Studying the Role of Dual Vacancies Over G-C3n4/Zn0.3cd0.7s for Photocatalytic Co2 Reduction: Experiments and Theoretical Calculation
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Shiyun Chen | Sugang Meng | Sujuan Zhang | Xiuzhen Zheng | Wei Ren | L. Pan | Jiafang Liu | Li Li | Jinfeng Zhang
[1] Jiawei Yan,et al. Sponge‐Like Nickel Carbonate of High Porosity and Carbonate Vacancy for High‐Performance CO2 Photoreduction , 2022 .
[2] Yinzhen Wang,et al. Embedding ZnCdS@ZnIn2S4 into thiazole-modified g-C3N4 by electrostatic self-assembly to build dual Z-scheme heterojunction with spatially separated active centers for photocatalytic H2 evolution and ofloxacin degradation , 2022, Separation and Purification Technology.
[3] P. Raizada,et al. CO2 photoreduction into solar fuels via vacancy engineered bismuth-based photocatalysts: Selectivity and mechanistic insights , 2022, Chemical Engineering Journal.
[4] Lizhi Zhang,et al. Oxygen and Chlorine Dual Vacancies Enable Photocatalytic O2 Dissociation into Monatomic Reactive Oxygen on BiOCl for Refractory Aromatic Pollutant Removal. , 2022, Environmental science & technology.
[5] Jianrong Chen,et al. Stacking Engineering of Semiconductor Heterojunctions on Hollow Carbon Spheres for Boosting Photocatalytic CO2 Reduction , 2022, ACS Catalysis.
[6] Ramesh Chandra Sahoo,et al. Bandgap engineered g-C3N4 and its graphene composites for stable photoreduction of CO2 to methanol , 2022, Carbon.
[7] Kan Zhang,et al. Continuous Oxygen Vacancy Gradient in TiO2 Photoelectrodes by a Photoelectrochemical‐Driven “Self‐Purification” Process , 2022, Advanced Energy Materials.
[8] S. Yamazaki,et al. Crystal Facet Engineering and Hydrogen Spillover-Assisted Synthesis of Defective Pt/TiO2-x Nanorods with Enhanced Visible Light-Driven Photocatalytic Activity. , 2021, ACS applied materials & interfaces.
[9] C. Liang,et al. Cd 3 (C 3 N 3 S 3 ) 2 Polymer/Sn Schottky Heterojunction for Broadband‐solar Highly Selective Photocatalytic CO 2 Reduction , 2021, Solar RRL.
[10] Yumin Zhang,et al. Synergistic Effect of the Surface Vacancy Defects for Promoting Photocatalytic Stability and Activity of ZnS Nanoparticles , 2021, ACS Catalysis.
[11] Qianlin Chen,et al. Oxygen and Titanium Vacancies in a BiOBr/MXene-Ti3C2 Composite for Boosting Photocatalytic N2 Fixation. , 2021, ACS applied materials & interfaces.
[12] Shaohua Shen,et al. Disordered nitrogen-defect-rich porous carbon nitride photocatalyst for highly efficient H2 evolution under visible-light irradiation , 2021 .
[13] A. Simpson,et al. Chinese , 2021, Encyclopedic Dictionary of Archaeology.
[14] F. Dong,et al. S defect-rich ultrathin 2D MoS2: the role of S point-defects and S stripping-defects in the removal of Cr(VI) via synergistic adsorption and photocatalysis , 2021, Applied Catalysis B: Environmental.
[15] Matthew D. Lew,et al. Single-Molecule Colocalization of Redox Reactions on Semiconductor Photocatalysts Connects Surface Heterogeneity and Charge-Carrier Separation in Bismuth Oxybromide. , 2021, Journal of the American Chemical Society.
[16] H. Tan,et al. Foamer-Derived Bulk Nitrogen Defects and Oxygen-Doped Porous Carbon Nitride with Greatly Extended Visible-Light Response and Efficient Photocatalytic Activity. , 2021, ACS applied materials & interfaces.
[17] Z. Chen,et al. Interfacial Engineering of Bi19Br3S27 Nanowires Promotes Metallic Photocatalytic CO2 Reduction Activity under Near-Infrared Light Irradiation. , 2021, Journal of the American Chemical Society.
[18] K. Domen,et al. Sequential cocatalyst decoration on BaTaO2N towards highly-active Z-scheme water splitting , 2021, Nature Communications.
