Porphyrins and phthalocyanines as biomimetic tools for photocatalytic H2 production and CO2 reduction.
暂无分享,去创建一个
Ismael López-Duarte | A. Coutsolelos | Georgios Charalambidis | Emmanouil Nikoloudakis | K. Ladomenou | M. Ince | Ismael López‐Duarte | Mine Ince
[1] M. Robert,et al. Phenoxazine Sensitized CO2‐to‐CO Reduction with an Iron Porphyrin Catalyst: A Redox Properties‐Catalytic Performance Study , 2022, ChemPhotoChem.
[2] A. Coutsolelos,et al. Gadolinium porphyrinate double-deckers for visible light driven H2 evolution , 2021 .
[3] S. Stupp,et al. Quantum Dot-Sensitized Photoreduction of CO2 in Water with Turnover Number > 80,000. , 2021, Journal of the American Chemical Society.
[4] Gülbin Kurtay,et al. Improving the Photocatalytic Hydrogen Generation Using Nonaggregated Zinc Phthalocyanines , 2021, ACS Applied Energy Materials.
[5] S. Dehghanpour,et al. Effective visible‐light CO 2 photoreduction over (metallo)porphyrin‐based metal–organic frameworks to achieve useful hydrocarbons , 2021, Applied Organometallic Chemistry.
[6] F. Odobel,et al. Antenna Effect in BODIPY-(Zn)Porphyrin Entities Promotes H2 Evolution in Dye-Sensitized Photocatalytic Systems , 2021, ACS Applied Energy Materials.
[7] K. Yamauchi,et al. Earth-Abundant Photocatalytic CO2 Reduction by Multielectron Chargeable Cobalt Porphyrin Catalysts: High CO/H2 Selectivity in Water Based on Phase Mismatch in Frontier MO Association , 2021, ACS Catalysis.
[8] Yongfa Zhu,et al. Supramolecular Zinc Porphyrin Photocatalyst with Strong Reduction Ability and Robust Built‐In Electric Field for Highly Efficient Hydrogen Production , 2021, Advanced Energy Materials.
[9] D. Kuang,et al. A Mo2-ZnP molecular device that mimics photosystem I for solar-chemical energy conversion , 2021 .
[10] A. Mitraki,et al. Self-Assembly of Porphyrin Dipeptide Conjugates toward Hydrogen Production , 2021 .
[11] L. Qin,et al. Hydroxylporphyrin/NiO nanosheet nanocomposite with strong interfacial interaction for highly efficient hydrogen generation , 2021, Journal of Solid State Chemistry.
[12] Hongyi Gao,et al. Construction of dual ligand Ti-based MOFs with enhanced photocatalytic CO2 reduction performance , 2021 .
[13] Xi Zhang,et al. Porphyrin-Based Conjugated Polyelectrolytes for Efficient Photocatalytic Hydrogen Evolution , 2021 .
[14] Mingyi Zhang,et al. Construction of hierarchical ZnIn2S4@PCN-224 heterojunction for boosting photocatalytic performance in hydrogen production and degradation of tetracycline hydrochloride , 2021 .
[15] Y. Amao,et al. Visible‐Light Driven CO 2 Reduction to Formate with Electron Mediated Nicotinamide‐Modified Viologen in the System of Water‐Soluble Zinc Porphyrin and Formate Dehydrogenase , 2021 .
[16] Long Jiang,et al. Promoting photocatalytic CO2 reduction with a molecular copper purpurin chromophore , 2021, Nature Communications.
[17] Ying‐Hui Zhang,et al. In-situ synthesized porphyrin polymer/TiO2 composites as high-performance Z-scheme photocatalysts for CO2 conversion. , 2021, Journal of colloid and interface science.
[18] Chenxiang Lin,et al. Porphyrin-Based Metal-Organic Frameworks for Efficient Photocatalytic H2 Production under Visible-Light Irradiation. , 2021, Inorganic chemistry.
[19] M. Sillanpää,et al. High selective photocatalytic CO2 conversion into liquid solar fuel over a cobalt porphyrin-based metal–organic framework , 2021, Photochemical & Photobiological Sciences.
[20] Xu‐Bing Li,et al. Rational design of isostructural 2D porphyrin-based covalent organic frameworks for tunable photocatalytic hydrogen evolution , 2021, Nature Communications.
[21] A. Coutsolelos,et al. Synthesis and Characterization of a Covalent Porphyrin‐Cobalt Diimine‐Dioxime Dyad for Photoelectrochemical H 2 Evolution , 2021 .
[22] Cheng Wang,et al. Metal–organic frameworks embedded in a liposome facilitate overall photocatalytic water splitting , 2021, Nature Chemistry.
[23] T. Peng,et al. Porphyrin Conjugated Polymer with Periodic Type II‐Like Heterojunctions and Single‐Atom Catalytic Sites for Broadband‐Responsive Hydrogen Evolution , 2021, Advanced Functional Materials.
[24] Gang Liu,et al. Phosphorous doped g-C3N4 supported cobalt phthalocyanine: An efficient photocatalyst for reduction of CO2 under visible-light irradiation. , 2021, Journal of colloid and interface science.
[25] D. Guldi,et al. An exciting twenty-year journey exploring porphyrinoid-based photo- and electro-active systems , 2021 .
[26] F. Odobel,et al. Photoelectrochemical properties of dyads composed of porphyrin/ruthenium catalyst grafted on metal oxide semiconductors , 2021, Dyes and Pigments.
[27] D. Tang,et al. Au-Modulated Z-Scheme CuPc/BiVO4 Nanosheet Heterojunctions toward Efficient CO2 Conversion under Wide-Visible-Light Irradiation , 2021 .
[28] So-Yoen Kim,et al. Rapid Exciton Migration and Amplified Funneling Effects of Multi-Porphyrin Arrays in a Re(I)/Porphyrinic MOF Hybrid for Photocatalytic CO2 Reduction. , 2021, ACS applied materials & interfaces.
