One-Step Fabrication of the ZnO/g-C3N4 Composite for Visible Light-Responsive Photocatalytic Degradation of Bisphenol E in Aqueous Solution
暂无分享,去创建一个
[1] T. Wen,et al. Molybdenum (VI)‐oxo Clusters Incorporation Activates g‐C3N4 with Simultaneously Regulating Charge Transfer and Reaction Centers for Boosting Photocatalytic Performance , 2022, Advanced Functional Materials.
[2] Xiangke Wang,et al. Metal-organic framework nanocrystal-derived hollow porous materials: Synthetic strategies and emerging applications , 2022, Innovation (Cambridge (Mass.)).
[3] Qinfang Zhang,et al. Fabrication of 1d/2d Y-Doped Ceo2/Znin2s4 Z-Scheme Photocatalyst for Enhanced Photocatalytic H2 Evolution , 2022, SSRN Electronic Journal.
[4] Han Liu,et al. Application of MOFs and COFs for photocatalysis in CO2 reduction, H2 generation, and environmental treatment , 2022, EnergyChem.
[5] P. Kumbhakar,et al. Photon and vibration synergism on planar defects induced 2D-graphitic carbon nitride for ultrafast remediation of dyes and antibiotic ampicillin , 2022, Journal of Materials Science.
[6] S. Kaneco,et al. Ag-modified g-C3N4 with enhanced activity for the photocatalytic reduction of hexavalent chromium in the presence of EDTA under ultraviolet irradiation , 2022, Environmental technology.
[7] S. Kaneco,et al. Dual Z-scheme heterojunction g-C3N4/Ag3PO4/AgBr photocatalyst with enhanced visible-light photocatalytic activity , 2022, Ceramics International.
[8] F. J. Maldonado-Hódar,et al. One-Pot Thermal Synthesis of g-C3N4/ZnO Composites for the Degradation of 5-Fluoruracil Cytostatic Drug under UV-LED Irradiation , 2022, Nanomaterials.
[9] Yue Zhang,et al. g-C3N4: Properties, Pore Modifications, and Photocatalytic Applications , 2021, Nanomaterials.
[10] V. Sharma,et al. Ferrate(VI) oxidation of bisphenol E-Kinetics, removal performance, and dihydroxylation mechanism. , 2021, Water research.
[11] M. Sakar,et al. Insights into the mechanism of ZnO/g–C3N4 nanocomposites toward photocatalytic degradation of multiple organic dyes , 2021, Journal of Materials Science: Materials in Electronics.
[12] Tao Lé,et al. A 2D/3D g-C3N4/ZnO heterojunction enhanced visible-light driven photocatalytic activity for sulfonamides degradation , 2021, Ceramics International.
[13] Zhengyi Zhang,et al. Synthesis and photocatalytic activity of g-C3N4/ZnO composite microspheres under visible light exposure , 2021, Ceramics International.
[14] S. Ramakrishna,et al. Enhanced photocatalytic activity of ZnO/g-C3N4 nanofibers constituting carbonaceous species under simulated sunlight for organic dye removal , 2021 .
[15] C. Subrahmanyam,et al. Visible light-induced catalytic abatement of 4-nitrophenol and Rhodamine B using ZnO/g-C3N4 catalyst , 2021, Journal of Chemical Sciences.
[16] A. Benlhachemi,et al. Electrochemical degradation of Bisphenol A using electrodeposited SrHPO4 thin films , 2021, Nanotechnology for Environmental Engineering.
[17] B. Fang,et al. Emerging polymeric carbon nitride Z-scheme systems for photocatalysis , 2021 .
[18] A. Yousuf,et al. Physicochemical, spectral, molecular docking and ADMET studies of Bisphenol analogues; A computational approach , 2021, Informatics in Medicine Unlocked.
[19] K. Hu,et al. Facile Synthesis of Porous ZnO Nanoparticles Efficient for Photocatalytic Degradation of Biomass-Derived Bisphenol A Under Simulated Sunlight Irradiation , 2021, Frontiers in Bioengineering and Biotechnology.
[20] A. Bansal,et al. Synthesis of g-C3N4/ZnO nanocomposite for photocatalytic degradation of a refractory organic endocrine disrupter , 2020 .
[21] R. Landers,et al. Visible light-driven ZnO/g-C3N4/carbon xerogel ternary photocatalyst with enhanced activity for 4-chlorophenol degradation , 2020 .
[22] C. Tiwary,et al. Photocatalytic dye degradation under sunlight irradiation using cerium ion adsorbed two-dimensional graphitic carbon nitride , 2020 .
[23] K. Ramamurthi,et al. Synergetic effect of g-C3N4/ZnO binary nanocomposites heterojunction on improving charge carrier separation through 2D/1D nanostructures for effective photocatalytic activity under the sunlight irradiation , 2020 .
[24] M. Ibrahim,et al. Effect of source material of g-C3N4 on the photocatalytic activity of ZnO/g-C3N4 thin film coated on stainless steel mesh substrate , 2020 .
[25] R. Guo,et al. Biodegradation of bisphenol compounds in the surface water of Taihu Lake and the effect of humic acids. , 2020, The Science of the total environment.
[26] M. Bu,et al. Preparation of heterostructure g-C3N4/ZnO nanorods for high photocatalytic activity on different pollutants (MB, RhB, Cr(VI) and eosin) , 2020 .
[27] A. Sharma,et al. ZnO-Modified g-C3N4: A Potential Photocatalyst for Environmental Application , 2020, ACS omega.
