect ratios toward improved photocatalytic activity for overall water splitting and photoreduction of CO2. , 2011, Chemical communications.

[411]  Liejin Guo,et al.  Nanostructured WO₃/BiVO₄ heterojunction films for efficient photoelectrochemical water splitting. , 2011, Nano letters.

[412]  D. M. Lee,et al.  A combination of two visible-light responsive photocatalysts for achieving the Z-scheme in the solid state. , 2011, ACS nano.

[413]  Raffaele Molinari,et al.  Efficient visible-light photocatalytic water splitting by minute amounts of gold supported on nanoparticulate CeO2 obtained by a biopolymer templating method. , 2011, Journal of the American Chemical Society.

[414]  Lianzhou Wang,et al.  Nitrogen doped Sr₂Ta₂O₇ coupled with graphene sheets as photocatalysts for increased photocatalytic hydrogen production. , 2011, ACS nano.

[415]  T. Tachikawa,et al.  Evidence for crystal-face-dependent TiO2 photocatalysis from single-molecule imaging and kinetic analysis. , 2011, Journal of the American Chemical Society.

[416]  E. Lægsgaard,et al.  The importance of bulk Ti3+ defects in the oxygen chemistry on titania surfaces. , 2011, Journal of the American Chemical Society.

[417]  Zhiliang Jin,et al.  Z-Scheme Photocatalytic System Utilizing Separate Reaction Centers by Directional Movement of Electrons , 2011 .

[418]  Y. C. Cao Impurities Enhance Semiconductor Nanocrystal Performance , 2011, Science.

[419]  U. Diebold Photocatalysts: closing the gap. , 2011, Nature chemistry.

[420]  E. Rabani,et al.  Heavily Doped Semiconductor Nanocrystal Quantum Dots , 2011, Science.

[421]  M. Jaroniec,et al.  Preparation and Enhanced Visible-Light Photocatalytic H2-Production Activity of Graphene/C3N4 Composites , 2011 .

[422]  Jiaguo Yu,et al.  Facile preparation and enhanced photocatalytic H2-production activity of Cu(OH)2 cluster modified TiO2 , 2011 .

[423]  Liejin Guo,et al.  Twins in Cd1−xZnxS solid solution: Highly efficient photocatalyst for hydrogen generation from water , 2011 .

[424]  C. Tung,et al.  A highly efficient photocatalytic system for hydrogen production by a robust hydrogenase mimic in an aqueous solution. , 2011, Angewandte Chemie.

[425]  Suljo Linic,et al.  Water splitting on composite plasmonic-metal/semiconductor photoelectrodes: evidence for selective plasmon-induced formation of charge carriers near the semiconductor surface. , 2011, Journal of the American Chemical Society.

[426]  Young Kwang Kim,et al.  Reversing CdS Preparation Order and Its Effects on Photocatalytic Hydrogen Production of CdS/Pt-TiO2 Hybrids Under Visible Light , 2011 .

[427]  Michael Grätzel,et al.  Passivating surface states on water splitting hematite photoanodes with alumina overlayers , 2011 .

[428]  T. Peng,et al.  Template-Free Hydrothermal Synthesis of ZnIn2S4 Floriated Microsphere as an Efficient Photocatalyst for H2 Production under Visible-Light Irradiation , 2011 .

[429]  H. Misawa,et al.  Plasmonic antenna effects on photochemical reactions. , 2011, Accounts of chemical research.

[430]  T. Jaramillo,et al.  Plasmon enhanced solar-to-fuel energy conversion. , 2011, Nano letters.

[431]  Hyunwoong Park,et al.  Light-harvesting multi-walled carbon nanotubes and CdS hybrids: Application to photocatalytic hydrogen production from water , 2011 .

[432]  Yang Hai,et al.  Enhanced Photocatalytic H2-Production Activity of TiO2 by Ni(OH)2 Cluster Modification , 2011 .

[433]  Jian Pan,et al.  On the true photoreactivity order of {001}, {010}, and {101} facets of anatase TiO2 crystals. , 2011, Angewandte Chemie.

[434]  S. Cronin,et al.  Plasmon resonant enhancement of photocatalytic water splitting under visible illumination. , 2011, Nano letters.

[435]  Xiaobo Chen,et al.  Increasing Solar Absorption for Photocatalysis with Black Hydrogenated Titanium Dioxide Nanocrystals , 2011, Science.

[436]  Ryan L. Spray,et al.  Enhancing Photoresponse of Nanoparticulate α-Fe2O3 Electrodes by Surface Composition Tuning , 2011 .

[437]  K. Domen,et al.  Role and Function of Ruthenium Species as Promoters with TaON-Based Photocatalysts for Oxygen Evolution in Two-Step Water Splitting under Visible Light , 2011 .

[438]  D. Nocera,et al.  Highly active cobalt phosphate and borate based oxygen evolving catalysts operating in neutral and natural waters , 2011 .

[439]  E. Reisner,et al.  Photocatalytic H2 evolution from neutral water with a molecular cobalt catalyst on a dye-sensitised TiO2 nanoparticle. , 2011, Chemical communications.

