Photocatalytic CO2 reduction by a Z-scheme mechanism in an aqueous suspension of particulate (CuGa)0.3Zn1.4S2, BiVO4 and a Co complex operating dual-functionally as an electron mediator and as a cocatalyst
暂无分享,去创建一个
[1] A. Kudo,et al. CO2 Reduction Using Water as an Electron Donor over Heterogeneous Photocatalysts Aiming at Artificial Photosynthesis , 2022, Accounts of chemical research.
[2] Tomiko M. Suzuki,et al. Photocatalytic CO2 Reduction Using Water as an Electron Donor under Visible Light Irradiation by Z-Scheme and Photoelectrochemical Systems over (CuGa)0.5ZnS2 in the Presence of Basic Additives , 2022, Journal of the American Chemical Society.
[3] Tomiko M. Suzuki,et al. Solar-Driven CO2 Reduction Using a Semiconductor/Molecule Hybrid Photosystem: From Photocatalysts to a Monolithic Artificial Leaf. , 2021, Accounts of chemical research.
[4] K. Domen,et al. Highly Selective Photocatalytic Conversion of Carbon Dioxide by Water over Al-SrTiO3 Photocatalyst Modified with Silver–Metal Dual Cocatalysts , 2021, ACS Sustainable Chemistry & Engineering.
[5] O. Ishitani,et al. Molecule/Semiconductor Hybrid Materials for Visible-Light CO2 Reduction: Design Principles and Interfacial Engineering , 2021 .
[6] Yong Zhou,et al. Organic half-metal derived erythroid-like BiVO4/hm-C4N3 Z-Scheme photocatalyst: Reduction sites upgrading and rate-determining step modulation for overall CO2 and H2O conversion , 2021 .
[7] Yihe Zhang,et al. Nanostructured Metal Sulfides: Classification, Modification Strategy, and Solar‐Driven CO2 Reduction Application , 2020, Advanced Functional Materials.
[8] A. Kudo,et al. Z-Schematic CO2 Reduction to CO through Interparticle Electron Transfer between SrTiO3:Rh of a Reducing Photocatalyst and BiVO4 of a Water Oxidation Photocatalyst under Visible Light , 2020, ACS Applied Energy Materials.
[9] Xianzhi Fu,et al. Direct and indirect Z-scheme heterostructure-coupled photosystem enabling cooperation of CO2 reduction and H2O oxidation , 2020, Nature Communications.
[10] C. Janáky,et al. Recent Advances in Solar-Driven Carbon Dioxide Conversion: Expectations versus Reality , 2020, ACS energy letters.
[11] A. Mohamed,et al. Z-Scheme Photocatalytic Systems for Carbon Dioxide Reduction: Where Are We Now? , 2020, Angewandte Chemie.
[12] Hyoyoung Lee,et al. Highly efficient nanostructured metal-decorated hybrid semiconductors for solar conversion of CO2 with almost complete CO selectivity , 2020 .
[13] Zhiqun Lin,et al. Recent advances in metal sulfides: from controlled fabrication to electrocatalytic, photocatalytic and photoelectrochemical water splitting and beyond. , 2019, Chemical Society reviews.
[14] A. Kudo,et al. Z-scheme photocatalyst systems employing Rh- and Ir-doped metal oxide materials for water splitting under visible light irradiation. , 2019, Faraday discussions.
[15] Jonah W. Jurss,et al. Robust and Selective Cobalt Catalysts Bearing Redox-Active Bipyridyl-N-heterocyclic Carbene Frameworks for Electrochemical CO2 Reduction in Aqueous Solutions , 2019, ACS Catalysis.
[16] K. Maeda. Metal‐Complex/Semiconductor Hybrid Photocatalysts and Photoelectrodes for CO2 Reduction Driven by Visible Light , 2019, Advanced materials.
[17] Mietek Jaroniec,et al. Cocatalysts for Selective Photoreduction of CO2 into Solar Fuels. , 2019, Chemical reviews.
[18] Moritz F. Kuehnel,et al. Solar-driven reduction of aqueous CO2 with a cobalt bis(terpyridine)-based photocathode , 2019, Nature Catalysis.
[19] Tomiko M. Suzuki,et al. Z-Schematic and visible-light-driven CO2 reduction using H2O as an electron donor by a particulate mixture of a Ru-complex/(CuGa)1-xZn2xS2 hybrid catalyst, BiVO4 and an electron mediator. , 2018, Chemical communications.
[20] Genevieve Saur,et al. What Should We Make with CO2 and How Can We Make It , 2018 .
[21] Tomiko M. Suzuki,et al. Enhancement of CO2 reduction activity under visible light irradiation over Zn-based metal sulfides by combination with Ru-complex catalysts , 2018 .
[22] I. Sharp,et al. The Technical and Energetic Challenges of Separating (Photo)Electrochemical Carbon Dioxide Reduction Products , 2018 .
[23] Keita Sekizawa,et al. Solar-Driven Photocatalytic CO2 Reduction in Water Utilizing a Ruthenium Complex Catalyst on p-Type Fe2O3 with a Multiheterojunction , 2018 .
[24] O. Ishitani,et al. Reaction mechanisms of catalytic photochemical CO2 reduction using Re(I) and Ru(II) complexes , 2017, Coordination Chemistry Reviews.
