TiO2-based heterojunction photocatalysts for photocatalytic reduction of CO2 into solar fuels
暂无分享,去创建一个
Changlin Yu | Ye Wang | Hong Liu | Qinghong Zhang | Ye Wang | Changling Yu | Hong Liu | Qinghong Zhang | Longfu Wei | Longfu Wei
[1] N. Amin,et al. Photocatalytic CO2 reduction with H2O vapors using montmorillonite/TiO2 supported microchannel monolith photoreactor , 2013 .
[2] J. Wu,et al. Photoreduction of CO2 in an optical-fiber photoreactor: Effects of metals addition and catalyst carrier , 2008 .
[3] J. Zhang,et al. Well-designed 3D ZnIn2S4 nanosheets/TiO2 nanobelts as direct Z-scheme photocatalysts for CO2 photoreduction into renewable hydrocarbon fuel with high efficiency , 2017 .
[4] G. Shi,et al. Graphene based new energy materials , 2011 .
[5] Dong Liu,et al. Photocatalytic CO2 reduction using an internally illuminated monolith photoreactor , 2011 .
[6] T. Peng,et al. Recent Advances in Heterogeneous Photocatalytic CO2 Conversion to Solar Fuels , 2016 .
[7] Kimfung Li,et al. Cu2O/Reduced Graphene Oxide Composites for the Photocatalytic Conversion of CO2 , 2014, ChemSusChem.
[8] Xiaohong Yin,et al. Photocatalytic reduction of CO2 in cyclohexanol on CdS–TiO2 heterostructured photocatalyst , 2014 .
[9] S. Ibrahim,et al. Rapid thermal reduced graphene oxide/Pt–TiO2 nanotube arrays for enhanced visible-light-driven photocatalytic reduction of CO2 , 2015 .
[10] B. Fang,et al. Hierarchical CuO–TiO2 Hollow Microspheres for Highly Efficient Photodriven Reduction of CO2 to CH4 , 2015 .
[11] Ying Dai,et al. An anion exchange approach to Bi2WO6 hollow microspheres with efficient visible light photocatalytic reduction of CO2 to methanol. , 2012, Chemical communications.
[12] N. Singha,et al. An in situ approach for the synthesis of a gum ghatti-g-interpenetrating terpolymer network hydrogel for the high-performance adsorption mechanism evaluation of Cd(II), Pb(II), Bi(III) and Sb(III) , 2018 .
[13] Kazunari Domen,et al. New Non-Oxide Photocatalysts Designed for Overall Water Splitting under Visible Light , 2007 .
[14] Jingying Shi,et al. Composite Sr2TiO4/SrTiO3(La,Cr) heterojunction based photocatalyst for hydrogen production under visible light irradiation , 2013 .
[15] C. Dong,et al. Size-dependent activity and selectivity of carbon dioxide photocatalytic reduction over platinum nanoparticles , 2018, Nature Communications.
[16] Ying Yu,et al. Octahedral Cu2O-modified TiO2 nanotube arrays for efficient photocatalytic reduction of CO2 , 2015 .
[17] 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.
[18] Zhe Zhao,et al. ZnO2-promoted ZnO as an efficient photocatalyst for the photoreduction of carbon dioxide in the presence of water , 2018 .
[19] Ying Dai,et al. Photocatalytic reduction of CO2 to methanol by three-dimensional hollow structures of Bi2WO6 quantum dots , 2017 .
[20] Q. Liao,et al. An optofluidic planar microreactor for photocatalytic reduction of CO2 in alkaline environment , 2017 .
[21] Pingquan Wang,et al. Graphene–WO3 nanobelt composite: Elevated conduction band toward photocatalytic reduction of CO2 into hydrocarbon fuels , 2013 .
[22] H. Schobert,et al. Photoinduced activation of CO2 on Ti-based heterogeneous catalysts: Current state, chemical physics-based insights and outlook , 2009 .
[23] Hiromi Yamashita,et al. Photocatalytic reduction of CO2 with H2O on various titanium oxide photocatalysts , 2012 .
[24] A. Mohamed,et al. Reduced graphene oxide-TiO2 nanocomposite as a promising visible-light-active photocatalyst for the conversion of carbon dioxide , 2013, Nanoscale Research Letters.
[25] G. Mul,et al. Artificial photosynthesis over crystalline TiO2-based catalysts: fact or fiction? , 2010, Journal of the American Chemical Society.
[26] Xiaohong Yin,et al. Photocatalytic reduction of carbon dioxide over ZnFe2O4/TiO2 nanobelts heterostructure in cyclohexanol. , 2015, Journal of colloid and interface science.
[27] Tae Woo Kim,et al. A New Type of Efficient CO2 Adsorbent with Improved Thermal Stability: Self‐Assembled Nanohybrids with Optimized Microporosity and Gas Adsorption Functions , 2013 .
[28] A. Mohamed,et al. Oxygen vacancy induced Bi2WO6 for the realization of photocatalytic CO2 reduction over the full solar spectrum: from the UV to the NIR region. , 2016, Chemical communications.
[29] M. Maroto-Valer,et al. Performance comparison of CO2 conversion in slurry and monolith photoreactors using Pd and Rh-TiO2 catalyst under ultraviolet irradiation , 2012 .
