Facile Synthesis of P-Doped ZnIn2S4 with Enhanced Visible-Light-Driven Photocatalytic Hydrogen Production
暂无分享,去创建一个
H. Lv | Yongzheng Zhang | Hongfei Yin | Qi Zhao | Chunyu Yuan | Qian Fei | Hongji Chen | Yujin Zhang | Xiangrui Feng | Mengmeng Zheng
[1] Construction of 3D/3D heterojunction between new noble metal free ZnIn2S4 and non-inert metal NiMoO4 for enhanced hydrogen evolution performance under visible light , 2023, International Journal of Hydrogen Energy.
[2] T. Klimczuk,et al. Photocatalytic hydrogen evolution from glycerol-water mixture under visible light over zinc indium sulfide (ZnIn2S4) nanosheets grown on bismuth oxychloride (BiOCl) microplates. , 2023, Journal of colloid and interface science.
[3] M. Cai,et al. Enhanced Photocatalytic Hydrogen Production of ZnIn2S4 by Using Surface-Engineered Ti3C2Tx MXene as a Cocatalyst , 2023, Materials.
[4] Rui Feng,et al. Highly Efficient Visible-light Photocatalytic Hydrogen Production using ZIF-derived Co9S8/N, S-CNTs-ZnIn2S4 Composite , 2023, Chemical Physics Letters.
[5] Xiyang Wang,et al. Atomically Dispersed Bismuth on Znin2s4 Dual-Functional Photocatalyst for Photocatalytic Hydrogen Production Coupled with Oxidation of Aromatic Alcohols to Aldehydes , 2023, SSRN Electronic Journal.
[6] Shengtao Yang,et al. Near-Infrared Light Driven ZnIn2S4-Based Photocatalysts for Environmental and Energy Applications: Progress and Perspectives , 2023, Molecules.
[7] Qiming Xian,et al. Z-Scheme Modulated Charge Transfer on InVO4 @ZnIn2 S4 for Durable Overall Water Splitting. , 2023, Small.
[8] M. Zhang,et al. In-situ synthesis of 0D/1D CeO2/Zn0.4Cd0.6S S-scheme heterostructures for boosting photocatalytic remove of antibiotic and chromium , 2023, Ceramics International.
[9] Suting Weng,et al. Efficient Charge Transfer and Effective Active Sites in Lead‐Free Halide Double Perovskite S‐Scheme Heterojunctions for Photocatalytic H2 Evolution , 2023, Small methods.
[10] K. Qi,et al. Photocatalytic Hydrogen Production and Tetracycline Degradation Using ZnIn2S4 Quantum Dots Modified g-C3N4 Composites , 2023, Nanomaterials.
[11] Lirong Fu,et al. ZnIn2S4-based photocatalysts for photocatalytic hydrogen evolution via water splitting , 2022, Coordination Chemistry Reviews.
[12] Xian‐Wen Wei,et al. Integration of ReS2 on ZnIn2S4 for boosting the hydrogen evolution coupled with selective oxidation of biomass intermediate under visible light , 2022, International Journal of Hydrogen Energy.
[13] Shengming Xu,et al. 2D NiCo2S4 decorated on ZnIn2S4 formed S-scheme heterojunction for photocatalytic hydrogen production , 2022, International Journal of Hydrogen Energy.
[14] Jian Zhang,et al. S-scheme 2D/2D FeTiO3/g-C3N4 hybrid architectures as visible-light-driven photo-Fenton catalysts for tetracycline hydrochloride degradation , 2022, Separation and Purification Technology.
[15] Zeyan Wang,et al. Low-Coordination Single Au Atoms on Ultrathin ZnIn2S4 Nanosheets for Selective Photocatalytic CO2 Reduction towards CH4. , 2022, Angewandte Chemie.
[16] Sihui Zhan,et al. Shedding light on the role of interfacial chemical bond in heterojunction photocatalysis , 2022, Nano Research.
[17] Y. Li,et al. W5+–W5+ Pair Induced LSPR of W18O49 to Sensitize ZnIn2S4 for Full‐Spectrum Solar‐Light‐Driven Photocatalytic Hydrogen Evolution , 2022, Advanced Functional Materials.
[18] S. Komarneni,et al. Composite of g-C3N4/ZnIn2S4 for efficient adsorption and visible light photocatalytic reduction of Cr(VI) , 2022, Environmental Science and Pollution Research.
[19] Wee‐Jun Ong,et al. ZnIn2S4‐Based Nanostructures in Artificial Photosynthesis: Insights into Photocatalytic Reduction toward Sustainable Energy Production , 2022, Small Structures.