[29] H. Munakata,et al. Effect of Li ions doping into p-type semiconductor NiO as a hole injection/transfer medium in the CO2 reduction sensitized/catalyzed by Zn-porphyrin/Re-complex upon visible light irradiation , 2021, Research on Chemical Intermediates.
[30] Tian Tian,et al. Self-assembled supramolecular nanostructure photosensitizers for photocatalytic hydrogen evolution , 2020 .
[31] K. Nagai,et al. A Water‐Splitting System with a Cobalt (II,III) Oxide Co‐Catalyst‐Loaded Bismuth Vanadate Photoanode Along with an Organo‐Photocathode , 2020, ChemElectroChem.
[32] S. Kang,et al. Collisional Electron Transfer Route between Homogeneous Porphyrin Dye and Catalytic TiO2/Re(I) Particles for CO2 Reduction , 2020 .
[33] G. Armatas,et al. Controlling Solar Hydrogen Production by Organizing Porphyrins. , 2020, ChemSusChem.
[34] B. Likozar,et al. Photocatalytic CO2 Reduction: A Review of Ab Initio Mechanism, Kinetics, and Multiscale Modeling Simulations , 2020, ACS Catalysis.
[35] Barry P Rand,et al. Device Performance of Emerging Photovoltaic Materials (Version 1) , 2020, Advanced Energy Materials.
[36] Qinghua Zhang,et al. Enhancing CO2 Electrocatalysis on 2D Porphyrin-Based Metal-Organic Framework Nanosheets Coupled with Visible-Light. , 2020, Small methods.
[37] Jiawen Sun,et al. Efficiently photocatalytic conversion of CO2 on ultrathin metal phthalocyanine/g-C3N4 heterojunctions by promoting charge transfer and CO2 activation , 2020 .
[38] K. Yong,et al. Noble-metal free photocatalytic hydrogen generation of CuPc/TiO2 nanoparticles under visible-light irradiation , 2020 .
[39] L. Qin,et al. ZnO nanorods/sulfophenylporphyrin nanocomposites facilely embedded with special copper for improved photocatalytic hydrogen evolution , 2020 .
[40] Jian Zhang,et al. Host-Guest Thin Films by Confining Ultrafine Pt/C QDs into Metal-Organic Frameworks for Highly Efficient Hydrogen Evolution. , 2020, Small.
[41] A. Huerta-Flores,et al. Fused Porphyrin Thin Films as Heterogeneous Visible-Light Active Photocatalysts with Well-Defined Active Metal Sites for Hydrogen Generation , 2020 .
[42] Kallyni Irikura,et al. The great performance of TiO2 nanotubes electrodes modified by copper(II)porphyrin in the reduction of carbon dioxide to alcohol , 2020 .
[43] Jiazang Chen,et al. Cu@porphyrin-COFs nanorods for efficiently photoelectrocatalytic reduction of CO2 , 2020 .
[44] Jun‐Min Liu,et al. Photocatalytic H2 production from water by metal-free dye-sensitized TiO2 semiconductors: The role and development process of organic sensitizers. , 2020, ChemSusChem.
[45] Lirong Zheng,et al. Regulating Photocatalysis by Spin-State Manipulation of Cobalt in Covalent Organic Frameworks. , 2020, Journal of the American Chemical Society.
[46] Licheng Sun,et al. Selective CO production by photoelectrochemical CO2 reduction in aqueous solution with cobalt-based molecular redox catalysts. , 2020, ACS applied materials & interfaces.
[47] Xunjin Zhu,et al. Porphyrin Grafting on a Mercapto-Equipped Zr(IV)-Carboxylate Framework Enhances Photocatalytic Hydrogen Production. , 2020, Inorganic chemistry.
[48] K. Ocakoglu,et al. The effect of central metal in phthalocyanine for photocatalytic hydrogen evolution via artificial photosynthesis , 2020 .
[49] B. Li,et al. Controlled synthesis of novel Z-scheme iron phthalocyanine/porous WO3 nanocomposites as efficient photocatalysts for CO2 reduction , 2020 .
[50] Xinchen Wang,et al. Metalloporphyrin-based covalent organic frameworks composed of the electron donor-acceptor dyads for visible-light-driven selective CO2 reduction , 2020, Science China Chemistry.
[51] Yusuke Kuramochi,et al. Photocatalytic CO2 Reductions Catalyzed by meso‐(1,10‐Phenanthrolin‐2‐yl)‐Porphyrins Having a Rhenium(I) Tricarbonyl Complex , 2020, Chemistry.
[52] Jun Cheng,et al. Efficient hybrid solar-to-alcohol system via synergistic catalysis between well-defined Cu–N4 sites and its sulfide (CuS) , 2020 .
[53] Xinchen Wang,et al. Covalent Organic Framework Hosting Metalloporphyrin‐Based Carbon Dots for Visible‐Light‐Driven Selective CO2 Reduction , 2020, Advanced Functional Materials.
[54] L. Qin,et al. A novel copper-bridged graphitic carbon nitride/porphyrin nanocomposite with dramatically enhanced photocatalytic hydrogen generation , 2020 .
[55] S. Agnoli,et al. A DVD-MoS2/Ag2S/Ag Nanocomposite Thiol-Conjugated with Porphyrins for an Enhanced Light-Mediated Hydrogen Evolution Reaction , 2020, Nanomaterials.
[56] Yaoqing Hu,et al. An efficient visible-light photocatalyst for CO2 reduction fabricated by cobalt porphyrin and graphitic carbon nitride via covalent bonding , 2020, Nano Research.
[57] Xue-qing Gong,et al. Boosting Interfacial Charge-Transfer Kinetics for Efficient Overall CO2 Photoreduction via Rational Design of Coordination Spheres on Metal-Organic Frameworks. , 2020, Journal of the American Chemical Society.