[440]  H. García,et al.  Influence of excitation wavelength (UV or visible light) on the photocatalytic activity of titania containing gold nanoparticles for the generation of hydrogen or oxygen from water. , 2011, Journal of the American Chemical Society.

[441]  J. A. Seabold,et al.  Effect of a Cobalt-Based Oxygen Evolution Catalyst on the Stability and the Selectivity of Photo-Oxidation Reactions of a WO3 Photoanode , 2011 .

[442]  A. Bard,et al.  A Method for Rapid Screening of Photosensitizers by Scanning Electrochemical Microscopy (SECM) and the Synthesis and Testing of a Porphyrin Sensitizer , 2011 .

[443]  M. Jaroniec,et al.  Ni(OH)2 modified CdS nanorods for highly efficient visible-light-driven photocatalytic H2 generation , 2011 .

[444]  Fan Zhang,et al.  Water splitting by tungsten oxide prepared by atomic layer deposition and decorated with an oxygen-evolving catalyst. , 2011, Angewandte Chemie.

[445]  Nathan S Lewis,et al.  Photoelectrochemical hydrogen evolution using Si microwire arrays. , 2011, Journal of the American Chemical Society.

[446]  J. Zhang,et al.  Metal oxide nanomaterials for solar hydrogen generation from photoelectrochemical water splitting , 2011 .

[447]  Akihiko Kudo,et al.  Z-scheme photocatalyst systems for water splitting under visible light irradiation , 2011 .

[448]  Bruce A. Parkinson,et al.  Recent developments in solar water-splitting photocatalysis , 2011 .

[449]  Jiaguo Yu,et al.  Synthesis and enhanced photocatalytic activity of a hierarchical porous flowerlike p-n junction NiO/TiO2 photocatalyst. , 2010, Chemistry, an Asian journal.

[450]  A. Bard,et al.  Rapid Synthesis and Screening of ZnxCd1−xSySe1−y Photocatalysts by Scanning Electrochemical Microscopy , 2010 .

[451]  James R. McKone,et al.  Solar water splitting cells. , 2010, Chemical reviews.

[452]  Xiaobo Chen,et al.  Semiconductor-based photocatalytic hydrogen generation. , 2010, Chemical reviews.

[453]  Jingxia Wang,et al.  Enhancement of photochemical hydrogen evolution over Pt-loaded hierarchical titania photonic crystal , 2010 .

[454]  M. Grätzel,et al.  Decoupling feature size and functionality in solution-processed, porous hematite electrodes for solar water splitting. , 2010, Nano letters.

[455]  Jun Zhang,et al.  Preparation and enhanced visible-light photocatalytic H2-production activity of CdS quantum dots-sensitized Zn1−xCdxS solid solution , 2010 .

[456]  P. Maggard,et al.  Semiconducting Oxides to Facilitate the Conversion of Solar Energy to Chemical Fuels , 2010 .

[457]  Andrey L. Rogach,et al.  Colloidal CdS nanorods decorated with subnanometer sized Pt clusters for photocatalytic hydrogen generation , 2010 .

[458]  K. Domen,et al.  Photocatalytic Water Splitting: Recent Progress and Future Challenges , 2010 .

[459]  Michael Grätzel,et al.  Light-induced water splitting with hematite: improved nanostructure and iridium oxide catalysis. , 2010, Angewandte Chemie.

[460]  Wen-Sheng Chang,et al.  Quantum dot monolayer sensitized ZnO nanowire-array photoelectrodes: true efficiency for water splitting. , 2010, Angewandte Chemie.

[461]  Mietek Jaroniec,et al.  Tunable photocatalytic selectivity of hollow TiO2 microspheres composed of anatase polyhedra with exposed {001} facets. , 2010, Journal of the American Chemical Society.

[462]  Tao Wu,et al.  Self-doped Ti3+ enhanced photocatalyst for hydrogen production under visible light. , 2010, Journal of the American Chemical Society.

[463]  Hui-Ming Cheng,et al.  Unique electronic structure induced high photoreactivity of sulfur-doped graphitic C3N4. , 2010, Journal of the American Chemical Society.

[464]  Hsisheng Teng,et al.  Graphite Oxide as a Photocatalyst for Hydrogen Production from Water , 2010 .

[465]  Allen J. Bard,et al.  Rapid Screening of BiVO4-Based Photocatalysts by Scanning Electrochemical Microscopy (SECM) and Studies of Their Photoelectrochemical Properties , 2010 .

[466]  Hui Yang,et al.  An orthophosphate semiconductor with photooxidation properties under visible-light irradiation. , 2010, Nature materials.

[467]  Garry Rumbles,et al.  Controlled assembly of hydrogenase-CdTe nanocrystal hybrids for solar hydrogen production. , 2010, Journal of the American Chemical Society.

[468]  Jinglin Liu,et al.  Water-soluble fluorescent carbon quantum dots and photocatalyst design. , 2010, Angewandte Chemie.

[469]  Jinlong Zhang,et al.  Development of modified N doped TiO2 photocatalyst with metals, nonmetals and metal oxides , 2010 .

[470]  Masayuki Kanehara,et al.  Photocatalytic overall water splitting promoted by two different cocatalysts for hydrogen and oxygen evolution under visible light. , 2010, Angewandte Chemie.