[20] Yue Zhao,et al. Recent advances and perspectives for solar-driven water splitting using particulate photocatalysts. , 2022, Chemical Society reviews.
[21] Huajun Zheng,et al. Protruding Pt single-sites on hexagonal ZnIn2S4 to accelerate photocatalytic hydrogen evolution , 2022, Nature Communications.
[22] Zhipeng Li,et al. Delaminating Ti3C2 MXene by blossom of ZnIn2S4 microflowers for noble-metal-free photocatalytic hydrogen production , 2022, Journal of Materials Science & Technology.
[23] M. Zhang,et al. Synergistic effects of interface coupling and defect sites in WO3/InVO4 architectures for highly efficient nitrogen photofixation , 2022, Separation and Purification Technology.
[24] David J. Singh,et al. Favorable Energy Band Alignment of TiO2 Anatase/Rutile Heterophase Homojunctions Yields Photocatalytic Hydrogen Evolution with Quantum Efficiency Exceeding 45.6% , 2022, Advanced Energy Materials.
[25] Hui Song,et al. Solar-Driven Hydrogen Production: Recent Advances, Challenges, and Future Perspectives , 2022, ACS Energy Letters.
[26] M. Ahmaruzzaman,et al. ZnIn2S4 and ZnIn2S4 based advanced hybrid materials: structure, morphology and applications in environment and energy , 2022, Inorganic Chemistry Communications.
[27] Yumin Zhang,et al. Single-atom Cu anchored catalysts for photocatalytic renewable H2 production with a quantum efficiency of 56% , 2022, Nature communications.
[28] Kaiyue Zhang,et al. Hierarchical Ti3C2 MXene/Zn3In2S6 Schottky junction for efficient visible-light-driven Cr(VI) photoreduction , 2022, Ceramics International.
[29] Jiani Qin,et al. Metal-Free Phosphorus-Doped ZnIn2S4 Nanosheets for Enhanced Photocatalytic CO2 Reduction , 2021 .
[30] Xuanhua Li,et al. Sulfur‐Deficient ZnIn2S4/Oxygen‐Deficient WO3 Hybrids with Carbon Layer Bridges as a Novel Photothermal/Photocatalytic Integrated System for Z‐Scheme Overall Water Splitting , 2021, Advanced Energy Materials.
[31] Jiaguo Yu,et al. In situ Irradiated XPS Investigation on S-Scheme TiO2 @ZnIn2 S4 Photocatalyst for Efficient Photocatalytic CO2 Reduction. , 2021, Small.
[32] Yi‐Jun Xu,et al. Cooperative Coupling of Oxidative Organic Synthesis and Hydrogen Production over Semiconductor-Based Photocatalysts. , 2021, Chemical reviews.
[33] Peilin Liao,et al. Construction of p-n junctions in single-unit-cell ZnIn2S4 nanosheet arrays toward promoted photoelectrochemical performance , 2021 .
[34] Xiaoheng Liu,et al. Construction of three-dimensional MgIn2S4 nanoflowers/two-dimensional oxygen-doped g-C3N4 nanosheets direct Z-scheme heterojunctions for efficient Cr(VI) reduction: Insight into the role of superoxide radicals. , 2021, Journal of hazardous materials.
[35] Peng Zhang,et al. One-step hydrothermal synthesis of S-defect-controlled ZnIn2S4 microflowers with improved kinetics process of charge-carriers for photocatalytic H2 evolution , 2021, Journal of Energy Chemistry.
[36] M. Liu,et al. Construction of hierarchical photocatalysts by growing ZnIn2S4 nanosheets on Prussian blue analogue-derived bimetallic sulfides for solar co-production of H2 and organic chemicals , 2021, Journal of Energy Chemistry.
[37] Liping Zhang,et al. Inside Back Cover: Ultrathin Porous Carbon Nitride Bundles with an Adjustable Energy Band Structure toward Simultaneous Solar Photocatalytic Water Splitting and Selective Phenylcarbinol Oxidation (Angew. Chem. Int. Ed. 9/2021) , 2021 .
[38] Kun Zhang,et al. In Situ Synthesis of Lead-Free Halide Perovskite Cs2AgBiBr6 Supported on Nitrogen-Doped Carbon for Efficient Hydrogen Evolution in Aqueous HBr Solution. , 2021, ACS applied materials & interfaces.
[39] Shen-ming Chen,et al. In situ synthesis of Ag3PO4/C3N5Z-scheme heterojunctions with enhanced visible-light-responsive photocatalytic performance for antibiotics removal. , 2021, The Science of the total environment.