[30] C. Grimes,et al. Hybrid CuxO–TiO2 Heterostructured Composites for Photocatalytic CO2 Reduction into Methane Using Solar Irradiation: Sunlight into Fuel , 2016, ACS omega.
[31] Peng Li,et al. Constructing cubic–orthorhombic surface-phase junctions of NaNbO3 towards significant enhancement of CO2 photoreduction , 2014 .
[32] Kamal Kishore,et al. Photo-catalytic reduction of carbon dioxide to methane using TiO2 as suspension in water , 2004 .
[33] Jiaguo Yu,et al. Nitrogen-doped TiO2 microsheets with enhanced visible light photocatalytic activity for CO2 reduction , 2015 .
[34] Jinhua Ye,et al. The Effects of Crystal Structure and Electronic Structure on Photocatalytic H2 Evolution and CO2 Reduction over Two Phases of Perovskite-Structured NaNbO3 , 2012 .
[35] Congjun Wang,et al. Size-dependent photocatalytic reduction of CO2 with PbS quantum dot sensitized TiO2 heterostructured photocatalysts , 2011 .
[36] Pawan Kumar,et al. Reduced graphene oxide–CuO nanocomposites for photocatalytic conversion of CO2 into methanol under visible light irradiation , 2016 .
[37] A. Mohamed,et al. One-pot synthesis of Ag-MWCNT@TiO2 core–shell nanocomposites for photocatalytic reduction of CO2 with water under visible light irradiation , 2015 .
[38] Xiaohong Yin,et al. Photocatalytically reducing CO2 to methyl formate in methanol over ZnS and Ni-doped ZnS photocatalysts , 2013 .
[39] Qinghong Zhang,et al. Carbon dioxide-enhanced photosynthesis of methane and hydrogen from carbon dioxide and water over Pt-promoted polyaniline-TiO2 nanocomposites. , 2015, Chemical communications.
[40] Lihua Huang,et al. CuO/Cu2O nanowire arrays grafted by reduced graphene oxide: synthesis, characterization, and application in photocatalytic reduction of CO2 , 2017 .
[41] Misook Kang,et al. Synthesis and optical properties of TDQD and effective CO2 reduction using a TDQD-photosensitized TiO2 film , 2016 .
[42] H. Bai,et al. Photocatalytic reduction of CO2 using molybdenum-doped titanate nanotubes in a MEA solution , 2015 .
[43] N. Zhang,et al. Recent progress on graphene-based photocatalysts: current status and future perspectives. , 2012, Nanoscale.
[44] G. Mul,et al. Strategies to design efficient silica-supported photocatalysts for reduction of CO₂. , 2014, Journal of the American Chemical Society.
[45] Xianzhi Fu,et al. TiO2-graphene nanocomposites for gas-phase photocatalytic degradation of volatile aromatic pollutant: is TiO2-graphene truly different from other TiO2-carbon composite materials? , 2010, ACS nano.
[46] N. Zhang,et al. A facile one-step way to anchor noble metal (Au, Ag, Pd) nanoparticles on a reduced graphene oxide mat with catalytic activity for selective reduction of nitroaromatic compounds , 2013 .
[47] Zhanghua Wu,et al. Low-cost and efficient visible-light-driven CaMg(CO 3 ) 2 @Ag 2 CO 3 microspheres fabricated via an ion exchange route , 2017 .
[48] K. Amine,et al. Tailored Preparation Methods of TiO2 Anatase, Rutile, Brookite: Mechanism of Formation and Electrochemical Properties† , 2010 .
[49] X. Lou,et al. Rationally designed hierarchical N-doped carbon@NiCo2O4 double-shelled nanoboxes for enhanced visible light CO2 reduction , 2018 .
[50] N. Dimitrijević,et al. Photoreduction of CO2 by TiO2 nanocomposites synthesized through reactive direct current magnetron sputter deposition , 2009 .
[51] Ye Wang,et al. Semiconductor-based nanocomposites for photocatalytic H2 production and CO2 conversion. , 2013, Physical chemistry chemical physics : PCCP.
[52] Jianshe Liu,et al. Semiconductor heterojunction photocatalysts: design, construction, and photocatalytic performances. , 2014, Chemical Society reviews.
[53] Qi Shen,et al. Biomimetic photoelectrocatalytic conversion of greenhouse gas carbon dioxide: Two-electron reduction for efficient formate production , 2017 .
[54] Qi Shen,et al. A CO2 adsorption-enhanced semiconductor/metal-complex hybrid photoelectrocatalytic interface for efficient formate production , 2016 .
[55] Junwang Tang,et al. Recent progress in artificial photosynthesis: CO2 photoreduction to valuable chemicals in a heterogeneous system , 2013 .
[56] N. Zhang,et al. Graphene Oxide as a Surfactant and Support for In-Situ Synthesis of Au–Pd Nanoalloys with Improved Visible Light Photocatalytic Activity , 2014 .
[57] M. Fan,et al. Z-scheme SnO2−x/g-C3N4 composite as an efficient photocatalyst for dye degradation and photocatalytic CO2 reduction , 2015 .
[58] Jian Liu,et al. Synthesis of 3D ordered macroporous TiO2-supported Au nanoparticle photocatalysts and their photocatalytic performances for the reduction of CO2 to methane , 2015 .
