Synergistic effects of cocatalyst and homojunction/heterojunction with boosted photocatalytic H2 evolution over Zn0.5Cd0.5S/NDs
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Haitao Zhao | Heyuan Liu | Xiyou Li | Li Shen | Xiaoyan Zhao
[1] Hong Xia,et al. Three-Component Donor-π-Acceptor Covalent-Organic Frameworks for Boosting Photocatalytic Hydrogen Evolution. , 2023, Journal of the American Chemical Society.
[2] N. Zheng,et al. Atom‐Precise Heteroatom Core‐Tailoring of Nanoclusters for Enhanced Solar Hydrogen Generation , 2023, Advances in Materials.
[3] Xiyou Li,et al. Dual P-Doped-Site Modified Porous G-C3n4 Achieves High Dissociation and Mobility Efficiency for Photocatalytic H2o2 Production , 2023, SSRN Electronic Journal.
[4] Zhongping Li,et al. Integrated interfacial design of covalent organic framework photocatalysts to promote hydrogen evolution from water , 2023, Nature Communications.
[5] Yueping Fang,et al. Cocatalyst Engineering with Robust Tunable Carbon‐Encapsulated Mo‐Rich Mo/Mo2C Heterostructure Nanoparticle for Efficient Photocatalytic Hydrogen Evolution , 2023, Advanced Functional Materials.
[6] C. Si,et al. Dual-functional marigold-like Zn Cd S homojunction for selective glucose photoreforming with remarkable H2 coproduction , 2022, Journal of Energy Chemistry.
[7] W. Wang,et al. Insight into the whole characteristics of (Pd/WP)/CdS for photocatalytic hydrogen evolution. , 2022, Journal of colloid and interface science.
[8] Y. Zhang,et al. Chemical Bonding Interface in Bi2Sn2O7/BiOBr S-Scheme Heterojunction Triggering Efficient N2 Photofixation , 2022, Applied Catalysis B: Environmental.
[9] Xiaomei Cheng,et al. Atomically precise Ni6(SC2H4Ph)12 nanoclusters on graphitic carbon nitride nanosheets for boosting photocatalytic hydrogen evolution. , 2022, Journal of colloid and interface science.
[10] Xing-shun Li,et al. Photocatalytic degradation of organic pollutants over MoS2/Ag-ZnFe2O4 Z-scheme heterojunction: Revealing the synergistic effects of exposed crystal facets, defect engineering, and Z-scheme mechanism , 2022, Chemical Engineering Journal.
[11] Yue Zhang,et al. Co-MOF-67 derived hollow double-shell core Co3O4 with Zn0.5Cd0.5S to construct p-n heterojunction for efficient photocatalytic hydrogen evolution. , 2022, Journal of colloid and interface science.
[12] Wenlei Zhang,et al. Coupled internal electric field with hydrogen release kinetics for promoted photocatalytic hydrogen production through employing carbon coated transition metal as co-catalyst. , 2022, Journal of colloid and interface science.
[13] B. Fang,et al. Z-scheme systems: From fundamental principles to characterization, synthesis, and photocatalytic fuel-conversion applications , 2022, Physics Reports.
[14] Zhikun Peng,et al. Black phosphorus/Bi19Br3S27 van der Waals heterojunctions ensure the supply of activated hydrogen for effective CO2 photoreduction , 2022, Applied Catalysis B: Environmental.
[15] Heyuan Liu,et al. Solar energy-driven upcycling of plastic waste on direct Z-scheme heterostructure of V-substituted phosphomolybdic acid/g-C3N4 nanosheets , 2022, Applied Catalysis B: Environmental.
[16] Yue Zhao,et al. Recent advances and perspectives for solar-driven water splitting using particulate photocatalysts. , 2022, Chemical Society reviews.
[17] Yajun Wang,et al. Boosting photocatalytic hydrogen evolution via regulating Pt chemical states , 2022, Chemical Engineering Journal.