[25] H. Ishii. Photoelectron Yield Spectroscopy , 2018 .
[26] Licheng Sun,et al. Highly efficient photocatalytic reduction of CO2 and H2O to CO and H2 with a cobalt bipyridyl complex , 2017 .
[27] Moritz F. Kuehnel,et al. Selective Photocatalytic CO2 Reduction in Water through Anchoring of a Molecular Ni Catalyst on CdS Nanocrystals. , 2017, Journal of the American Chemical Society.
[28] O. Ishitani,et al. Photoelectrochemical Reduction of CO2 Coupled to Water Oxidation Using a Photocathode with a Ru(II)-Re(I) Complex Photocatalyst and a CoOx/TaON Photoanode. , 2016, Journal of the American Chemical Society.
[29] Alexander J. Cowan,et al. Photochemical CO2 reduction using structurally controlled g-C3N4. , 2016, Physical chemistry chemical physics : PCCP.
[30] R. Amal,et al. Water Splitting and CO2 Reduction under Visible Light Irradiation Using Z-Scheme Systems Consisting of Metal Sulfides, CoOx-Loaded BiVO4, and a Reduced Graphene Oxide Electron Mediator. , 2016, Journal of the American Chemical Society.
[31] M. Grätzel,et al. Covalent Immobilization of a Molecular Catalyst on Cu2O Photocathodes for CO2 Reduction. , 2016, Journal of the American Chemical Society.
[32] Haining Tian,et al. Molecular Catalyst Immobilized Photocathodes for Water/Proton and Carbon Dioxide Reduction. , 2015, ChemSusChem.
[33] Frances A. Houle,et al. Particle suspension reactors and materials for solar-driven water splitting , 2015 .
[34] Yun Luo,et al. Selective Catalytic Electroreduction of CO2 at Silicon Nanowires (SiNWs) Photocathodes Using Non-Noble Metal-Based Manganese Carbonyl Bipyridyl Molecular Catalysts in Solution and Grafted onto SiNWs , 2015 .
[35] H. Yoshida,et al. Photocatalytic reduction of CO2 with water promoted by Ag clusters in Ag/Ga2O3 photocatalysts , 2015 .
[36] Tomiko M. Suzuki,et al. Z-scheme water splitting under visible light irradiation over powdered metal-complex/semiconductor hybrid photocatalysts mediated by reduced graphene oxide , 2015 .
[37] A. Kudo,et al. Utilization of Metal Sulfide Material of (CuGa)(1-x)Zn(2x)S2 Solid Solution with Visible Light Response in Photocatalytic and Photoelectrochemical Solar Water Splitting Systems. , 2015, The journal of physical chemistry letters.
[38] Xinchen Wang,et al. Photochemical Reduction of CO2 by Graphitic Carbon Nitride Polymers , 2014 .
[39] 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 .
[40] 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.
[41] T. Kajino,et al. Solar CO2 reduction using H2O by a semiconductor/metal-complex hybrid photocatalyst: enhanced efficiency and demonstration of a wireless system using SrTiO3 photoanodes , 2013 .
[42] A. Kudo,et al. Photocatalytic reduction of carbon dioxide over Ag cocatalyst-loaded ALa4Ti4O15 (A = Ca, Sr, and Ba) using water as a reducing reagent. , 2011, Journal of the American Chemical Society.
[43] T. Kajino,et al. Photoinduced Electron Transfer from Nitrogen-Doped Tantalum Oxide to Adsorbed Ruthenium Complex , 2011 .
[44] T. Kajino,et al. Visible-light-induced selective CO2 reduction utilizing a ruthenium complex electrocatalyst linked to a p-type nitrogen-doped Ta2O5 semiconductor. , 2010, Angewandte Chemie.
[45] C. Cramer,et al. Aqueous solvation free energies of ions and ion-water clusters based on an accurate value for the absolute aqueous solvation free energy of the proton. , 2006, The journal of physical chemistry. B.
[46] 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 .
[47] V. Barone,et al. Quantum Calculation of Molecular Energies and Energy Gradients in Solution by a Conductor Solvent Model , 1998 .
[48] A. Becke. A New Mixing of Hartree-Fock and Local Density-Functional Theories , 1993 .
[49] J. Lehn,et al. Photochemical reduction of carbon dioxide to formate catalyzed by 2,2t́-bipyridine- or 1,10-phenanthroline-ruthenium(II) complexes , 1990 .
[50] A. Becke,et al. Density-functional exchange-energy approximation with correct asymptotic behavior. , 1988, Physical review. A, General physics.
[51] Parr,et al. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. , 1988, Physical review. B, Condensed matter.
[52] C. V. Krishnan,et al. Homogeneous catalysis of the photoreduction of water. 6. Mediation by polypyridine complexes of ruthenium(II) and cobalt(II) in alkaline media , 1985 .
[53] J. Lehn,et al. Photochemical reduction of carbon dioxide to formate mediated by ruthenium bipyridine complexes as homogeneous catalysts , 1985 .
[54] W. R. Wadt,et al. Ab initio effective core potentials for molecular calculations , 1984 .
[55] J. Pople,et al. Self‐Consistent Molecular‐Orbital Methods. IX. An Extended Gaussian‐Type Basis for Molecular‐Orbital Studies of Organic Molecules , 1971 .