[59] Yan Cao,et al. Photocatalytic CO2 conversion to methanol by Cu2O/graphene/TNA heterostructure catalyst in a visible-light-driven dual-chamber reactor , 2016 .
[60] Changling Yu,et al. Enhancement of the visible light activity and stability of Ag2CO3 by formation of AgI/Ag2CO3 heterojunction , 2014 .
[61] Geoffrey I N Waterhouse,et al. Recent Progress in Photocatalytic CO2Reduction Over Perovskite Oxides , 2017 .
[62] Chun He,et al. Photocatalytic reduction of CO2 to hydrocarbons using AgBr/TiO2 nanocomposites under visible light , 2011 .
[63] Wei Chen,et al. N-doped carbon quantum dots for TiO2-based photocatalysts and dye-sensitized solar cells , 2013 .
[64] T. He,et al. Photocatalytic Reduction of CO2 over Heterostructure Semiconductors into Value-Added Chemicals. , 2016, Chemical record.
[65] Xiaoze Du,et al. Performance analysis of photocatalytic CO2 reduction in optical fiber monolith reactor with multiple inverse lights , 2014 .
[66] Jae Won Choi,et al. Quadruple metal-based layered structure as the photocatalyst for conversion of carbon dioxide into a value added carbon monoxide with high selectivity and efficiency , 2017 .
[67] Hongzhi Wang,et al. Hierarchical nanostructure of WO3 nanorods on TiO2 nanofibers and the enhanced visible light photocatalytic activity for degradation of organic pollutants , 2013 .
[68] X. Lou,et al. Construction of ZnIn2S4-In2O3 Hierarchical Tubular Heterostructures for Efficient CO2 Photoreduction. , 2018, Journal of the American Chemical Society.
[69] Zhichuan J. Xu,et al. Hybrid catalysts for photoelectrochemical reduction of carbon dioxide: a prospective review on semiconductor/metal complex co-catalyst systems , 2014 .
[70] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[71] Zhao‐Qing Liu,et al. One-pot synthesis of heterostructured Bi2S3/BiOBr microspheres with highly efficient visible light photocatalytic performance , 2015 .
[72] Aaron J. Sathrum,et al. Electrocatalytic and homogeneous approaches to conversion of CO2 to liquid fuels. , 2009, Chemical Society reviews.
[73] Jacek K. Stolarczyk,et al. Photocatalytic reduction of CO2 on TiO2 and other semiconductors. , 2013, Angewandte Chemie.
[74] Bhupendra Kumar,et al. Photochemical and photoelectrochemical reduction of CO2. , 2012, Annual review of physical chemistry.
[75] Jinhua Ye,et al. Surface-coordination-induced selective synthesis of cubic and orthorhombic NaNbO3 and their photocatalytic properties , 2013 .
[76] Yajun Wang,et al. AuPd/3DOM-TiO2 catalysts for photocatalytic reduction of CO2: High efficient separation of photogenerated charge carriers , 2017 .
[77] S. Sharifnia,et al. Synthesis of ZnS/ZnO nanocomposite through solution combustion method for high rate photocatalytic conversion of CO2 and CH4 , 2017 .
[78] Yuekun Lai,et al. A review of one-dimensional TiO2 nanostructured materials for environmental and energy applications , 2016 .
[79] J. Wu,et al. A novel twin reactor for CO2 photoreduction to mimic artificial photosynthesis , 2013 .
[80] Photocatalytic CO2 reduction by TiO2 and related titanium containing solids , 2012 .
[81] Hailong Li,et al. Enhanced selective photocatalytic reduction of CO2 to CH4 over plasmonic Au modified g-C3N4 photocatalyst under UV–vis light irradiation , 2018 .
[82] Junying Zhang,et al. Synthesis, characterization and enhanced photocatalytic CO2 reduction activity of graphene supported TiO2 nanocrystals with coexposed {001} and {101} facets. , 2016, Physical chemistry chemical physics : PCCP.
[83] Xin Li,et al. Graphene in Photocatalysis: A Review. , 2016, Small.
[84] M. Gondal,et al. Cu2O/TiO2 heterostructure nanotube arrays prepared by an electrodeposition method exhibiting enhanced photocatalytic activity for CO2 reduction to methanol , 2014 .
[85] Xiaohong Yin,et al. Synthesis of hexagonal and cubic ZnIn2S4 nanosheets for the photocatalytic reduction of CO2 with methanol , 2015 .
[86] Jincheng Liu,et al. Low-temperature synthesis of graphene/Bi2Fe4O9 composite for synergistic adsorption-photocatalytic degradation of hydrophobic pollutant under solar irradiation , 2015 .
[87] G. Fudenberg,et al. Ultrahigh electron mobility in suspended graphene , 2008, 0802.2389.
[88] Linda S. Schadler,et al. LOAD TRANSFER IN CARBON NANOTUBE EPOXY COMPOSITES , 1998 .
[89] Andre K. Geim,et al. The rise of graphene. , 2007, Nature materials.
[90] Jiaguo Yu,et al. 2D/2D Heterojunction of Ultrathin MXene/Bi2WO6 Nanosheets for Improved Photocatalytic CO2 Reduction , 2018 .
[91] N. Dimitrijević,et al. Synthesizing mixed-phase TiO2 nanocomposites using a hydrothermal method for photo-oxidation and photoreduction applications , 2008 .