[18] Weiwei Xia,et al. Few-Layered MoS2/ZnCdS/ZnS Heterostructures with an Enhanced Photocatalytic Hydrogen Evolution , 2022, ACS Applied Energy Materials.
[19] Xiaoteng Liu,et al. Interior and Surface Synergistic Modifications Modulate the SnNb2O6/Ni-Doped ZnIn2S4 S-Scheme Heterojunction for Efficient Photocatalytic H2 Evolution. , 2022, Inorganic chemistry.
[20] Luhua Jiang,et al. B-ZnxCd1–xS/Cd Heterojunction with Sulfur Vacancies for Photocatalytic Overall Dyeing Wastewater Splitting , 2022, ACS Sustainable Chemistry & Engineering.
[21] Yue Zhang,et al. Design and Preparation of a CeVO4/Zn0.5Cd0.5S S-Scheme Heterojunction for Efficient Photocatalytic Hydrogen Evolution , 2022, ACS Applied Energy Materials.
[22] Xinyu Zhang,et al. Enhanced Visible Light-Driven Photocatalytic Hydrogen Evolution and Stability for Noble Metal-Free MoS2/Zn0.5Cd0.5S Heterostructures with W/Z Phase Junctions , 2022, Applied Surface Science.
[23] Xinlong Tian,et al. Recent Advances in the Hydrogen Evolution Reaction of ZnxCd1−xS‐Based Photocatalysts , 2022, Solar RRL.
[24] Jiaguo Yu,et al. Emerging S‐Scheme Photocatalyst , 2021, Advanced materials.
[25] Y. Liu,et al. MOF-mediated fabrication of coralloid Ni2P@CdS for enhanced visible-light hydrogen evolution , 2021 .
[26] Haoran Sun,et al. Construction of nanodiamonds/UiO-66-NH2 heterojunction for boosted visible-light photocatalytic degradation of antibiotics , 2021, Separation and Purification Technology.
[27] B. Fang,et al. Emerging frontiers of Z-scheme photocatalytic systems , 2021, Trends in Chemistry.
[28] Y. Lai,et al. Noble-metal-free metallic MoC combined with CdS for enhanced visible-light-driven photocatalytic hydrogen evolution , 2021, Journal of Cleaner Production.
[29] Shenghe Zhao,et al. Construction of CoS2/Zn0.5Cd0.5S S-scheme heterojunction for enhancing H2 evolution activity under visible light. , 2021, Chemistry.
[30] Xiaoteng Liu,et al. Boosting H2 Production over C60 -Mediated NH2 -MIL-125(Ti)/Zn0.5 Cd0.5 S S-Scheme Heterojunction via Enhanced Interfacial Carrier Separation. , 2021, Small.
[31] Lili Wang,et al. Interface engineering of Co9S8/CdIn2S4 ohmic junction for efficient photocatalytic H2 evolution under visible light. , 2021, Journal of colloid and interface science.
[32] Xiaoteng Liu,et al. Synergy between Cu doping and catalytic platform in 2D Ni-MOFs/Cu-Zn0.5Cd0.5S for efficient water-to-hydrogen conversion , 2021 .
[33] Jun Xu,et al. Rare earth oxynitrides: promising visible-light-driven photocatalysts for water splitting , 2021, Materials Advances.
[34] Haoran Sun,et al. Nanodiamonds anchored on porous ZnSnO3 cubes as an efficient composite photocatalyst with improved visible-light photocatalytic degradation of tetracycline , 2021 .
[35] Quanjun Xiang,et al. Constructing low-cost Ni3C/twin-crystal Zn0.5Cd0.5S heterojunction/homojunction nanohybrids for efficient photocatalytic H2 evolution , 2021, Chinese Journal of Catalysis.
[36] S. Bagheri,et al. Nano-diamond based photocatalysis for solar hydrogen production , 2020 .