[471]  J. Janek,et al.  Mesoporous TiO(2): comparison of classical sol-gel and nanoparticle based photoelectrodes for the water splitting reaction. , 2010, ACS nano.

[472]  A. Manivannan,et al.  Shape-enhanced photocatalytic activity of single-crystalline anatase TiO(2) (101) nanobelts. , 2010, Journal of the American Chemical Society.

[473]  M. Antonietti,et al.  Highly-active Tantalum (V) nitride nanoparticles prepared from a mesoporous carbon nitride template for photocatalytic hydrogen evolution under visible light irradiation , 2010 .

[474]  A. Bard Inner-sphere heterogeneous electrode reactions. Electrocatalysis and photocatalysis: the challenge. , 2010, Journal of the American Chemical Society.

[475]  K. Domen,et al.  Modified Ta3N5 powder as a photocatalyst for O2 evolution in a two-step water splitting system with an iodate/iodide shuttle redox mediator under visible light. , 2010, Langmuir : the ACS journal of surfaces and colloids.

[476]  Kazunari Domen,et al.  Facile fabrication of an efficient oxynitride TaON photoanode for overall water splitting into H2 and O2 under visible light irradiation. , 2010, Journal of the American Chemical Society.

[477]  Daeyeon Lee,et al.  Biologically templated photocatalytic nanostructures for sustained light-driven water oxidation. , 2010, Nature nanotechnology.

[478]  H. Teng,et al.  Solution synthesis of high-quality CuInS2 quantum dots as sensitizers for TiO2 photoelectrodes , 2010 .

[479]  Kazuhiko Maeda,et al.  Efficient nonsacrificial water splitting through two-step photoexcitation by visible light using a modified oxynitride as a hydrogen evolution photocatalyst. , 2010, Journal of the American Chemical Society.

[480]  Z. Li,et al.  Photocatalytic degradation of RhB over TiO2 bilayer films: effect of defects and their location. , 2010, Langmuir : the ACS journal of surfaces and colloids.

[481]  A. Paul Alivisatos,et al.  Photocatalytic Hydrogen Production with Tunable Nanorod Heterostructures , 2010 .

[482]  Qixin Guo,et al.  Artificial Inorganic Leafs for Efficient Photochemical Hydrogen Production Inspired by Natural Photosynthesis , 2010, Advanced materials.

[483]  Fang Qian,et al.  Double-sided CdS and CdSe quantum dot co-sensitized ZnO nanowire arrays for photoelectrochemical hydrogen generation. , 2010, Nano letters.

[484]  C. Grimes,et al.  Ta3N5 nanotube arrays for visible light water photoelectrolysis. , 2010, Nano letters.

[485]  Yuh‐Lang Lee,et al.  CdS/CdSe Co-Sensitized TiO2 Photoelectrode for Efficient Hydrogen Generation in a Photoelectrochemical Cell† , 2010 .

[486]  Jennifer K. Hensel,et al.  Synergistic effect of CdSe quantum dot sensitization and nitrogen doping of TiO(2) nanostructures for photoelectrochemical solar hydrogen generation. , 2010, Nano letters.

[487]  Benxia Li,et al.  Facile Synthesis and Enhanced Photocatalytic Performance of Flower-like ZnO Hierarchical Microstructures , 2010 .

[488]  Lianzhou Wang,et al.  Titania-based photocatalysts—crystal growth, doping and heterostructuring , 2010 .

[489]  Prashant V Kamat,et al.  Anchoring semiconductor and metal nanoparticles on a two-dimensional catalyst mat. Storing and shuttling electrons with reduced graphene oxide. , 2010, Nano letters.

[490]  Thomas F. Jaramillo,et al.  Accelerating materials development for photoelectrochemical hydrogen production: Standards for methods, definitions, and reporting protocols , 2010 .

[491]  Kyoung-Shin Choi,et al.  Photochemical deposition of cobalt-based oxygen evolving catalyst on a semiconductor photoanode for solar oxygen production , 2009, Proceedings of the National Academy of Sciences.

[492]  P. D. Tran,et al.  From Hydrogenases to Noble Metal–Free Catalytic Nanomaterials for H2 Production and Uptake , 2009, Science.

[493]  Erwin Reisner,et al.  Visible light-driven H(2) production by hydrogenases attached to dye-sensitized TiO(2) nanoparticles. , 2009, Journal of the American Chemical Society.

[494]  Peter Lindblad,et al.  Biomimetic and microbial approaches to solar fuel generation. , 2009, Accounts of chemical research.

[495]  H. Nemoto,et al.  Solar Water Splitting Using Powdered Photocatalysts Driven by Z-Schematic Interparticle Electron Transfer without an Electron Mediator , 2009 .

[496]  Hongjian Yan,et al.  Visible-light-driven hydrogen production with extremely high quantum efficiency on Pt-PdS/CdS photocatalyst , 2009 .

[497]  Nathan S. Lewis,et al.  Combinatorial synthesis and high-throughput photopotential and photocurrent screening of mixed-metal oxides for photoelectrochemical water splitting , 2009 .

[498]  G. Lu,et al.  Visible light responsive nitrogen doped anatase TiO2 sheets with dominant {001} facets derived from TiN. , 2009, Journal of the American Chemical Society.