[19] Chuncheng Chen,et al. Photocatalytic C-C Coupling from Carbon Dioxide Reduction on Copper Oxide with Mixed-Valence Copper(I)/Copper(II). , 2021, Journal of the American Chemical Society.
[20] Geoffrey I N Waterhouse,et al. Fe‐Based Catalysts for the Direct Photohydrogenation of CO2 to Value‐Added Hydrocarbons , 2021, Advanced Energy Materials.
[21] Renpeng Chen,et al. Near-Infrared-Responsive Photo-Driven Nitrogen Fixation Enabled by Oxygen Vacancies and Sulfur Doping in Black TiO2-xSy Nanoplatelets. , 2021, ACS applied materials & interfaces.
[22] Shifu Chen,et al. Effect of Zn Vacancies in Zn3In2S6 Nanosheets on Boosting Photocatalytic N2 Fixation , 2020 .
[23] Q. Zhong,et al. Highly efficient CH3OH production over Zn0.2Cd0.8S decorated g-C3N4 heterostructures for the photoreduction of CO2 , 2020 .
[24] Guoqiang Tan,et al. Dual defects and build-in electric field mediated direct Z-scheme W18O49/g-C3N4-x heterojunction for photocatalytic NO removal and organic pollutant degradation. , 2020, Journal of colloid and interface science.
[25] Danzhen Li,et al. Regulating charge transfer over 3D Au/ZnO hybrid inverse opal toward efficiently photocatalytic degradation of bisphenol A and photoelectrochemical water splitting , 2020 .
[26] Tierui Zhang,et al. Selective photocatalytic CO2 reduction over Zn-based layered double hydroxides containing tri or tetravalent metals. , 2020, Science bulletin.
[27] F. Wang,et al. B-O bond in ultrathin boron nitride nanosheets to promote photocatalytic carbon dioxide conversion. , 2020, ACS applied materials & interfaces.
[28] Jiaguo Yu,et al. Designing 0D/2D S-scheme Heterojunction over Polymeric Carbon Nitride for Visible-Light Photocatalytic Inactivation of Bacteria. , 2020, Angewandte Chemie.
[29] S. Feng,et al. 3D Hierarchical ZnIn2S4 Nanosheets with Rich Zn Vacancies Boosting Photocatalytic CO2 Reduction , 2019, Advanced Functional Materials.
[30] Xu‐Bing Li,et al. Quantum Dot Assembly for Light-Driven Multielectron Redox Reactions, such as Hydrogen Evolution and CO2 Reduction. , 2019, Angewandte Chemie.
[31] Taotao Zhu,et al. Efficient utilization of photogenerated electrons and holes for photocatalytic redox reactions using visible light-driven Au/ZnIn2S4 hybrid. , 2019, Journal of hazardous materials.
[32] Hongyu Ma,et al. C/N Vacancy Co‐Enhanced Visible‐Light‐Driven Hydrogen Evolution of g‐C 3 N 4 Nanosheets Through Controlled He + Ion Irradiation , 2019, Solar RRL.
[33] Huan Xu,et al. Core–shell g-C3N4@Zn0.5Cd0.5S heterojunction photocatalysts with high photocatalytic activity for the degradation of organic dyes , 2019, Journal of Materials Science: Materials in Electronics.
[34] Z. Abideen,et al. Effect of alkaline treatment on photochemical activity and stability of Zn0.3Cd0.7S , 2019, Applied Surface Science.
[35] Z. Zou,et al. Zn-vacancy mediated electron-hole separation in ZnS/g-C3N4 heterojunction for efficient visible-light photocatalytic hydrogen production , 2018 .
[36] E. Liu,et al. Novel reduced graphene oxide-supported Cd0.5Zn0.5S/g-C3N4 Z-scheme heterojunction photocatalyst for enhanced hydrogen evolution , 2018, Applied Surface Science.
[37] K. Cen,et al. Photothermal Coupling Factor Achieving CO2 Reduction Based on Palladium-Nanoparticle-Loaded TiO2 , 2018, ACS Catalysis.
[38] 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 .
[39] 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.
[40] P. Ghosh,et al. Cadmium Vacancy Minority Defects as Luminescence Centers in Size and Strain Dependent Photoluminescence Shifts in CdS Nanotubes , 2014 .