[92] Ping Wang,et al. Progress in graphene-based photoactive nanocomposites as a promising class of photocatalyst. , 2012, Nanoscale.
[93] A. Mohamed,et al. Self-assembly of nitrogen-doped TiO2 with exposed {001} facets on a graphene scaffold as photo-active hybrid nanostructures for reduction of carbon dioxide to methane , 2014, Nano Research.
[94] Lan Yuan,et al. Photocatalytic conversion of CO2 into value-added and renewable fuels , 2015 .
[95] A. Reller,et al. Photoinduced reactivity of titanium dioxide , 2004 .
[96] Itamar Willner,et al. Photosensitized reduction of carbon dioxide to methane and hydrogen evolution in the presence of ruthenium and osmium colloids: strategies to design selectivity of products distribution , 1987 .
[97] T. He,et al. Visible‐Light Photocatalytic Conversion of Carbon Dioxide into Methane Using Cu2O/TiO2 Hollow Nanospheres , 2015 .
[98] Xingxing Wu,et al. Graphene-wrapped Pt/TiO2 photocatalysts with enhanced photogenerated charges separation and reactant adsorption for high selective photoreduction of CO2 to CH4 , 2018, Applied Catalysis B: Environmental.
[99] Y. Ling,et al. Photocatalytic reduction of CO2 on FeTiO3/TiO2 photocatalyst , 2012 .
[100] Qinghong Zhang,et al. SrNb2O6 nanoplates as efficient photocatalysts for the preferential reduction of CO2 in the presence of H2O. , 2015, Chemical communications.
[101] Can Li,et al. Charge separation via asymmetric illumination in photocatalytic Cu2O particles , 2018, Nature Energy.
[102] Masahiro Yoshimura,et al. A water-soluble titanium complex for the selective synthesis of nanocrystalline brookite, rutile, and anatase by a hydrothermal method. , 2006, Angewandte Chemie.
[103] Dongxue Han,et al. Intercorrelated Superhybrid of AgBr Supported on Graphitic‐C3N4‐Decorated Nitrogen‐Doped Graphene: High Engineering Photocatalytic Activities for Water Purification and CO2 Reduction , 2015, Advanced materials.
[104] Jiaguo Yu,et al. Surface modification and enhanced photocatalytic CO2 reduction performance of TiO2: a review , 2017 .
[105] Hong Liu,et al. Recent progress in design, synthesis, and applications of one-dimensional TiO2 nanostructured surface heterostructures: a review. , 2014, Chemical Society reviews.
[106] B. Li,et al. Ordered mesoporous CeO2-TiO2 composites: Highly efficient photocatalysts for the reduction of CO2 with H2O under simulated solar irradiation , 2013 .
[107] P. Kamat,et al. TiO2-graphene nanocomposites. UV-assisted photocatalytic reduction of graphene oxide. , 2008, ACS nano.
[108] Yong Zhou,et al. Rational construction of a CdS/reduced graphene oxide/TiO2 core–shell nanostructure as an all-solid-state Z-scheme system for CO2 photoreduction into solar fuels , 2015 .
[109] Avelino Corma,et al. Photocatalytic reduction of CO2 for fuel production: Possibilities and challenges , 2013 .
[110] J. Lehn,et al. Photochemical generation of carbon monoxide and hydrogen by reduction of carbon dioxide and water under visible light irradiation. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[111] Yi‐Jun Xu,et al. Graphene-Templated Bottom-up Fabrication of Ultralarge Binary CdS–TiO2 Nanosheets for Photocatalytic Selective Reduction , 2015 .
[112] K. Maeda. Z-Scheme Water Splitting Using Two Different Semiconductor Photocatalysts , 2013 .
[113] Yi Xie,et al. Partially Oxidized SnS2 Atomic Layers Achieving Efficient Visible-Light-Driven CO2 Reduction. , 2017, Journal of the American Chemical Society.
[114] Z. Zou,et al. Polymeric g-C3N4 Coupled with NaNbO3 Nanowires toward Enhanced Photocatalytic Reduction of CO2 into Renewable Fuel , 2014 .
[115] M. Zanoni,et al. On the application of Ti/TiO2/CuO n-p junction semiconductor: A case study of electrolyte, temperature and potential influence on CO2 reduction , 2017 .
[116] G. Lu,et al. Synthesis of anatase TiO2 rods with dominant reactive {010} facets for the photoreduction of CO2 to CH4 and use in dye-sensitized solar cells. , 2011, Chemical communications.
[117] Lai-fei Cheng,et al. Laminated Hybrid Junction of Sulfur‐Doped TiO2 and a Carbon Substrate Derived from Ti3C2 MXenes: Toward Highly Visible Light‐Driven Photocatalytic Hydrogen Evolution , 2018, Advanced science.
[118] Yi Luo,et al. Designing p-type semiconductor-metal hybrid structures for improved photocatalysis. , 2014, Angewandte Chemie.
[119] Karen Wilson,et al. P25@CoAl layered double hydroxide heterojunction nanocomposites for CO2 photocatalytic reduction , 2017 .
[120] A. Nogueira,et al. Boosting the solar-light-driven methanol production through CO2 photoreduction by loading Cu2O on TiO2-pillared K2Ti4O9 , 2016 .