[499]  M. Antonietti,et al.  Ordered Mesoporous SBA-15 Type Graphitic Carbon Nitride: A Semiconductor Host Structure for Photocatalytic Hydrogen Evolution with Visible Light , 2009 .

[500]  D. Ghosh,et al.  Janus nanostructures based on Au-TiO2 heterodimers and their photocatalytic activity in the oxidation of methanol. , 2009, ACS applied materials & interfaces.

[501]  W. Sigmund,et al.  Photocatalytic Carbon‐Nanotube–TiO2 Composites , 2009 .

[502]  Zhigang Chen,et al.  Enhanced photocatalytic hydrogen evolution by prolonging the lifetime of carriers in ZnO/CdS heterostructures. , 2009, Chemical communications.

[503]  Fang Qian,et al.  Nitrogen-doped ZnO nanowire arrays for photoelectrochemical water splitting. , 2009, Nano letters.

[504]  K. Domen,et al.  Role and Function of Noble-Metal/Cr-Layer Core/Shell Structure Cocatalysts for Photocatalytic Overall Water Splitting Studied by Model Electrodes , 2009 .

[505]  J. S. Lee,et al.  Size effects of WO3 nanocrystals for photooxidation of water in particulate suspension and photoelectrochemical film systems , 2009 .

[506]  Susumu Yoshikawa,et al.  Photocatalytic activity for hydrogen evolution of electrospun TiO2 nanofibers. , 2009, ACS applied materials & interfaces.

[507]  Jianwei Sun,et al.  Solar water oxidation by composite catalyst/alpha-Fe(2)O(3) photoanodes. , 2009, Journal of the American Chemical Society.

[508]  Yan Song,et al.  Nearly monodisperse CuInS2 hierarchical microarchitectures for photocatalytic H2 evolution under visible light. , 2009, Inorganic chemistry.

[509]  F. Du,et al.  Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction , 2009, Science.

[510]  D. Nocera,et al.  Electrolyte-dependent electrosynthesis and activity of cobalt-based water oxidation catalysts. , 2009, Journal of the American Chemical Society.

[511]  M. Antonietti,et al.  Polymer semiconductors for artificial photosynthesis: hydrogen evolution by mesoporous graphitic carbon nitride with visible light. , 2009, Journal of the American Chemical Society.

[512]  A. Fujishima,et al.  TiO2 photocatalysis and related surface phenomena , 2008 .

[513]  Hongjian Yan,et al.  Direct splitting of H2S into H2 and S on CdS-based photocatalyst under visible light irradiation , 2008 .

[514]  Wei Zhang,et al.  Doped Solid Solution: (Zn0.95Cu0.05)1−xCdxS Nanocrystals with High Activity for H2 Evolution from Aqueous Solutions under Visible Light , 2008 .

[515]  J. Jang,et al.  Location and State of Pt in Platinized CdS/TiO2 Photocatalysts for Hydrogen Production from Water under Visible Light , 2008 .

[516]  Hideki Kato,et al.  The effect of co-catalyst for Z-scheme photocatalysis systems with an Fe3+/Fe2+ electron mediator on overall water splitting under visible light irradiation , 2008 .

[517]  F. Armstrong,et al.  The difference a Se makes? Oxygen-tolerant hydrogen production by the [NiFeSe]-hydrogenase from Desulfomicrobium baculatum. , 2008, Journal of the American Chemical Society.

[518]  J. Jang,et al.  Role of platinum-like tungsten carbide as cocatalyst of CdS photocatalyst for hydrogen production under visible light irradiation , 2008 .

[519]  Daniel G. Nocera,et al.  In Situ Formation of an Oxygen-Evolving Catalyst in Neutral Water Containing Phosphate and Co2+ , 2008, Science.

[520]  K. Domen,et al.  Surface Modification of TaON with Monoclinic ZrO2 to Produce a Composite Photocatalyst with Enhanced Hydrogen Evolution Activity under Visible Light , 2008 .

[521]  Yūta Noda,et al.  Synthesis of Crystallized Mesoporous Tantalum Oxide and Its Photocatalytic Activity for Overall Water Splitting under Ultraviolet Light Irradiation , 2008 .

[522]  P. Kamat,et al.  TiO2-graphene nanocomposites. UV-assisted photocatalytic reduction of graphene oxide. , 2008, ACS nano.

[523]  P. Ajayan,et al.  Nanostructured VO2 photocatalysts for hydrogen production. , 2008, ACS nano.

[524]  Jin Zou,et al.  Anatase TiO2 single crystals with a large percentage of reactive facets , 2008, Nature.

[525]  Richard M. Lueptow,et al.  Photoreactive TiO2/carbon nanotube composites: synthesis and reactivity. , 2008, Environmental science & technology.

[526]  Can Li,et al.  Enhancement of photocatalytic H2 evolution on CdS by loading MoS2 as Cocatalyst under visible light irradiation. , 2008, Journal of the American Chemical Society.

[527]  Hyunwoong Park,et al.  Effects of the preparation method of the ternary CdS/TiO2/Pt hybrid photocatalysts on visible light-induced hydrogen production , 2008 .