[58] Jun‐Min Liu,et al. Porous Hybrid Materials Based on Mesotetrakis(Hydroxyphenyl) Porphyrins and TiO2 for Efficient Visible-Light-Driven Hydrogen Production , 2020, Catalysts.
[59] W. Zhou,et al. Enhanced Photocatalytic CO2 Reduction over TiO2 Using Metalloporphyrin as the Cocatalyst , 2020 .
[60] Xunjin Zhu,et al. Self-Assembled Naphthalimide-Substituted Porphyrin Nanowires for Photocatalytic Hydrogen Evolution , 2020 .
[61] Minghou Xu,et al. Photocatalytic CO2 reduction catalyzed by metalloporphyrin: Understanding of cobalt and nickel sites in activity and adsorption , 2020 .
[62] Lisi Xie,et al. Water-Soluble Polymers with Appending Porphyrins as Bioinspired Catalysts for the Hydrogen Evolution Reaction. , 2020, Angewandte Chemie.
[63] Belete B. Beyene,et al. Recent progress on metalloporphyrin-based hydrogen evolution catalysis , 2020 .
[64] Suja Haridas,et al. Recent progresses in porphyrin assisted hydrogen evolution , 2020 .
[65] T. Lu,et al. Encapsulation of Single Iron Sites in a Metal-Porphyrin Framework for High-Performance Photocatalytic CO2 Reduction. , 2020, Inorganic chemistry.
[66] Ujjwal Pal,et al. Unravelling the impact of thiophene auxiliary in new porphyrin sensitizers for high solar energy conversion , 2020 .
[67] W. Jang,et al. Applications of porphyrins in emerging energy conversion technologies , 2020 .
[68] Hiroaki Kotani,et al. Efficient Near-Infrared Light-Driven Hydrogen Evolution Catalyzed by a Saddle-Distorted Porphyrin as a Photocatalyst , 2020 .
[69] Zhenyu Sun,et al. Photocatalytic Reduction of CO 2 by Metal‐Free‐Based Materials: Recent Advances and Future Perspective , 2020 .
[70] Sheng Han,et al. Fabrication of antennae-like nanoheterostructure attached by porphyrin for increased photocatalytic hydrogen generation and electron transfer mechanism , 2020 .
[71] R. Arce,et al. Study of the Hydrogen Evolution Reaction Using Ionic Liquid/Cobalt Porphyrin Systems as Electro and Photoelectrocatalysts , 2020, Catalysts.
[72] Z. Su,et al. Tuning the VB of COF to improve the efficiency of photoreduction of CO2 with water. , 2020, ChemSusChem.
[73] A. Coutsolelos,et al. Photosensitizers for H2 Evolution Based on Charged or Neutral Zn and Sn Porphyrins. , 2020, Inorganic chemistry.
[74] Ismail I. I. Alkhatib,et al. Metal-organic frameworks for photocatalytic CO2 reduction under visible radiation: A review of strategies and applications , 2020, Catalysis Today.
[75] Yusuke Kuramochi,et al. Photocatalytic CO2 Reduction Mediated by Electron Transfer via Excited Triplet State of Zn(II) Porphyrin. , 2019, Journal of the American Chemical Society.
[76] W. Jin,et al. Earth-abundant transition metal and metal oxide nanomaterials: Synthesis and electrochemical applications , 2019 .
[77] Haiyan Hu,et al. Bottom-up fabrication of graphitic carbon nitride nanosheets modified with porphyrin via covalent bonding for photocatalytic H2 evolution , 2019, Nano Research.
[78] H. Tian,et al. Recent advances in dye-sensitized photoelectrochemical cells for water splitting , 2019, EnergyChem.
[79] K. Yamauchi,et al. Photochemical CO2 Reduction Driven by Water-Soluble Copper(I) Photosensitizer with the Catalysis Accelerated by Multi-Electron Chargeable Cobalt Porphyrin , 2019, ACS Catalysis.
[80] A. Kudo,et al. Water Splitting on Aluminum Porphyrins To Form Hydrogen and Hydrogen Peroxide by One Photon of Visible Light , 2019, ACS Applied Energy Materials.
[81] Xueying Qiu,et al. Zero-dimensional g-CNQDs Coordinated Two-dimensional Porphyrin MOF Hybrids for Boosting Photocatalytic CO2 Reduction. , 2019, ACS applied materials & interfaces.
[82] E. Reisner,et al. Bias-free solar syngas production by integrating a molecular cobalt catalyst with perovskite–BiVO4 tandems , 2019, Nature Materials.
[83] Hongyi Gao,et al. Construction of TiO2 nanosheets/tetra (4-carboxyphenyl) porphyrin hybrids for efficient visible-light photoreduction of CO2 , 2019, Chemical Engineering Journal.
[84] L. Qin,et al. Cubic Cuprous Oxide-Based Nanocomposites for Photocatalytic Hydrogen Generation , 2019, ACS Applied Nano Materials.
[85] Rongming Wang,et al. A Scalable General Synthetic Approach towards Ultrathin Imine-linked Two-dimensional Covalent Organic Framework Nanosheets for Photocatalytic CO2 Reduction. , 2019, Journal of the American Chemical Society.
[86] T. Peng,et al. Synthesis of an A2BC-type asymmetric zinc phthalocyanine derivative for efficient visible/near-infrared-driven H2 evolution on g-C3N4 , 2019, Chemical Engineering Journal.
[87] A. Mitraki,et al. Supramolecular Nanodrugs Constructed by Self-Assembly of Peptide Nucleic Acid-Photosensitizer Conjugates for Photodynamic Therapy. , 2019, ACS applied bio materials.
[88] Mi Zhang,et al. Rational Crystalline Covalent Organic Frameworks Design for Efficient CO2 Photoreduction with H2O. , 2019, Angewandte Chemie.