[121] Michael L. Odlyzko,et al. PbSe Nanocrystal/TiOx Heterostructured Films: A Simple Route to Nanoscale Heterointerfaces and Photocatalysis , 2007 .
[122] Jimmy C. Yu,et al. Enhanced Activity and Stability of Carbon-Decorated Cuprous Oxide Mesoporous Nanorods for CO2 Reduction in Artificial Photosynthesis , 2016 .
[123] Xu Du,et al. Approaching ballistic transport in suspended graphene. , 2008, Nature nanotechnology.
[124] Michael O'Keeffe,et al. A route to high surface area, porosity and inclusion of large molecules in crystals , 2004, Nature.
[125] 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.
[126] R. Jin,et al. Phase Transformation Synthesis of Novel Ag2O/Ag2CO3 Heterostructures with High Visible Light Efficiency in Photocatalytic Degradation of Pollutants , 2014, Advanced materials.
[127] Jiaguo Yu,et al. Design and fabrication of semiconductor photocatalyst for photocatalytic reduction of CO2 to solar fuel , 2014, Science China Materials.
[128] M. Razali,et al. Highly efficient CuO loaded TiO2 nanotube photocatalyst for CO2 photoconversion , 2018, Materials Letters.
[129] Jinhua Ye,et al. General synthesis of hybrid TiO2 mesoporous "french fries" toward improved photocatalytic conversion of CO2 into hydrocarbon fuel: a case of TiO2/ZnO. , 2011, Chemistry.
[130] Lianzhou Wang,et al. Titania-based photocatalysts—crystal growth, doping and heterostructuring , 2010 .
[131] Pratim Biswas,et al. Size and structure matter: enhanced CO2 photoreduction efficiency by size-resolved ultrafine Pt nanoparticles on TiO2 single crystals. , 2012, Journal of the American Chemical Society.
[132] Jinhua Ye,et al. Porous-structured Cu2O/TiO2 nanojunction material toward efficient CO2 photoreduction , 2014, Nanotechnology.
[133] F. Kapteijn,et al. Challenges in the Greener Production of Formates/Formic Acid, Methanol, and DME by Heterogeneously Catalyzed CO2 Hydrogenation Processes , 2017, Chemical reviews.
[134] M. Gondal,et al. Selective laser enhanced photocatalytic conversion of CO2 into methanol , 2004 .
[135] John P. Baltrus,et al. Visible Light Photoreduction of CO2 Using CdSe/Pt/TiO2 Heterostructured Catalysts , 2009 .
[136] T. He,et al. Preparation of CdS@CeO 2 core/shell composite for photocatalytic reduction of CO 2 under visible-light irradiation , 2016 .
[137] Zhao Zhang,et al. Ag/GaP nanoparticles with photooxidation property under visible light , 2011 .
[138] Q. Liao,et al. Copper-decorated TiO 2 nanorod thin films in optofluidic planar reactors for efficient photocatalytic reduction of CO 2 , 2017 .
[139] M. Gondal,et al. Highly-active direct Z-scheme Si/TiO2 photocatalyst for boosted CO2 reduction into value-added methanol , 2014 .
[140] Jiaguo Yu,et al. A direct Z-scheme g-C3N4/SnS2 photocatalyst with superior visible-light CO2 reduction performance , 2017 .
[141] Y. Ling,et al. Synthesis of TiO2 nanoparticles using novel titanium oxalate complex towards visible light-driven photocatalytic reduction of CO2 to CH3OH , 2012 .
[142] A. Mohamed,et al. Visible-light-active oxygen-rich TiO2 decorated 2D graphene oxide with enhanced photocatalytic activity toward carbon dioxide reduction , 2015 .
[143] N. Peres,et al. Fine Structure Constant Defines Visual Transparency of Graphene , 2008, Science.
[144] A. Mohamed,et al. Noble metal modified reduced graphene oxide/TiO2 ternary nanostructures for efficient visible-light-driven photoreduction of carbon dioxide into methane , 2015 .
[145] X. Lü,et al. One-step high-temperature solvothermal synthesis of TiO2/sulfide nanocomposite spheres and their solar visible-light applications. , 2012, ACS applied materials & interfaces.
[146] C. L. Yu,et al. Grinding calcination preparation of WO3/BiOCl heterostructures with enhanced visible light photocatalytic activity , 2015 .
[147] Jarnuzi Gunlazuardi,et al. Photocatalytic reduction of CO2 on copper-doped Titania catalysts prepared by improved-impregnation method , 2005 .
[148] C. Grimes,et al. Heterojunction p-n-p Cu2O/S-TiO2/CuO: Synthesis and application to photocatalytic conversion of CO2 to methane , 2017 .
[149] Junying Zhang,et al. A novel reaction mode using H2 produced from solid-liquid reaction to promote CO2 reduction through solid-gas reaction , 2017 .
[150] M. Mercedes Maroto-Valer,et al. On the impact of Cu dispersion on CO2 photoreduction over Cu/TiO2 , 2012 .
[151] Longfeng Zhu,et al. Facile microwave assisted synthesis of N-rich carbon quantum dots/dual-phase TiO2 heterostructured nanocomposites with high activity in CO2 photoreduction , 2018, Applied Catalysis B: Environmental.
[152] Pingquan Wang,et al. One-pot synthesis of rutile TiO2 nanoparticle modified anatase TiO2 nanorods toward enhanced photocatalytic reduction of CO2 into hydrocarbon fuels , 2012 .