[528]  P. Kulesza,et al.  Metal oxide photoanodes for solar hydrogen production , 2008 .

[529]  Frank E. Osterloh,et al.  Inorganic Materials as Catalysts for Photochemical Splitting of Water , 2008 .

[530]  K. Domen,et al.  Effect of post-calcination on photocatalytic activity of (Ga1−xZnx)(N1−xOx) solid solution for overall water splitting under visible light , 2008 .

[531]  Can Li,et al.  Importance of the relationship between surface phases and photocatalytic activity of TiO2. , 2008, Angewandte Chemie.

[532]  Jinhua Ye,et al.  Efficient photocatalytic decomposition of acetaldehyde over a solid-solution perovskite (Ag0.75Sr0.25)(Nb0.75Ti0.25)O3 under visible-light irradiation. , 2008, Journal of the American Chemical Society.

[533]  Tsuyoshi Takata,et al.  Two step water splitting into H2 and O2 under visible light by ATaO2N (A = Ca, Sr, Ba) and WO3 with IO3-/I- shuttle redox mediator , 2008 .

[534]  M. Ghirardi,et al.  [FeFe]-hydrogenase-catalyzed H2 production in a photoelectrochemical biofuel cell. , 2008, Journal of the American Chemical Society.

[535]  Qing Chen,et al.  CdS quantum dots sensitized TiO2 nanotube-array photoelectrodes. , 2008, Journal of the American Chemical Society.

[536]  M. Fontecave,et al.  Cobaloxime-based photocatalytic devices for hydrogen production. , 2008, Angewandte Chemie.

[537]  J. Jang,et al.  Simultaneous hydrogen production and decomposition of H2S dissolved in alkaline water over CdS–TiO2 composite photocatalysts under visible light irradiation , 2007 .

[538]  K. Domen,et al.  Facile Cd−Thiourea Complex Thermolysis Synthesis of Phase-Controlled CdS Nanocrystals for Photocatalytic Hydrogen Production under Visible Light , 2007 .

[539]  Daniel G Nocera,et al.  Hydrogen production by molecular photocatalysis. , 2007, Chemical reviews.

[540]  Ning-Bew Wong,et al.  Silicon quantum dots: a general photocatalyst for reduction, decomposition, and selective oxidation reactions. , 2007, Journal of the American Chemical Society.

[541]  J. Fierro,et al.  Hydrogen production reactions from carbon feedstocks: fossil fuels and biomass. , 2007, Chemical reviews.

[542]  Wanhong Ma,et al.  Preparation of titania/carbon nanotube composites using supercritical ethanol and their photocatalytic activity for phenol degradation under visible light irradiation , 2007 .

[543]  Thomas F. Jaramillo,et al.  Identification of Active Edge Sites for Electrochemical H2 Evolution from MoS2 Nanocatalysts , 2007, Science.

[544]  Xiaobo Chen,et al.  Titanium dioxide nanomaterials: synthesis, properties, modifications, and applications. , 2007, Chemical reviews.

[545]  Yunfeng Lu,et al.  Mesoporous titania spheres with tunable chamber stucture and enhanced photocatalytic activity. , 2007, Journal of the American Chemical Society.

[546]  George C. Schatz,et al.  Plasmonic Properties of Copper Nanoparticles Fabricated by Nanosphere Lithography , 2007 .

[547]  Kazunari Domen,et al.  New Non-Oxide Photocatalysts Designed for Overall Water Splitting under Visible Light , 2007 .

[548]  J. Jang,et al.  Optimization of CdS/TiO2 nano-bulk composite photocatalysts for hydrogen production from Na2S/Na2SO3 aqueous electrolyte solution under visible light (λ ≥ 420 nm) , 2007 .

[549]  Ying Yu,et al.  Preparation of multi-walled carbon nanotube supported TiO2 and its photocatalytic activity in the reduction of CO2 with H2O , 2007 .

[550]  Anusorn Kongkanand,et al.  Single wall carbon nanotube scaffolds for photoelectrochemical solar cells. Capture and transport of photogenerated electrons. , 2007, Nano letters.

[551]  J. Goldemberg Ethanol for a Sustainable Energy Future , 2007, Science.

[552]  K. Domen,et al.  Noble‐Metal/Cr2O3 Core/Shell Nanoparticles as a Cocatalyst for Photocatalytic Overall Water Splitting , 2006 .

[553]  Nick Serpone,et al.  Is the band gap of pristine TiO(2) narrowed by anion- and cation-doping of titanium dioxide in second-generation photocatalysts? , 2006, The journal of physical chemistry. B.

[554]  K. Domen,et al.  Improvement of photocatalytic activity of (Ga1−xZnx)(N1−xOx) solid solution for overall water splitting by co-loading Cr and another transition metal , 2006 .

[555]  N. Lewis,et al.  Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.

[556]  Tomoki Akita,et al.  All-solid-state Z-scheme in CdS–Au–TiO2 three-component nanojunction system , 2006, Nature materials.

[557]  S. Oh,et al.  Photocatalytic Ohmic layered nanocomposite for efficient utilization of visible light photons , 2006 .

[558]  Balasubramanian Viswanathan,et al.  Alternate synthetic strategy for the preparation of CdS nanoparticles and its exploitation for water splitting , 2006 .