[28] Lijun Yang,et al. Constructing mesoporous g-C3N4/ZnO nanosheets catalyst for enhanced visible-light driven photocatalytic activity , 2020 .
[29] M. Ismael. The photocatalytic performance of the ZnO/g-C3N4 composite photocatalyst toward degradation of organic pollutants and its inactivity toward hydrogen evolution: The influence of light irradiation and charge transfer , 2020 .
[30] Dandan Wang,et al. Photocatalytic Performance and Mechanistic Research of ZnO/g-C3N4 on Degradation of Methyl Orange , 2019, ACS omega.
[31] J. Pan,et al. Revisiting structural and photocatalytic properties of g-C3N4/TiO2: Is surface modification of TiO2 by calcination with urea an effective route to “solar” photocatalyst? , 2019, Catalysis Today.
[32] Alexander Nti Kani,et al. In-situ growth of ZnO globular on g-C3N4 to fabrication binary heterojunctions and their photocatalytic degradation activity on tetracyclines , 2019, Solid State Sciences.
[33] Changsheng Su,et al. In-Situ Fabrication of g-C3N4/ZnO Nanocomposites for Photocatalytic Degradation of Methylene Blue: Synthesis Procedure Does Matter , 2019, Nanomaterials.
[34] L. Balan,et al. Growth of ZnO Nanorods on Graphitic Carbon Nitride gCN Sheets for the Preparation of Photocatalysts with High Visible‐Light Activity , 2018, ChemCatChem.
[35] R. Sarkar,et al. In-situ synthesis of rGO-ZnO nanocomposite for demonstration of sunlight driven enhanced photocatalytic and self-cleaning of organic dyes and tea stains of cotton fabrics. , 2018, Journal of hazardous materials.
[36] Ki-Hyun Kim,et al. Photocatalytic degradation of bisphenol A in aqueous media: A review. , 2018, Journal of environmental management.
[37] Jiaguo Yu,et al. g‐C3N4‐Based Heterostructured Photocatalysts , 2018 .
[38] Chuanyi Wang,et al. Facile synthesis of ZnO/g-C 3 N 4 composites with honeycomb-like structure by H 2 bubble templates and their enhanced visible light photocatalytic performance , 2017 .
[39] W. Wei,et al. Core-shell g-C3N4@ZnO composites as photoanodes with double synergistic effects for enhanced visible-light photoelectrocatalytic activities , 2017 .
[40] K. Ravichandran,et al. Cost-effective fabrication of ZnO/g-C3N4 composite thin films for enhanced photocatalytic activity against three different dyes (MB, MG and RhB) , 2017 .
[41] S. Kaneco,et al. Photocatalytic Decolorization of Dye with Self-Dye-Sensitization under Fluorescent Light Irradiation , 2017 .
[42] Chengwu Yang,et al. Two-dimensional porous sheet-like carbon-doped ZnO/g-C3N4 nanocomposite with high visible-light photocatalytic performance , 2017 .
[43] Caroline Sunyong Lee,et al. Ultra-thin coating of g-C3N4 on an aligned ZnO nanorod film for rapid charge separation and improved photodegradation performance , 2016 .
[44] Y. Lei,et al. Chemical degradation of bisphenol A diglycidyl ether/methyl tetrahydrophthalic anhydride networks by p-Toluenesulfonic-acetic anhydride , 2016 .
[45] Surya Prasad Adhikari,et al. Deposition of ZnO flowers on the surface of g-C3N4 sheets via hydrothermal process , 2015 .
[46] T. Peng,et al. Enhanced photocatalytic activity of g-C3N4 for selective CO2 reduction to CH3OH via facile coupling of ZnO: a direct Z-scheme mechanism , 2015 .
[47] H. Xing,et al. Preparation of g-C3N4/ZnO composites and their enhanced photocatalytic activity , 2015 .
[48] Yongfa Zhu,et al. Preparation of visible light-driven g-C₃N₄@ZnO hybrid photocatalyst via mechanochemistry. , 2014, Physical chemistry chemical physics : PCCP.
[49] Yunpei Zhu,et al. Carbon-Doped ZnO Hybridized Homogeneously with Graphitic Carbon Nitride Nanocomposites for Photocatalysis , 2014 .
[50] Xiuyan Li,et al. Synergistic effect of efficient adsorption g-C3N4/ZnO composite for photocatalytic property , 2014 .
[51] W. Liu,et al. Significantly enhanced visible-light photocatalytic activity of g-C3N4 via ZnO modification and the mechanism study , 2013 .
[52] Chunxiang Xu,et al. Facile synthesis of g-C3N4/ZnO composite with enhanced visible light photooxidation and photoreduction properties , 2012 .
[53] Wei Chen,et al. Simple pyrolysis of urea into graphitic carbon nitride with recyclable adsorption and photocatalytic activity , 2011 .
[54] Rui Shi,et al. Enhancement of photocurrent and photocatalytic activity of ZnO hybridized with graphite-like C3N4 , 2011 .
[55] Feng Wu,et al. Aqueous photochemistry of bisphenol E in the presence of β-cyclodextrin , 2011 .
[56] Jinhua Ye,et al. Hydrogen production using zinc-doped carbon nitride catalyst irradiated with visible light , 2011, Science and technology of advanced materials.
[57] Jooho Moon,et al. ZnO nanoparticles with controlled shapes and sizes prepared using a simple polyol synthesis , 2008 .
[58] P. Savage,et al. Bisphenol E Decomposition in High-Temperature Water , 2006 .
[59] M. A. Rahman,et al. Optimization of solar photocatalytic degradation conditions of bisphenol A in water using titanium dioxide , 2004 .