[153] Jiaguo Yu,et al. A Hierarchical Z-Scheme CdS-WO3 Photocatalyst with Enhanced CO2 Reduction Activity. , 2015, Small.
[154] Jun Jiang,et al. Steering charge kinetics in photocatalysis: intersection of materials syntheses, characterization techniques and theoretical simulations. , 2015, Chemical Society reviews.
[155] M. Mercedes Maroto-Valer,et al. Review of material design and reactor engineering on TiO2 photocatalysis for CO2 reduction , 2015 .
[156] C. N. Lau,et al. Superior thermal conductivity of single-layer graphene. , 2008, Nano letters.
[157] S. Chai,et al. Graphene oxide as a structure-directing agent for the two-dimensional interface engineering of sandwich-like graphene-g-C3N4 hybrid nanostructures with enhanced visible-light photoreduction of CO2 to methane. , 2015, Chemical communications.
[158] Maor F. Baruch,et al. Light-Driven Heterogeneous Reduction of Carbon Dioxide: Photocatalysts and Photoelectrodes. , 2015, Chemical reviews.
[159] Amit Kumar,et al. Biochar-templated g-C3N4/Bi2O2CO3/CoFe2O4 nano-assembly for visible and solar assisted photo-degradation of paraquat, nitrophenol reduction and CO2 conversion , 2018 .
[160] Zhengquan Li,et al. A novel hollow-hierarchical structured Bi2WO6 with enhanced photocatalytic activity for CO2 photoreduction. , 2018, Journal of colloid and interface science.
[161] Hung-Ming Lin,et al. Photo reduction of CO2 to methanol using optical-fiber photoreactor , 2005 .
[162] Jinlong Gong,et al. CO2 photo-reduction: insights into CO2 activation and reaction on surfaces of photocatalysts , 2016 .
[163] M. Hochlaf,et al. Potential energy surface of the CO2-N2 van der Waals complex. , 2015, The Journal of chemical physics.
[164] Qinghong Zhang,et al. MgO- and Pt-Promoted TiO2 as an Efficient Photocatalyst for the Preferential Reduction of Carbon Dioxide in the Presence of Water , 2014 .
[165] Qinghong Zhang,et al. Photocatalytic and photoelectrocatalytic reduction of CO2 using heterogeneous catalysts with controlled nanostructures. , 2016, Chemical communications.
[166] J. Wu,et al. Recent developments in the design of photoreactors for solar energy conversion from water splitting and CO 2 reduction , 2018 .
[167] Weidong Shen,et al. Synthesis and characterization of TiO2/CdS core–shell nanorod arrays and their photoelectrochemical property , 2012 .
[168] Yu‐Wen Chen,et al. Photocatalytic reduction of carbon dioxide on NiO/InTaO4 under visible light irradiation , 2007 .
[169] Daniel C W Tsang,et al. Photocatalytic reduction of CO2 to hydrocarbons using bio-templated porous TiO2 architectures under UV and visible light , 2018, Chemical Engineering Journal.
[170] Mark C Hersam,et al. Minimizing graphene defects enhances titania nanocomposite-based photocatalytic reduction of CO2 for improved solar fuel production. , 2011, Nano letters.
[171] L. Franco,et al. Synthesis and photochemical applications of processable polymers enclosing photoluminescent carbon quantum dots. , 2015, ACS nano.
[172] Din Ping Tsai,et al. CO2 photoreduction using NiO/InTaO4 in optical-fiber reactor for renewable energy , 2010 .
[173] Xiaobo Chen,et al. Titanium dioxide-based nanomaterials for photocatalytic fuel generations. , 2014, Chemical reviews.
[174] Lianjun Liu,et al. Bicrystalline TiO2 with controllable anatase–brookite phase content for enhanced CO2 photoreduction to fuels , 2013 .
[175] Yajun Wang,et al. Facile in situ synthesis of graphitic carbon nitride (g-C3N4)-N-TiO2 heterojunction as an efficient photocatalyst for the selective photoreduction of CO2 to CO , 2014 .
[176] T. He,et al. Highly efficient visible-light driven photocatalytic reduction of CO2 over g-C3N4 nanosheets/tetra(4-carboxyphenyl)porphyrin iron(III) chloride heterogeneous catalysts , 2018 .
[177] Pengwei Huo,et al. Novel TiO2/C3N4 Photocatalysts for Photocatalytic Reduction of CO2 and for Photocatalytic Decomposition of N2O. , 2016, The journal of physical chemistry. A.
[178] Huangxian Ju,et al. Nitrogen-doped porous carbon derived from metal-organic gel for electrochemical analysis of heavy-metal ion. , 2014, ACS applied materials & interfaces.
[179] C. Petit,et al. CO2 capture and photocatalytic reduction using bifunctional TiO2/MOF nanocomposites under UV–vis irradiation , 2017 .
[180] Kimfung Li,et al. A critical review of CO2 photoconversion: Catalysts and reactors , 2014 .
[181] Feng Xin,et al. Photocatalytic reduction of CO2 in methanol to methyl formate over CuO-TiO2 composite catalysts. , 2011, Journal of colloid and interface science.
[182] A. Mohamed,et al. Synthesis and applications of graphene-based TiO(2) photocatalysts. , 2012, ChemSusChem.