[89] L. Gu,et al. Visible-light-switched electron transfer over single porphyrin-metal atom center for highly selective electroreduction of carbon dioxide , 2019, Nature Communications.
[90] Jingwei Huang,et al. Integration of Copper(II)-Porphyrin Zirconium Metal–Organic Framework and Titanium Dioxide to Construct Z-Scheme System for Highly Improved Photocatalytic CO2 Reduction , 2019, ACS Sustainable Chemistry & Engineering.
[91] O. Yaghi,et al. Introduction to Reticular Chemistry , 2019 .
[92] Jinghang Wang,et al. Morphology and Size-Dependent Visible-Light-Driven Photocatalytic Hydrogen Evolution of Porphyrin Assemblies , 2019, MRS Advances.
[93] Jinhua Ye,et al. An ultrathin porphyrin-based metal-organic framework for efficient photocatalytic hydrogen evolution under visible light , 2019, Nano Energy.
[94] Souvik Roy,et al. Visible‐Light‐Driven CO2 Reduction by Mesoporous Carbon Nitride Modified with Polymeric Cobalt Phthalocyanine , 2019, Angewandte Chemie.
[95] Y. Lan,et al. Face-Sharing Archimedean Solids Stacking for the Construction of Mixed-Ligand Metal-Organic Frameworks. , 2019, Journal of the American Chemical Society.
[96] Xue-qing Gong,et al. Ultrathin Metal-Organic Framework Nanosheets with Ultrahigh Loading of Single Pt Atoms for Efficient Visible-Light-Driven Photocatalytic H2 Evolution. , 2019, Angewandte Chemie.
[97] Z. Su,et al. Two-Dimensional Cobaltporphyrin-based Cobalt–Organic Framework as an Efficient Photocatalyst for CO2 Reduction Reaction: A Computational Study , 2019, ACS Sustainable Chemistry & Engineering.
[98] Junwang Tang,et al. Dimension-matched Zinc Phthalocyanine/BiVO4 ultrathin nanocomposites for CO2 Reduction as Efficient Wide-Visible-Light-Driven Photocatalysts via a Cascade Charge Transfer. , 2019, Angewandte Chemie.
[99] T. Peng,et al. Porphyrin-Based Conjugated Polymers as Intrinsic Semiconducting Photocatalysts for Robust H2 Generation under Visible Light , 2019, ACS Applied Energy Materials.
[100] Tongbu Lu,et al. Encapsulating Perovskite Quantum Dots in Iron-Based Metal-Organic Frameworks (MOFs) for Efficient Photocatalytic CO2 Reduction. , 2019, Angewandte Chemie.
[101] Xiaohang Li,et al. Fabrication of 1D long chain-like metal porphyrin-based coordination complexes for high-efficiency hydrogen evolution and photoelectric response , 2019, International Journal of Hydrogen Energy.
[102] B. Lessard,et al. Boron Subphthalocyanines and Silicon Phthalocyanines for Use as Active Materials in Organic Photovoltaics. , 2019, Chemical record.
[103] B. Patil,et al. Novel Supramolecular Photocatalyst Based on Conjugation of Cucurbit[7]uril to Non‐Metallated Porphyrin for Electrophotocatalytic Hydrogen Generation from Water Splitting , 2019, ChemCatChem.
[104] T. Majima,et al. Synthesis and photocatalytic activity of ultrathin two-dimensional porphyrin nanodisks via covalent organic framework exfoliation , 2019, Communications Chemistry.
[105] Jingwei Huang,et al. In-situ incorporation of Copper(II) porphyrin functionalized zirconium MOF and TiO2 for efficient photocatalytic CO2 reduction. , 2019, Science bulletin.
[106] R. Boukherroub,et al. Highly improved photoreduction of carbon dioxide to methanol using cobalt phthalocyanine grafted to graphitic carbon nitride as photocatalyst under visible light irradiation. , 2019, Journal of colloid and interface science.
[107] Xiaoxin Li,et al. Effect of Axial Coordination of Iron Porphyrin on Their Nanostructures and Photocatalytic Performance , 2019, Crystal Growth & Design.
[108] K. Yamauchi,et al. Highly Efficient and Selective Photocatalytic CO2 Reduction to CO in Water by a Cobalt Porphyrin Molecular Catalyst , 2019, ACS Catalysis.
[109] Guodong Li,et al. A highly active nano-micro hybrid derived from Cu-bridged TiO2/porphyrin for enhanced photocatalytic hydrogen production , 2019, Applied Catalysis B: Environmental.
[110] Guodong Li,et al. Graphene/Pyridylporphyrin Hybrids Interfacially Linked with Rare Earth Ions for Enhanced Photocatalytic Hydrogen Evolution , 2019, ACS Sustainable Chemistry & Engineering.
[111] P. Lang,et al. Sensitized Photochemical CO2 Reduction by Hetero-Pacman Compounds Linking a ReI Tricarbonyl with a Porphyrin Unit. , 2019, Chemistry.
[112] H. Fan,et al. Microemulsion-Assisted Self-Assembly and Synthesis of Size-Controlled Porphyrin Nanocrystals with Enhanced Photocatalytic Hydrogen Evolution. , 2019, Nano letters.
[113] M. Nazeeruddin,et al. Phthalocyanines for dye-sensitized solar cells , 2019, Coordination Chemistry Reviews.
[114] K. Sakai,et al. A New Class of Molecular-Based Photoelectrochemical Cell for Solar Hydrogen Production Consisting of Two Mesoporous TiO2 Electrodes , 2019, ACS Applied Energy Materials.
[115] T. Peng,et al. Effects of the central metal ions on the photosensitization of metalloporphyrins over carbon nitride for visible-light-responsive H2 production , 2019, Applied Surface Science.
[116] Han-jie Zhang,et al. A Full‐Spectrum Metal‐Free Porphyrin Supramolecular Photocatalyst for Dual Functions of Highly Efficient Hydrogen and Oxygen Evolution , 2018, Advanced materials.