[37] Hongjun Dong,et al. Z-scheme AgVO3/ZnIn2S4 photocatalysts: “One Stone and Two Birds” strategy to solve photocorrosion and improve the photocatalytic activity and stability , 2020 .
[38] Xingjiu Huang,et al. Regulation of intrinsic physicochemical properties of metal oxide nanomaterials for energy conversion and environmental detection applications , 2020 .
[39] Ming Wen,et al. ZnxCd1-xS based materials for photocatalytic hydrogen evolution, pollutants degradation and carbon dioxide reduction , 2020, Applied Catalysis B: Environmental.
[40] Tunan Gao,et al. Ligand-Assisted Coordinative Self-Assembly Method to Synthesize Mesoporous ZnxCd1-xS Nanospheres with Nano-Twin-Induced Phase Junction for Enhanced Photocatalytic H2 Evolution. , 2020, Inorganic chemistry.
[41] P. Pasbakhsh,et al. Overall pure water splitting using one-dimensional P-doped twinned Zn0.5Cd0.5S1-x nanorods via synergetic combination of long-range ordered homojunctions and interstitial S vacancies with prolonged carrier lifetime , 2020 .
[42] Haitao Zhao,et al. A homojunction–heterojunction–homojunction scaffold boosts photocatalytic H2 evolution over Cd0.5Zn0.5S/CoO hybrids , 2020 .
[43] Songsong Li,et al. In-situ synthesis of ternary metal phosphides NixCo1−xP decorated Zn0.5Cd0.5S nanorods with significantly enhanced photocatalytic hydrogen production activity , 2019 .
[44] 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.
[45] B. Yan,et al. Half-unit-cell ZnIn2S4 monolayer with sulfur vacancies for photocatalytic hydrogen evolution , 2019, Applied Catalysis B: Environmental.
[46] J. Figueiredo,et al. Photocatalytic activity of functionalized nanodiamond-TiO2 composites towards water pollutants degradation under UV/Vis irradiation , 2018, Applied Surface Science.
[47] Zhang Lin,et al. Enhanced photocatalytic H2 production activity of CdZnS with stacking faults structure assisted by ethylenediamine and NiS , 2018, International Journal of Hydrogen Energy.
[48] W. Choi,et al. Robust Co-catalytic Performance of Nanodiamonds Loaded on WO3 for the Decomposition of Volatile Organic Compounds under Visible Light , 2016 .
[49] Guo Xinxin,et al. A review of metal oxynitrides for photocatalysis , 2016 .
[50] Yadong Li,et al. Synergetic Integration of Cu1.94S-ZnxCd1-xS Heteronanorods for Enhanced Visible-Light-Driven Photocatalytic Hydrogen Production. , 2016, Journal of the American Chemical Society.
[51] Chengxin Wang,et al. Nanodiamond‐Embedded p‐Type Copper(I) Oxide Nanocrystals for Broad‐Spectrum Photocatalytic Hydrogen Evolution , 2016 .
[52] Liejin Guo,et al. Twin-induced one-dimensional homojunctions yield high quantum efficiency for solar hydrogen generation , 2013, Nature Communications.
[53] J. Yates,et al. Band bending in semiconductors: chemical and physical consequences at surfaces and interfaces. , 2012, Chemical reviews.
[54] Liejin Guo,et al. Twins in Cd1−xZnxS solid solution: Highly efficient photocatalyst for hydrogen generation from water , 2011 .
[55] K. Domen,et al. Zr-doped BaTaO2N photocatalyst modified with Na–Pt cocatalyst for efficient hydrogen evolution and Z-scheme water splitting , 2023, EES Catalysis.
[56] K. Domen,et al. Heterogeneous doping of visible-light-responsive Y2Ti2O5S2 for enhanced hydrogen evolution , 2022, Journal of Materials Chemistry A.
[57] B. Chai,et al. Unveiling the role of Mn-Cd-S solid solution and MnS in MnxCd1-xS photocatalysts and decorating with CoP nanoplates for enhanced photocatalytic H2 evolution , 2022 .