[559]  K. Domen,et al.  Photocatalyst releasing hydrogen from water , 2006, Nature.

[560]  X. Jiao,et al.  Monoclinic structured BiVO4 nanosheets: hydrothermal preparation, formation mechanism, and coloristic and photocatalytic properties. , 2006, The journal of physical chemistry. B.

[561]  J. Bandara,et al.  Highly stable CuO incorporated TiO_2 catalyst for photocatalytic hydrogen production from H_2O , 2005, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.

[562]  H. Kim,et al.  Photocatalytic nanodiodes for visible-light photocatalysis. , 2005, Angewandte Chemie.

[563]  A. Kudo,et al.  Visible-light-induced H2 evolution from an aqueous solution containing sulfide and sulfite over a ZnS-CuInS2-AgInS2 solid-solution photocatalyst. , 2005, Angewandte Chemie.

[564]  Kazuhiko Maeda,et al.  GaN:ZnO solid solution as a photocatalyst for visible-light-driven overall water splitting. , 2005, Journal of the American Chemical Society.

[565]  Clément Sanchez,et al.  Biomimetism and bioinspiration as tools for the design of innovative materials and systems , 2005, Nature materials.

[566]  Jacob Bonde,et al.  Biomimetic hydrogen evolution: MoS2 nanoparticles as catalyst for hydrogen evolution. , 2005, Journal of the American Chemical Society.

[567]  Yoko Yamada,et al.  RuO2-Loaded β-Ge3N4 as a Non-Oxide Photocatalyst for Overall Water Splitting , 2005 .

[568]  D. Gamelin,et al.  Doped Semiconductor Nanocrystals: Synthesis, Characterization, Physical Properties, and Applications , 2005 .

[569]  K. Domen,et al.  Water reduction and oxidation on Pt-Ru/Y2Ta2O5N2 catalyst under visible light irradiation. , 2004, Chemical communications.

[570]  Hideki Kato,et al.  Photocatalytic H2 evolution reaction from aqueous solutions over band structure-controlled (AgIn)xZn2(1-x)S2 solid solution photocatalysts with visible-light response and their surface nanostructures. , 2004, Journal of the American Chemical Society.

[571]  A. Kudo,et al.  Construction of Z-scheme Type Heterogeneous Photocatalysis Systems for Water Splitting into H2 and O2 under Visible Light Irradiation , 2004 .

[572]  John A. Turner,et al.  Sustainable Hydrogen Production , 2004, Science.

[573]  Joshua E. Goldberger,et al.  SEMICONDUCTOR NANOWIRES AND NANOTUBES , 2004 .

[574]  H. Kim,et al.  An undoped, single-phase oxide photocatalyst working under visible light. , 2004, Journal of the American Chemical Society.

[575]  A. Kudo,et al.  Photocatalytic activities of noble metal ion doped SrTiO3under visible light irradiation , 2004 .

[576]  Y. Inoue,et al.  Photocatalytic Activity for Water Decomposition of RuO2-Dispersed Zn2GeO4 with d10 Configuration , 2004 .

[577]  Can Li,et al.  Photocatalytic water reduction under visible light on a novel ZnIn2S4 catalyst synthesized by hydrothermal method. , 2003, Chemical communications.

[578]  A. Kudo,et al.  Photophysical properties and photocatalytic activities under visible light irradiation of silver vanadates , 2003 .

[579]  Zhi Zheng,et al.  Synthesis and Characterization of Phosphated Mesoporous Titanium Dioxide with High Photocatalytic Activity , 2003 .

[580]  Hideki Kato,et al.  Highly efficient water splitting into H2 and O2 over lanthanum-doped NaTaO3 photocatalysts with high crystallinity and surface nanostructure. , 2003, Journal of the American Chemical Society.

[581]  Akio Ishikawa,et al.  Conduction and Valence Band Positions of Ta2O5, TaON, and Ta3N5 by UPS and Electrochemical Methods , 2003 .

[582]  K. Domen,et al.  Oxysulfide Sm2Ti2S2O5 as a Stable Photocatalyst for Water Oxidation and Reduction under Visible Light Irradiation (λ ≤ 650 nm) , 2002 .

[583]  Jiaguo Yu,et al.  Direct Sonochemical Preparation and Characterization of Highly Active Mesoporous TiO2 with a Bicrystalline Framework , 2002 .

[584]  Charles C. Sorrell,et al.  Photo-electrochemical hydrogen generation from water using solar energy. Materials-related aspects , 2002 .

[585]  N. Saito,et al.  Photocatalysis for Water Decomposition by RuO2-Dispersed ZnGa2O4 with d10 Configuration , 2002 .

[586]  Tsuyoshi Takata,et al.  An oxynitride, TaON, as an efficient water oxidation photocatalyst under visible light irradiation (λ≤ 500 nm) , 2002 .

[587]  M. Kakihana,et al.  Polymerizable Complex Synthesis of Pure Sr2NbxTa2-xO7 Solid Solutions with High Photocatalytic Activities for Water Decomposition into H2 and O2 , 2002 .

[588]  Prashant V. Kamat,et al.  Photophysical, photochemical and photocatalytic aspects of metal nanoparticles , 2002 .