[117] M. Robert,et al. Visible-Light-Driven Conversion of CO2 to CH4 with an Organic Sensitizer and an Iron Porphyrin Catalyst. , 2018, Journal of the American Chemical Society.
[118] Yanping Zhang,et al. Biological carbon fixation: From natural to synthetic , 2018, Journal of CO2 Utilization.
[119] T. He,et al. Highly efficient visible-light driven solar-fuel production over tetra(4-carboxyphenyl)porphyrin iron(III) chloride using CdS/Bi2S3 heterostructure as photosensitizer , 2018, Applied Catalysis B: Environmental.
[120] Tierui Zhang,et al. Anchored Cu(II) tetra(4-carboxylphenyl)porphyrin to P25 (TiO2) for efficient photocatalytic ability in CO2 reduction , 2018, Applied Catalysis B: Environmental.
[121] T. He,et al. Ethylenediamine-functionalized CdS/tetra(4-carboxyphenyl)porphyrin iron(III) chloride hybrid system for enhanced CO2 photoreduction , 2018, Applied Surface Science.
[122] Shaomin Wang,et al. Enhanced Solar Energy Harvest and Electron Transfer through Intra- and Intermolecular Dual Channels in Chlorosome-Mimicking Supramolecular Self-Assemblies , 2018, ACS Catalysis.
[123] J. Reek,et al. Photocatalytic Hydrogen Evolution by a Synthetic [FeFe] Hydrogenase Mimic Encapsulated in a Porphyrin Cage , 2018, Chemistry.
[124] C. Su,et al. A porous rhodium(III)-porphyrin metal-organic framework as an efficient and selective photocatalyst for CO2 reduction , 2018, Applied Catalysis B: Environmental.
[125] Jun Li,et al. Modification of porphyrin/dipyridine metal complexes on the surface of TiO_2 nanotubes with enhanced photocatalytic activity for photoreduction of CO_2 into methanol , 2018, Journal of Materials Research.
[126] Haolan Xu,et al. Self-Assembly of Monomeric Hydrophobic Photosensitizers with Short Peptides Forming Photodynamic Nanoparticles with Real-Time Tracking Property and without the Need of Release in Vivo. , 2018, ACS applied materials & interfaces.
[127] T. Peng,et al. Photosensitization of zinc phthalocyanine bearing 15-crown-5 ether moieties on carbon nitride for H2 production: Effect of co-existing alkali metal ions , 2018, Journal of Power Sources.
[128] S. Seneviratne,et al. Sensitivity of atmospheric CO2 growth rate to observed changes in terrestrial water storage , 2018, Nature.
[129] Shuping Huang,et al. Panchromatic Sensitization with ZnII Porphyrin-Based Photosensitizers for Light-Driven Hydrogen Production. , 2018, ChemSusChem.
[130] Yanan Yao,et al. Assembly of highly efficient photocatalytic CO2 conversion systems with ultrathin two-dimensional metal–organic framework nanosheets , 2018, Applied Catalysis B: Environmental.
[131] M. Robert,et al. Toward Visible-Light Photochemical CO2-to-CH4 Conversion in Aqueous Solutions Using Sensitized Molecular Catalysis , 2018 .
[132] Hai‐Long Jiang,et al. Boosting Photocatalytic Hydrogen Production of Porphyrinic MOFs: The Metal Location in Metalloporphyrin Matters , 2018 .
[133] Wenbin Lin,et al. Electron Injection from Photoexcited Metal-Organic Framework Ligands to Ru2 Secondary Building Units for Visible-Light-Driven Hydrogen Evolution. , 2018, Journal of the American Chemical Society.
[134] L. Gu,et al. Zirconium-Porphyrin-Based Metal-Organic Framework Hollow Nanotubes for Immobilization of Noble-Metal Single Atoms. , 2018, Angewandte Chemie.
[135] Gen-quan Li,et al. Room temperature Zinc-metallation of cationic porphyrin at graphene surface and enhanced photoelectrocatalytic activity , 2018 .
[136] Ping Yang,et al. High Performance of Manganese Porphyrin Sensitized p-Type CuFe2O4 Photocathode for Solar Water Splitting to Produce Hydrogen in a Tandem Photoelectrochemical Cell , 2018 .
[137] S. Troyanov,et al. Photocatalytic Generation of Hydrogen Using Dinuclear π-Extended Porphyrin-Platinum Compounds. , 2018, Chemistry.
[138] Yi Luo,et al. Single Pt Atoms Confined into a Metal–Organic Framework for Efficient Photocatalysis , 2018, Advanced materials.
[139] Eliana S. Da Silva,et al. Novel hybrids of graphitic carbon nitride sensitized with free-base meso-tetrakis(carboxyphenyl) porphyrins for efficient visible light photocatalytic hydrogen production , 2018 .
[140] 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 .
[141] Ujjwal Pal,et al. Hierarchical Porous TiO2 Embedded Unsymmetrical Zinc–Phthalocyanine Sensitizer for Visible-Light-Induced Photocatalytic H2 Production , 2018 .
[142] Michael Roemelt,et al. Homogeneously Catalyzed Electroreduction of Carbon Dioxide-Methods, Mechanisms, and Catalysts. , 2018, Chemical reviews.
[143] Liang Wang,et al. Self-Assembled One-Dimensional Porphyrin Nanostructures with Enhanced Photocatalytic Hydrogen Generation. , 2018, Nano letters.
[144] S. Kang,et al. Development of a Lower Energy Photosensitizer for Photocatalytic CO2 Reduction: Modification of Porphyrin Dye in Hybrid Catalyst System , 2018 .
[145] E. Weiss,et al. Photocatalytically Active Superstructures of Quantum Dots and Iron Porphyrins for Reduction of CO2 to CO in Water. , 2018, ACS nano.
[146] Y. Amao,et al. Methanol production from CO2 with the hybrid system of biocatalyst and organo-photocatalyst , 2017, Catalysis Today.
