A yolk–shell Bi@void@SnO2 photocatalyst with enhanced tetracycline degradation
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Xiang-Feng Wu | Junzhang Su | Jiarui Zhang | Xiao-Wei Nian | Xiu-Guo Sun | Yunning Jia | Jialu Shang | Lianying Song | Yi-jin Wang | Chenyu Zhang
[1] Zhifeng Liu,et al. Synergistic enhancement of charge management and surface reaction kinetics by spatially separated cocatalysts and p-n heterojunctions in Pt/CuWO4/Co3O4 photoanode , 2019, Chemical Engineering Journal.
[2] Xifei Li,et al. Hybrid 0D/2D edamame shaped ZnIn2S4 photoanode modified by Co-Pi and Pt for charge management towards efficient photoelectrochemical water splitting , 2019, Applied Catalysis B: Environmental.
[3] Li‐Song Sun,et al. Full spectrum responsive In2.77S4/WS2 p-n heterojunction as an efficient photocatalyst for Cr(VI) reduction and tetracycline oxidation , 2019, Applied Surface Science.
[4] Zhao‐Qing Liu,et al. Ultrathin CdS shell-sensitized hollow S-doped CeO2 spheres for efficient visible-light photocatalysis , 2019, Catalysis Science & Technology.
[5] Yi Zhong,et al. Preparation of a p-n heterojunction 2D BiOI nanosheet/1DBiPO4 nanorod composite electrode for enhanced visible light photoelectrocatalysis , 2019, Chinese Journal of Catalysis.
[6] Zhifeng Liu,et al. Enhancing light harvesting and charge separation of Cu2O photocathodes with spatially separated noble-metal cocatalysts towards highly efficient water splitting , 2018 .
[7] Gaoke Zhang,et al. Novel Three-Dimensional Flowerlike BiOBr/Bi2SiO5 p–n Heterostructured Nanocomposite for Degradation of Tetracycline: Enhanced Visible Light Photocatalytic Activity and Mechanism , 2018, ACS Sustainable Chemistry & Engineering.
[8] Hang Sun,et al. Au@TiO2 yolk-shell nanostructures for enhanced performance in both photoelectric and photocatalytic solar conversion , 2018 .
[9] Xiang-Feng Wu,et al. In-situ synthesis of novel p-n heterojunction of Ag2CrO4-Bi2Sn2O7 hybrids for visible-light-driven photocatalysis , 2018 .
[10] Dongyun Chen,et al. SnS2/SnO2 heterostructured nanosheet arrays grown on carbon cloth for efficient photocatalytic reduction of Cr(VI). , 2018, Journal of colloid and interface science.
[11] Runwei Wang,et al. Synthesis of novel Au@Void@Nb2O5 core-shell nanocomposites with enhanced photocatalytic activity. , 2018, Dalton transactions.
[12] L. Jun,et al. Alkali-free synthesis of a novel heterostructured CeO 2 -TiO 2 nanocomposite with high performance to reduce Cr(VI) under visible light , 2018 .
[13] Huang-Hao Yang,et al. Yolk–Shell Nanostructures: Design, Synthesis, and Biomedical Applications , 2018, Advanced materials.
[14] Ze-Hua Zhao,et al. Zn₂SnO₄-Reduced Graphene Oxide Nanohybrids for Visible-Light-Driven Photocatalysis. , 2018, Journal of nanoscience and nanotechnology.
[15] Xiang-Feng Wu,et al. Synthesis of SnS2/few layer boron nitride nanosheets composites as a novel material for visible-light-driven photocatalysis , 2017 .
[16] F. Sun,et al. Photochemical fabrication of SnO2 dense layers on reduced graphene oxide sheets for application in photocatalytic degradation of p-Nitrophenol , 2017 .
[17] Wei Zhang,et al. Bi metal sphere/graphene oxide nanohybrids with enhanced direct plasmonic photocatalysis , 2017 .
[18] W. Ho,et al. Controllable Synthesis of Core–Shell Bi@Amorphous Bi2O3 Nanospheres with Tunable Optical and Photocatalytic Activity for NO Removal , 2017 .
[19] Ting Fei,et al. Construction of SnO2/graphene-like g-C3N4 with enhanced visible light photocatalytic activity , 2017 .
[20] Ze-Hua Zhao,et al. Preparation and characterization of Ag2CrO4/few layer boron nitride hybrids for visible-light-driven photocatalysis , 2017, Journal of Nanoparticle Research.
[21] Xiang-Feng Wu,et al. One-step hydrothermal synthesis of In2.77S4 nanosheets with efficient photocatalytic activity under visible light , 2017 .
[22] Songsong Li,et al. Novel AuPd bimetallic alloy decorated 2D BiVO4 nanosheets with enhanced photocatalytic performance under visible light irradiation , 2017 .
[23] N. B. Pavzderin,et al. Impedance spectroscopy of cell with Pt electrodes on oxygen-conducting material with mayenite-related structure , 2017, Ionics.
[24] Y. Hsu,et al. Au@Cu7S4 yolk@shell nanocrystal-decorated TiO2 nanowires as an all-day-active photocatalyst for environmental purification , 2017 .
[25] Jinlong Zhang,et al. Yolk-shell structured Fe3O4@void@TiO2 as a photo-Fenton-like catalyst for the extremely efficient elimination of tetracycline , 2017 .
[26] Ying Dai,et al. Synthesis of Mn-doped ZnS microspheres with enhanced visible light photocatalytic activity , 2017 .
[27] W. Ho,et al. Plasmonic Bi/ZnWO4 Microspheres with Improved Photocatalytic Activity on NO Removal under Visible Light , 2016 .
[28] S. Yang,et al. Design of Enhanced Catalysts by Coupling of Noble Metals (Au,Ag) with Semiconductor SnO2 for Catalytic Reduction of 4‐Nitrophenol , 2016 .
[29] Shashikant B. Thombre,et al. A comprehensive review on recent material development of passive direct methanol fuel cell , 2016, Ionics.
[30] K. Shankar,et al. Interfacial band alignment for photocatalytic charge separation in TiO2 nanotube arrays coated with CuPt nanoparticles. , 2015, Physical chemistry chemical physics : PCCP.
[31] W. Ho,et al. Noble Metal-Like Behavior of Plasmonic Bi Particles as a Cocatalyst Deposited on (BiO)2CO3 Microspheres for Efficient Visible Light Photocatalysis , 2014 .
[32] Zhongbiao Wu,et al. A semimetal bismuth element as a direct plasmonic photocatalyst. , 2014, Chemical communications.
[33] Ting Zhang,et al. Synthesis of small yolk–shell Fe3O4@TiO2 nanoparticles with controllable thickness as recyclable photocatalysts , 2014 .
[34] Gongxuan Lu,et al. Direct conversion of Bi nanospheres into 3D flower-like BiOBr nanoarchitectures with enhanced photocatalytic properties , 2014 .
[35] Ying Zhang,et al. Novel magnetically separable AgCl/iron oxide composites with enhanced photocatalytic activity driven by visible light , 2013 .