[183] Zhanghua Wu,et al. Phase transformation and microwave hydrothermal guided a novel double Z-scheme ternary vanadate heterojunction with highly efficient photocatalytic performance , 2018, Applied Catalysis B: Environmental.
[184] Junying Zhang,et al. Photocatalytic CO2 reduction over V and W codoped TiO2 catalyst in an internal-illuminated honeycomb photoreactor under simulated sunlight irradiation , 2017 .
[185] Q. Liao,et al. Optofluidic membrane microreactor for photocatalytic reduction of CO2 , 2016 .
[186] Leihong Zhao,et al. Engineering on the edge of Pd nanosheet cocatalysts for enhanced photocatalytic reduction of CO2 to fuels , 2017 .
[187] Aijun Du,et al. Single Atom (Pd/Pt) Supported on Graphitic Carbon Nitride as an Efficient Photocatalyst for Visible-Light Reduction of Carbon Dioxide. , 2016, Journal of the American Chemical Society.
[188] Yu Xie,et al. Enhancing the Photocatalytic Performance of Commercial TiO2 Crystals by Coupling with Trace Narrow-Band-Gap Ag2CO3 , 2014 .
[189] S. Cronin,et al. CO2 Reduction to Methanol on TiO2-Passivated GaP Photocatalysts , 2014 .
[190] Somnath C. Roy,et al. Solar Spectrum Photocatalytic Conversion of CO2 and Water Vapor Into Hydrocarbons Using TiO2 Nanoparticle Membranes , 2014 .
[191] V. M. Granchak,et al. Photocatalytic reduction of CO2 using nanostructured Cu2O with foam-like structure , 2016 .
[192] M. Pumera,et al. CO2 reduction: the quest for electrocatalytic materials , 2017 .
[193] Paitoon Tontiwachwuthikul,et al. Photocatalytic Process for CO2 Emission Reduction from Industrial Flue Gas Streams , 2006 .
[194] Tsunehiro Tanaka,et al. Tuning the selectivity toward CO evolution in the photocatalytic conversion of CO2 with H2O through the modification of Ag-loaded Ga2O3 with a ZnGa2O4 layer , 2016 .
[195] S. Sharifnia,et al. Dye photosensitization of ZnO with metallophthalocyanines (Co, Ni and Cu) in photocatalytic conversion of greenhouse gases , 2014 .
[196] Di Zhang,et al. An Insight into Artificial Leaves for Sustainable Energy Inspired by Natural Photosynthesis , 2011 .
[197] Changling Yu,et al. Novel AgCl/Ag2CO3 heterostructured photocatalysts with enhanced photocatalytic performance , 2016, Rare Metals.
[198] K. Kočí,et al. Photocatalytic reduction of CO2 over TiO2 based catalysts , 2008 .
[199] Yueping Fang,et al. Adsorption of CO2 on heterostructure CdS(Bi2S3)/TiO2 nanotube photocatalysts and their photocatalytic activities in the reduction of CO2 to methanol under visible light irradiation , 2012 .
[200] C. Rao,et al. Photocatalytic reduction of CO 2 by employing ZnO/Ag 1-x Cu x /CdS and related heterostructures , 2018 .
[201] Thanh Son Le,et al. Rutile TiO2 nanocrystals with exposed {331} facets for enhanced photocatalytic CO2 reduction activity. , 2017, Journal of colloid and interface science.
[202] Paul M Zimmerman,et al. Changing lanes from concerted to stepwise hydrogenation: the reduction mechanism of frustrated Lewis acid-base pair trapped CO2 to methanol by ammonia-borane. , 2011, Chemistry.
[203] M. Miyauchi,et al. Photocatalytic carbon dioxide reduction by copper oxide nanocluster-grafted niobate nanosheets. , 2015, ACS nano.
[204] Jiaguo Yu,et al. Ag2CrO4/g-C3N4/graphene oxide ternary nanocomposite Z-scheme photocatalyst with enhanced CO2 reduction activity , 2018, Applied Catalysis B: Environmental.
[205] Jinlong Zhang,et al. Synthesis and photocatalytic activity of graphene based doped TiO2 nanocomposites , 2014 .
[206] Jian Liu,et al. Photocatalysts of 3D Ordered Macroporous TiO2-Supported CeO2 Nanolayers: Design, Preparation, and Their Catalytic Performances for the Reduction of CO2 with H2O under Simulated Solar Irradiation , 2014 .
[207] G. Marcì,et al. Photocatalytic CO2 reduction in gas–solid regime in the presence of H2O by using GaP/TiO2 composite as photocatalyst under simulated solar light , 2014 .
[208] C. Trapalis,et al. Alternative photocatalysts to TiO2 for the photocatalytic reduction of CO2 , 2017 .
[209] Kazuhiko Maeda,et al. Nature-Inspired, Highly Durable CO2 Reduction System Consisting of a Binuclear Ruthenium(II) Complex and an Organic Semiconductor Using Visible Light. , 2016, Journal of the American Chemical Society.
[210] A. Mohamed,et al. Modification of MWCNT@TiO2 core–shell nanocomposites with transition metal oxide dopants for photoreduction of carbon dioxide into methane , 2014 .
[211] Weicai Wang,et al. Highly efficient macroporous adsorbents for toxic metal ions in water systems based on polyvinyl alcohol–formaldehyde sponges , 2016 .