[147] A. Olea,et al. Enhanced light-induced hydrogen evolution reaction by supramolecular systems of cobalt(II) and copper(II) octaethylporphyrins on glassy carbon electrodes , 2017 .
[148] Renjie Wei,et al. Hierarchical Nanostructures: Design for Sustainable Water Splitting , 2017 .
[149] M. Robert,et al. Visible-light Homogeneous Photocatalytic Conversion of CO2 into CO in Aqueous Solutions with an Iron Catalyst. , 2017, ChemSusChem.
[150] Xiangang Zhai,et al. Enhanced visible light photocatalytic hydrogen evolution over porphyrin hybridized graphitic carbon nitride. , 2017, Journal of colloid and interface science.
[151] Jonathan Hwang,et al. Perovskites in catalysis and electrocatalysis , 2017, Science.
[152] Yongjun Yuan,et al. Construction of a Noble-Metal-Free Photocatalytic H2 Evolution System Using MoS2/Reduced Graphene Oxide Catalyst and Zinc Porphyrin Photosensitizer , 2017 .
[153] Buxing Han,et al. Fundamentals and Challenges of Electrochemical CO2 Reduction Using Two-Dimensional Materials , 2017 .
[154] Motonori Watanabe. Dye-sensitized photocatalyst for effective water splitting catalyst , 2017, Science and technology of advanced materials.
[155] G. Moore,et al. Cobalt Porphyrin-Polypyridyl Surface Coatings for Photoelectrosynthetic Hydrogen Production. , 2017, Inorganic chemistry.
[156] Y. Amao,et al. Visible light-induced reduction properties of diphenylviologen with water-soluble porphyrin , 2017 .
[157] Y. Amao,et al. The improvement of formic acid production from CO2 with visible-light energy and formate dehydrogenase by the function of the viologen derivative with carbamoylmethyl group as an electron carrier , 2017 .
[158] T. Peng,et al. Asymmetric Zinc Porphyrin Derivative-Sensitized Graphitic Carbon Nitride for Efficient Visible-Light-Driven H2 Production , 2017 .
[159] Marc Robert,et al. Visible-light-driven methane formation from CO2 with a molecular iron catalyst , 2017, Nature.
[160] E. Weiss,et al. Powering a CO2 Reduction Catalyst with Visible Light through Multiple Sub-picosecond Electron Transfers from a Quantum Dot. , 2017, Journal of the American Chemical Society.
[161] T. Mallouk,et al. Water splitting dye-sensitized solar cells , 2017 .
[162] Jing Yan,et al. Electrocatalytic properties of [FeFe]-hydrogenases models and visible-light-driven hydrogen evolution efficiency promotion with porphyrin functionalized graphene nanocomposite , 2017 .
[163] O. Ishitani,et al. Supramolecular Photocatalysts for the Reduction of CO2 , 2017 .
[164] Jing Yan,et al. Synthesis of bio-inspired mononuclear nickel hydrogen production catalysts and photocatalytic efficiency improvement with porphyrin covalently functionalized graphene nanohybrid , 2017 .
[165] D. Kurtz,et al. Photosensitized H2 Production Using a Zinc Porphyrin-Substituted Protein, Platinum Nanoparticles, and Ascorbate with No Electron Relay: Participation of Good's Buffers. , 2017, Inorganic chemistry.
[166] Guodong Li,et al. Assembly and electron transfer mechanisms on visible light responsive 5,10,15,20-meso-tetra(4-carboxyphenyl)porphyrin/cuprous oxide composite for photocatalytic hydrogen production , 2017 .
[167] Y. Amao. Viologens for Coenzymes of Biocatalysts with the Function of CO2 Reduction and Utilization , 2017 .
[168] Qianli Zou,et al. Biological Photothermal Nanodots Based on Self-Assembly of Peptide-Porphyrin Conjugates for Antitumor Therapy. , 2017, Journal of the American Chemical Society.
[169] T. Lu,et al. A Dinuclear Cobalt Cryptate as a Homogeneous Photocatalyst for Highly Selective and Efficient Visible-Light Driven CO2 Reduction to CO in CH3 CN/H2 O Solution. , 2017, Angewandte Chemie.
[170] S. Sharifnia,et al. A porphyrin-based metal organic framework for high rate photoreduction of CO2 to CH4 in gas phase , 2016 .
[171] Li Shi,et al. Efficient Visible-Light-Driven Carbon Dioxide Reduction by a Single-Atom Implanted Metal-Organic Framework. , 2016, Angewandte Chemie.
[172] P. Fornasiero,et al. Dye‐Sensitized Solar Hydrogen Production: The Emerging Role of Metal‐Free Organic Sensitizers , 2016 .
[173] H. Möhwald,et al. Mimicking Primitive Photobacteria: Sustainable Hydrogen Evolution Based on Peptide-Porphyrin Co-Assemblies with a Self-Mineralized Reaction Center. , 2016, Angewandte Chemie.
[174] Liang Wang,et al. Morphology-Controlled Synthesis and Metalation of Porphyrin Nanoparticles with Enhanced Photocatalytic Performance. , 2016, Nano letters.
[175] David Beljonne,et al. A switchable self-assembling and disassembling chiral system based on a porphyrin-substituted phenylalanine–phenylalanine motif , 2016, Nature Communications.
[176] B. Viswanathan,et al. Sensitization of La modified NaTaO3 with cobalt tetra phenyl porphyrin for photo catalytic reduction of CO2 by water with UV–visible light , 2016 .
[177] Evangelos Georgilis,et al. Corrole and Porphyrin Amino Acid Conjugates: Synthesis and Physicochemical Properties. , 2016, Chemistry.
[178] Z. Bian,et al. Visible light driven reduction of CO2 catalyzed by an abundant manganese catalyst with zinc porphyrin photosensitizer , 2016 .