[40] Chuanzhen Wang,et al. Rational synthesis of Cu7Se4-CuxCo1-xSe2 double-shell hollow nanospheres for high performance supercapacitors , 2020 .
[41] Dongyun Chen,et al. A mini-review on ZnIn2S4-Based photocatalysts for energy and environmental application , 2020 .
[42] Q. Meng,et al. Efficient hydrogen evolution and fine chemicals production on vacancies and cocatalyst modified 2D-3D ZnIn2S4 photocatalyst , 2020 .
[43] H. Ding,et al. A review: Synthesis, modification and photocatalytic applications of ZnIn2S4 , 2020, Journal of Materials Science & Technology.
[44] Pardeep Singh,et al. Perspective and status of polymeric graphitic carbon nitride based Z-scheme photocatalytic systems for sustainable photocatalytic water purification , 2020 .
[45] Changhai Liu,et al. A novel 2D/1D core-shell heterostructures coupling MOF-derived iron oxides with ZnIn2S4 for enhanced photocatalytic activity. , 2020, Journal of hazardous materials.
[46] K. Domen,et al. Particulate Photocatalysts for Light-Driven Water Splitting: Mechanisms, Challenges, and Design Strategies. , 2020, Chemical reviews.
[47] G. Zeng,et al. Recent advances in synthesis, modification and photocatalytic applications of micro/nano-structured zinc indium sulfide , 2018, Chemical Engineering Journal.
[48] Jinlong Yang,et al. Material Design for Photocatalytic Water Splitting from a Theoretical Perspective , 2018, Advanced materials.
[49] X. Lou,et al. Construction of ZnIn2S4-In2O3 Hierarchical Tubular Heterostructures for Efficient CO2 Photoreduction. , 2018, Journal of the American Chemical Society.
[50] Zongping Shao,et al. Nitrogen-doped simple and complex oxides for photocatalysis: A review , 2018 .
[51] Jiang Zhang,et al. Construction of heterostructured ZnIn2S4@NH2-MIL-125(Ti) nanocomposites for visible-light-driven H2 production , 2018 .
[52] Guowei Yang,et al. A 2D self-assembled MoS2/ZnIn2S4 heterostructure for efficient photocatalytic hydrogen evolution. , 2017, Nanoscale.
[53] A. Mendes,et al. Characterization of TiO 2 -based semiconductors for photocatalysis by electrochemical impedance spectroscopy , 2016 .
[54] Yi Xie,et al. Enhanced Photoexcited Carrier Separation in Oxygen-Doped ZnIn2 S4 Nanosheets for Hydrogen Evolution. , 2016, Angewandte Chemie.
[55] U. Waghmare,et al. Extraordinary Changes in the Electronic Structure and Properties of CdS and ZnS by Anionic Substitution: Cosubstitution of P and Cl in Place of S. , 2015, Angewandte Chemie.
[56] Yong Zhou,et al. State‐of‐the‐Art Progress in Diverse Heterostructured Photocatalysts toward Promoting Photocatalytic Performance , 2015 .
[57] M. Jaroniec,et al. Earth-abundant cocatalysts for semiconductor-based photocatalytic water splitting. , 2014, Chemical Society reviews.
[58] Can Li,et al. Roles of cocatalysts in photocatalysis and photoelectrocatalysis. , 2013, Accounts of chemical research.
[59] H. Martínez,et al. InP/ZnS nanocrystals: coupling NMR and XPS for fine surface and interface description. , 2012, Journal of the American Chemical Society.
[60] G. B. Stringfellow,et al. Strain-enhanced doping in semiconductors: effects of dopant size and charge state. , 2010, Physical review letters.
[61] Danzhen Li,et al. Photocatalytic Degradation of Dyes by ZnIn2S4 Microspheres under Visible Light Irradiation , 2009 .
[62] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.
[63] X. Kong,et al. Non-metal doping induced dual p-n charge properties in a single ZnIn2S4 crystal structure provoking charge transfer behaviors and boosting photocatalytic hydrogen generation , 2023, Applied Catalysis B: Environmental.
[64] Wenqing Hou,et al. Improved activity and stability of ZnIn2S4 for H2 production under visible light through Cerium UiO-66 , 2023, Sustainable Energy & Fuels.
[65] H. Hou,et al. Spatial Separation of Redox Centers for Boosting Cooperative Photocatalytic Hydrogen Evolution with Oxidation Coupling of Benzylamine over Pt@UiO-66-NH2@ZnIn2S4 , 2023, Catalysis Science & Technology.
[66] B. Yan,et al. Enhanced carrier separation and increased electron density in 2D heavily N-doped ZnIn2S4 for photocatalytic hydrogen production , 2020 .