[212] Y. Izumi,et al. Recent advances in the photocatalytic conversion of carbon dioxide to fuels with water and/or hydrogen using solar energy and beyond , 2013 .
[213] G. Eda,et al. Graphene oxide as a chemically tunable platform for optical applications. , 2010, Nature chemistry.
[214] Wenguang Tu,et al. An In Situ Simultaneous Reduction‐Hydrolysis Technique for Fabrication of TiO2‐Graphene 2D Sandwich‐Like Hybrid Nanosheets: Graphene‐Promoted Selectivity of Photocatalytic‐Driven Hydrogenation and Coupling of CO2 into Methane and Ethane , 2013 .
[215] T. Hayat,et al. β-Cyclodextrin modified graphitic carbon nitride for the removal of pollutants from aqueous solution: experimental and theoretical calculation study , 2016 .
[216] B. H. An,et al. Radio frequency-mediated local thermotherapy for destruction of pancreatic tumors using Ni–Au core–shell nanowires , 2017, Nanotechnology.
[217] E. Fujita,et al. Molecular approaches to the photocatalytic reduction of carbon dioxide for solar fuels. , 2009, Accounts of chemical research.
[218] R. Ruoff,et al. Graphene-based ultracapacitors. , 2008, Nano letters.
[219] A. Fujishima,et al. Photoelectrocatalytic reduction of carbon dioxide in aqueous suspensions of semiconductor powders , 1979, Nature.
[220] Yi Luo,et al. Defect-Mediated Electron-Hole Separation in One-Unit-Cell ZnIn2S4 Layers for Boosted Solar-Driven CO2 Reduction. , 2017, Journal of the American Chemical Society.
[221] B. Hameed,et al. Parameters affecting the photocatalytic degradation of dyes using TiO2-based photocatalysts: a review. , 2009, Journal of hazardous materials.
[222] Hung Ji Huang,et al. Application of Optical-fiber Photoreactor for CO2 Photocatalytic Reduction , 2008 .
[223] A. Panacek,et al. CdS nanoparticles deposited on montmorillonite: preparation, characterization and application for photoreduction of carbon dioxide. , 2011, Journal of colloid and interface science.
[224] Yong Zhou,et al. Photocatalytic Conversion of CO2 into Renewable Hydrocarbon Fuels: State‐of‐the‐Art Accomplishment, Challenges, and Prospects , 2014, Advanced materials.
[225] Wenguang Tu,et al. Photocatalytic reduction of CO2 over Ag/TiO2 nanocomposites prepared with a simple and rapid silver mirror method. , 2016, Nanoscale.
[226] Shouqi Yuan,et al. A Hierarchical Z‑Scheme α‐Fe2O3/g‐C3N4 Hybrid for Enhanced Photocatalytic CO2 Reduction , 2018, Advanced materials.
[227] Qinghong Zhang,et al. Photocatalytic reduction of CO2 with H2O: significant enhancement of the activity of Pt-TiO2 in CH4 formation by addition of MgO. , 2013, Chemical communications.
[228] K. Ohta,et al. Electrochemical reduction of CO2 in copper particle-suspended methanol , 2006 .
[229] Qinghong Zhang,et al. Photocatalytic conversion of carbon dioxide with water into methane: platinum and copper(I) oxide co-catalysts with a core-shell structure. , 2013, Angewandte Chemie.
[230] Yajun Wang,et al. Fabrication of inverse opal TiO2-supported Au@CdS core–shell nanoparticles for efficient photocatalytic CO2 conversion , 2015 .
[231] J. Yates,et al. Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results , 1995 .
[232] D. Macfarlane,et al. Carbon Quantum Dots/Cu2O Heterostructures for Solar‐Light‐Driven Conversion of CO2 to Methanol , 2015 .
[233] M. Sillanpää,et al. Rate redox-controlled green photosynthesis of gold nanoparticles using H3 + xPMo12 − xVxO40 , 2012, Gold Bulletin.
[234] T. Peng,et al. Enhanced photocatalytic activity of g-C3N4 for selective CO2 reduction to CH3OH via facile coupling of ZnO: a direct Z-scheme mechanism , 2015 .
[235] Sibo Wang,et al. Photocatalytic CO2 reduction by CdS promoted with a zeolitic imidazolate framework , 2015 .
[236] M. Jaroniec,et al. All‐Solid‐State Z‐Scheme Photocatalytic Systems , 2014, Advanced materials.
[237] Z. Salehi,et al. Synthesis of nanocomposite CdS/TiO2 and investigation of its photocatalytic activity for CO2 reduction to CO and CH4 under visible light irradiation , 2014 .
[238] Hongxing Yang,et al. Review on life cycle assessment of energy payback and greenhouse gas emission of solar photovoltaic systems , 2013 .
[239] Muhammad Tahir,et al. Dynamic photocatalytic reduction of CO2 to CO in a honeycomb monolith reactor loaded with Cu and N doped TiO2 nanocatalysts , 2016 .
[240] Ming Meng,et al. Photothermal contribution to enhanced photocatalytic performance of graphene-based nanocomposites. , 2014, ACS nano.
[241] B. Claudel,et al. On the “immobilization” of titanium dioxide in the photocatalytic oxidation of spent waters , 1995 .