[179] Joshua M. Spurgeon,et al. New trends in the development of heterogeneous catalysts for electrochemical CO2 reduction , 2016 .
[180] A. Offenhäusser,et al. Influence of Meso-Substitution of the Porphyrin Ring on Enhanced Hydrogen Evolution in a Photochemical System , 2016 .
[181] Guodong Li,et al. Highly efficient graphene oxide/porphyrin photocatalysts for hydrogen evolution and the interfacial electron transfer , 2016 .
[182] Siang-Piao Chai,et al. Graphitic Carbon Nitride (g-C3N4)-Based Photocatalysts for Artificial Photosynthesis and Environmental Remediation: Are We a Step Closer To Achieving Sustainability? , 2016, Chemical reviews.
[183] Mohammad Khaja Nazeeruddin,et al. Effect of Peripheral Substitution on the Performance of Subphthalocyanines in DSSCs. , 2016, Chemistry, an Asian journal.
[184] Hao Tan,et al. Novel Ruthenium Phthalocyanine-Containing Model Complex for the Active Site of [FeFe]-Hydrogenases: Synthesis, Structural Characterization, and Catalytic H2 Evolution , 2016 .
[185] Hongwei Lu,et al. Visible-light-driven hydrogen production from water in a noble-metal-free system catalyzed by zinc porphyrin sensitized MoS2/ZnO , 2015 .
[186] T. Peng,et al. A new route for visible/near-infrared-light-driven H 2 production over titania: Co-sensitization of surface charge transfer complex and zinc phthalocyanine , 2015 .
[187] Y. Amao,et al. Effect of chemical structure of bipyridinium salts as electron carrier on the visible-light induced conversion of CO2 to formic acid with the system consisting of water-soluble zinc porphyrin and formate dehydrogenase , 2015 .
[188] A. Coutsolelos,et al. Photochemical hydrogen generation with porphyrin-based systems , 2015 .
[189] B. Braun,et al. Photochemical CO2 Reduction Catalyzed by Phenanthroline Extended Tetramesityl Porphyrin Complexes Linked with a Rhenium(I) Tricarbonyl Unit. , 2015, Inorganic chemistry.
[190] Yi Luo,et al. Visible-Light Photoreduction of CO2 in a Metal-Organic Framework: Boosting Electron-Hole Separation via Electron Trap States. , 2015, Journal of the American Chemical Society.
[191] Zongping Shao,et al. Nonstoichiometric Oxides as Low-Cost and Highly-Efficient Oxygen Reduction/Evolution Catalysts for Low-Temperature Electrochemical Devices. , 2015, Chemical reviews.
[192] Wenguang Tu,et al. Enhanced visible-light-induced hydrogen evolution from water in a noble-metal-free system catalyzed by ZnTCPP-MoS2/TiO2 assembly , 2015 .
[193] Penglei Chen,et al. Porphyrin Supramolecular 1D Structures via Surfactant‐Assisted Self‐Assembly , 2015, Advanced materials.
[194] Philipp Kurz,et al. Sn(IV) Metalloporphyrin/Co(III) Complex: An All-Abundant-Element System for the Photocatalytic Production of H2 in Aqueous Solution. , 2015, The journal of physical chemistry. B.
[195] Zhen Li,et al. Visible/Near-Infrared-Light-Induced H2 Production over g-C3N4 Co-sensitized by Organic Dye and Zinc Phthalocyanine Derivative , 2015 .
[196] Yongtao Lu,et al. Silicon phthalocyanine covalently functionalized N-doped ultrasmall reduced graphene oxide decorated with Pt nanoparticles for hydrogen evolution from water. , 2015, ACS applied materials & interfaces.
[197] J. Durrant,et al. Improving the Photocatalytic Reduction of CO2 to CO through Immobilisation of a Molecular Re Catalyst on TiO2 , 2015, Chemistry.
[198] L. Palmisano,et al. Photoreduction of Carbon Dioxide to Formic Acid in Aqueous Suspension: A Comparison between Phthalocyanine/TiO2 and Porphyrin/TiO2 Catalysed Processes , 2014, Molecules.
[199] M. Robert,et al. Selective and efficient photocatalytic CO2 reduction to CO using visible light and an iron-based homogeneous catalyst. , 2014, Journal of the American Chemical Society.
[200] M. Robert,et al. Homogeneous Photocatalytic Reduction of CO2 to CO Using Iron(0) Porphyrin Catalysts: Mechanism and Intrinsic Limitations , 2014 .
[201] B. Sreedhar,et al. Cobalt phthalocyanine immobilized on graphene oxide: an efficient visible-active catalyst for the photoreduction of carbon dioxide. , 2014, Chemistry.
[202] M. Grätzel,et al. Sterically hindered phthalocyanines for dye-sensitized solar cells: influence of the distance between the aromatic core and the anchoring group. , 2014, Chemphyschem : a European journal of chemical physics and physical chemistry.
[203] T. Torres,et al. Subphthalocyanines, subporphyrazines, and subporphyrins: singular nonplanar aromatic systems. , 2014, Chemical reviews.
[204] S. Mann,et al. Multifunctional porous microspheres based on peptide-porphyrin hierarchical co-assembly. , 2014, Angewandte Chemie.
[205] M. Grätzel,et al. Peripherally and axially carboxylic acid substituted subphthalocyanines for dye-sensitized solar cells. , 2014, Chemistry.
[206] J. Vos,et al. Porphyrin-cobaloxime complexes for hydrogen production, a photo- and electrochemical study, coupled with quantum chemical calculations. , 2014, Dalton transactions.
[207] D. Tryk,et al. Visible light-induced reduction of carbon dioxide sensitized by a porphyrin–rhenium dyad metal complex on p-type semiconducting NiO as the reduction terminal end of an artificial photosynthetic system , 2014 .
[208] M. Natali,et al. Efficient photocatalytic hydrogen generation from water by a cationic cobalt(II) porphyrin. , 2014, Chemical communications.