[589]  Akio Ishikawa,et al.  Ta3N5 as a Novel Visible Light-Driven Photocatalyst (λ<600 nm) , 2002 .

[590]  M. Trari,et al.  Hydrogen Photoproduction from Hydrogen Sulfide on Bi2S3 Catalyst , 2002 .

[591]  Tsuyoshi Takata,et al.  Photoreactions on LaTiO2N under Visible Light Irradiation , 2002 .

[592]  Hironori Arakawa,et al.  A new photocatalytic water splitting system under visible light irradiation mimicking a Z-scheme mechanism in photosynthesis , 2002 .

[593]  Hironori Arakawa,et al.  Direct splitting of water under visible light irradiation with an oxide semiconductor photocatalyst , 2001, Nature.

[594]  A. Züttel,et al.  Hydrogen-storage materials for mobile applications , 2001, Nature.

[595]  K. Domen,et al.  A new type of water splitting system composed of two different TiO2 photocatalysts (anatase, rutile) and a IO3−/I− shuttle redox mediator , 2001 .

[596]  R. Asahi,et al.  Visible-Light Photocatalysis in Nitrogen-Doped Titanium Oxides , 2001, Science.

[597]  A. Kudo,et al.  Water Splitting into H 2 and O 2 on Alkali Tantalate Photocatalysts ATaO 3 (A = Li, Na, and K) , 2001 .

[598]  K. Domen,et al.  Mesoporous Tantalum Oxide. 1. Characterization and Photocatalytic Activity for the Overall Water Decomposition , 2001 .

[599]  Stuart Licht,et al.  Efficient Solar Water Splitting, Exemplified by RuO2-Catalyzed AlGaAs/Si Photoelectrolysis , 2000 .

[600]  R. Amal,et al.  Role of Nanoparticles in Photocatalysis , 1999 .

[601]  A. Kudo,et al.  A Novel Aqueous Process for Preparation of Crystal Form-Controlled and Highly Crystalline BiVO4 Powder from Layered Vanadates at Room Temperature and Its Photocatalytic and Photophysical Properties , 1999 .

[602]  A. Kudo,et al.  H2 or O2 Evolution from Aqueous Solutions on Layered Oxide Photocatalysts Consisting of Bi3+ with 6s2 Configuration and d0 Transition Metal Ions , 1999 .

[603]  Akihiko Kudo,et al.  Photocatalytic H2 evolution under visible light irradiation on Zn1-xCuxS solid solution , 1999 .

[604]  Jackie Y. Ying,et al.  Role of Particle Size in Nanocrystalline TiO2-Based Photocatalysts , 1998 .

[605]  A. Kudo,et al.  New tantalate photocatalysts for water decomposition into H2 and O2 , 1998 .

[606]  Haller,et al.  Defects in semiconductors: some fatal, some vital , 1998, Science.

[607]  Turner,et al.  A monolithic photovoltaic-photoelectrochemical device for hydrogen production via water splitting , 1998, Science.

[608]  M. Kakihana,et al.  Preparation of K2La2Ti3O10 by polymerized complex method and photocatalytic decomposition of water , 1998 .

[609]  Eric L. Miller,et al.  High-efficiency photoelectrochemical hydrogen production using multijunction amorphous silicon photoelectrodes , 1998 .

[610]  J. Ying,et al.  Synthesis of Hexagonally Packed Mesoporous TiO2 by a Modified Sol–Gel Method , 1995 .

[611]  J. Yates,et al.  Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results , 1995 .

[612]  Donald Fitzmaurice,et al.  Spectroscopy of conduction band electrons in transparent metal oxide semiconductor films: optical determination of the flatband potential of colloidal titanium dioxide films , 1992 .

[613]  M. Grätzel,et al.  A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 films , 1991, Nature.

[614]  K. Domen,et al.  Photocatalytic decomposition of water over NiOK4Nb6O17 catalyst , 1988 .

[615]  K. Domen,et al.  Mechanism of photocatalytic decomposition of water into H2 and O2 over NiOSrTiO3 , 1986 .

[616]  Kazunari Domen,et al.  Photocatalytic decomposition of water into hydrogen and oxygen over nickel(II) oxide-strontium titanate (SrTiO3) powder. 1. Structure of the catalysts , 1986 .

[617]  J. Reber,et al.  Photochemical production of hydrogen with zinc sulfide suspensions , 1984 .

[618]  M. Graetzel,et al.  Visible-light-induced oxygen generation from aqueous dispersions of tungsten(VI) oxide , 1984 .

[619]  J. Reber,et al.  Photochemical hydrogen production with cadmium sulfide suspensions , 1984 .

[620]  F. H. Field,et al.  Fast atom bombardment study of glycerol: mass spectra and radiation chemistry , 1982 .

[621]  M. Graetzel,et al.  Artificial photosynthesis: water cleavage into hydrogen and oxygen by visible light , 1981 .

[622]  Michael Grätzel,et al.  Cleavage of Water by Visible‐Light Irradiation of Colloidal CdS Solutions; Inhibition of Photocorrosion by RuO2 , 1981 .

[623]  S. Morrison Electrochemistry at Semiconductor and Oxidized Metal Electrodes , 1980 .