[209] T. Peng,et al. Highly efficient visible/near-IR-light-driven photocatalytic H2 production over asymmetric phthalocyanine-sensitized TiO2 , 2013 .
[210] Can Li,et al. Spatial separation of photogenerated electrons and holes among {010} and {110} crystal facets of BiVO4 , 2013, Nature Communications.
[211] Ye Wang,et al. Semiconductor-based nanocomposites for photocatalytic H2 production and CO2 conversion. , 2013, Physical chemistry chemical physics : PCCP.
[212] T. Torres,et al. Towards artificial photosynthesis: Supramolecular, donor–acceptor, porphyrin- and phthalocyanine/carbon nanostructure ensembles , 2012 .
[213] P. Wiper,et al. A water-stable porphyrin-based metal-organic framework active for visible-light photocatalysis. , 2012, Angewandte Chemie.
[214] C. Kubiak,et al. Structural investigations into the deactivation pathway of the CO2 reduction electrocatalyst Re(bpy)(CO)3Cl. , 2012, Chemical communications.
[215] Jun-Ho Yum,et al. Carboxyethynyl anchoring ligands: a means to improving the efficiency of phthalocyanine-sensitized solar cells. , 2012, Angewandte Chemie.
[216] Yao Zheng,et al. Graphitic carbon nitride materials: controllable synthesis and applications in fuel cells and photocatalysis , 2012 .
[217] Zhaohui Li,et al. An amine-functionalized titanium metal-organic framework photocatalyst with visible-light-induced activity for CO2 reduction. , 2012, Angewandte Chemie.
[218] J. F. Stoddart,et al. Covalent Organic Frameworks with High Charge Carrier Mobility , 2011 .
[219] Arnan Mitchell,et al. Nanostructured Tungsten Oxide – Properties, Synthesis, and Applications , 2011 .
[220] A. Mitraki,et al. Self-assembly into spheres of a hybrid diphenylalanine-porphyrin: increased fluorescence lifetime and conserved electronic properties. , 2011, Chemistry.
[221] V. Balzani,et al. The hydrogen issue. , 2011, ChemSusChem.
[222] Xiaobo Chen,et al. Semiconductor-based photocatalytic hydrogen generation. , 2010, Chemical reviews.
[223] Leroy Cronin,et al. Artificial photosynthesis – solar fuels: current status and future prospects , 2010 .
[224] W. Choi,et al. Charge-transfer surface complex of EDTA-TiO2 and its effect on photocatalysis under visible light , 2010 .
[225] M. Martínez‐Díaz,et al. Lighting porphyrins and phthalocyanines for molecular photovoltaics. , 2010, Chemical communications.
[226] C. Kubiak,et al. Re(bipy-tBu)(CO)3Cl-improved catalytic activity for reduction of carbon dioxide: IR-spectroelectrochemical and mechanistic studies. , 2010, Inorganic chemistry.
[227] Anders Hagfeldt,et al. Dye-sensitized solar cells. , 2010, Chemical reviews.
[228] T. Moore,et al. Solar fuels via artificial photosynthesis. , 2009, Accounts of chemical research.
[229] Ivana Radivojevic,et al. Self-organized porphyrinic materials. , 2009, Chemical reviews.
[230] J. Shelnutt,et al. Silica-Metal Core-Shells and Metal Shells Synthesized by Porphyrin-Assisted Photocatalysis , 2008 .
[231] A. Witze,et al. Energy alternatives: Electricity without carbon , 2008, Nature.
[232] J. Savéant. Molecular catalysis of electrochemical reactions. Mechanistic aspects. , 2008, Chemical reviews.
[233] Jun-Ho Yum,et al. Molecular cosensitization for efficient panchromatic dye-sensitized solar cells. , 2007, Angewandte Chemie.
[234] David Barlam,et al. Self-assembled peptide nanotubes are uniquely rigid bioinspired supramolecular structures. , 2005, Nano letters.
[235] Meital Reches,et al. Casting Metal Nanowires Within Discrete Self-Assembled Peptide Nanotubes , 2003, Science.
[236] P. Neta,et al. Iron Porphyrin-Catalyzed Reduction of CO2. Photochemical and Radiation Chemical Studies , 1997 .
[237] J. Lehn,et al. Hydrogen Generation by Visible Light Irradiation of Aqueous Solutions of Metal Complexes. An approach to the photochemical conversion and storage of solar energy , 1979 .
[238] A. Fujishima,et al. Photoelectrocatalytic reduction of carbon dioxide in aqueous suspensions of semiconductor powders , 1979, Nature.
[239] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.
[240] S. S. Babu,et al. A Durable Metalloporphyrin 2D‐Polymer for Photocatalytic Hydrogen and Oxygen Evolution from River and Sea Waters , 2021 .
[241] Xunjin Zhu,et al. Naphthalimide-porphyrin hybridized graphitic carbon nitride for enhanced photocatalytic hydrogen production , 2020 .
[242] Guodong Li,et al. Fabrication mechanism and photocatalytic activity for a novel graphene oxide hybrid functionalized with tetrakis-(4-hydroxylphenyl)porphyrin and 1-pyrenesulfonic acid , 2018 .
[243] Jian Zhang,et al. Acid and Base Resistant Zirconium Polyphenolate‐Metalloporphyrin Scaffolds for Efficient CO2 Photoreduction , 2018, Advanced materials.
[244] Jinhua Ye,et al. Co-porphyrin/carbon nitride hybrids for improved photocatalytic CO 2 reduction under visible light , 2017 .
[245] Xuehai Yan,et al. Self-assembly of biomimetic light-harvesting complexes capable of hydrogen evolution , 2017 .
[246] C. Kubiak,et al. Electro and photoelectrochemical reduction of carbon dioxide on multimetallic porphyrins/polyoxotungstate modified electrodes , 2014 .