[624]  J. White,et al.  Photodecomposition of water over Pt/TiO2 catalysts , 1980 .

[625]  A. Fujishima,et al.  Investigation of CdS Photoanode Reaction in the Electrolyte Solution Containing Sulfide Ion , 1979 .

[626]  M. Wrighton,et al.  Correlation of photocurrent-voltage curves with flat-band potential for stable photoelectrodes for the photoelectrolysis of water , 1976 .

[627]  A. Bard,et al.  Semiconductor electrodes. II. Electrochemistry at n-type titanium dioxide electrodes in acetonitrile solutions , 1975 .

[628]  A. Fujishima,et al.  Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.

[629]  R. Grigorovici,et al.  Optical Properties and Electronic Structure of Amorphous Germanium , 1966, 1966.

[630]  Dapeng Liu,et al.  Monodispersed nickel phosphide nanocrystals with different phases: synthesis, characterization and electrocatalytic properties for hydrogen evolution , 2015 .

[631]  Li Gao,et al.  Ni(OH)2 loaded on TaON for enhancing photocatalytic water splitting activity under visible light irradiation , 2015 .

[632]  S. Ogale,et al.  Orthorhombic/cubic Cd2SnO4 nanojunctions: enhancing solar water splitting efficiency by the suppression of charge recombination , 2014 .

[633]  Z. Li,et al.  MoS2 as non-noble-metal co-catalyst for photocatalytic hydrogen evolution over hexagonal ZnIn2S4 under visible light irradiations , 2014 .

[634]  Z. Ren,et al.  Efficient solar water-splitting using a nanocrystalline CoO photocatalyst. , 2014, Nature nanotechnology.

[635]  Micheál D. Scanlon,et al.  A nanoporous molybdenum carbide nanowire as an electrocatalyst for hydrogen evolution reaction , 2014 .

[636]  Fuding Lin,et al.  Adaptive semiconductor/electrocatalyst junctions in water-splitting photoanodes. , 2014, Nature materials.

[637]  Kristin A. Persson,et al.  First principles high throughput screening of oxynitrides for water-splitting photocatalysts , 2013 .

[638]  M. Matheron,et al.  Molecular engineering of a cobalt-based electrocatalytic nanomaterial for H₂ evolution under fully aqueous conditions. , 2013, Nature chemistry.

[639]  Angel T. Garcia-Esparza,et al.  Tungsten carbide nanoparticles as efficient cocatalysts for photocatalytic overall water splitting. , 2013, ChemSusChem.

[640]  Lianzhou Wang,et al.  ZnO–CdS@Cd Heterostructure for Effective Photocatalytic Hydrogen Generation , 2012 .

[641]  M. Antonietti,et al.  A metal-free polymeric photocatalyst for hydrogen production from water under visible light. , 2009, Nature materials.

[642]  A. Kudo,et al.  Heterogeneous photocatalyst materials for water splitting. , 2009, Chemical Society reviews.

[643]  Tsuyoshi Takata,et al.  Self-Templated Synthesis of Nanoporous CdS Nanostructures for Highly Efficient Photocatalytic Hydrogen Production under Visible Light , 2008 .

[644]  A. Bard,et al.  Novel carbon-doped TiO2 nanotube arrays with high aspect ratios for efficient solar water splitting. , 2006, Nano letters.

[645]  M. Grätzel Photoelectrochemical cells : Materials for clean energy , 2001 .

[646]  A. Kudo,et al.  Water Splitting into H2 and O2 on New Sr2M2O7 (M = Nb and Ta) Photocatalysts with Layered Perovskite Structures: Factors Affecting the Photocatalytic Activity , 2000 .

[647]  Anders Hagfeldt,et al.  Light-Induced Redox Reactions in Nanocrystalline Systems , 1995 .

[648]  S. Martin,et al.  Environmental Applications of Semiconductor Photocatalysis , 1995 .

[649]  Allen J. Bard,et al.  Artificial Photosynthesis: Solar Splitting of Water to Hydrogen and Oxygen , 1995 .

[650]  H. Arakawa,et al.  Photocatalytic decomposition of water and photocatalytic reduction of carbon dioxide over zirconia catalyst , 1993 .

[651]  K. I. Vasu,et al.  Transition metal-based hydrogen electrodes in alkaline solution — electrocatalysis on nickel based binary alloy coatings , 1990 .

[652]  K. Domen,et al.  Photodecomposition of water and hydrogen evolution from aqueous methanol solution over novel niobate photocatalysts , 1986 .

[653]  Shinri Sato,et al.  Photolysis of water over metallized powdered titanium dioxide , 1985 .

[654]  Nick Serpone,et al.  Visible light induced generation of hydrogen from H2S in mixed semiconductor dispersions; improved efficiency through inter-particle electron transfer , 1984 .

[655]  Bard,et al.  Design of semiconductor photoelectrochemical systems for solar energy conversion. Technical report , 1981 .

[656]  A. Bard Photoelectrochemistry and heterogeneous photo-catalysis at semiconductors , 1979 .

[657]  A. Bard,et al.  Heterogeneous Photocatalytic Preparation of Supported Catalysts. Photodeposition of Platinum on TiO2 Powder and Other Substrates , 1978 .