Construction and performance of a novel CuBi2O4/In2O3 Z-scheme heterojunction photocatalyst
暂无分享,去创建一个
Longjun Xu | Zao Jiang | Chenglun Liu | Huaren Su | Cimei Fang | Meng Hu
[1] Sinem Çevik,et al. Nature-based nanocomposites for adsorption and visible light photocatalytic degradation of methylene blue dye , 2022, Journal of Cleaner Production.
[2] A. Assani,et al. Recent progress on the synthesis, morphology and photocatalytic dye degradation of BiVO4 photocatalysts: A review , 2022, Catalysis Reviews.
[3] Wanqing Zhang,et al. Controllable synthesized step-scheme heterojunction of CuBi2O4 decorated WO3 plates for visible-light-driven CO2 reduction , 2022, Nano Research.
[4] W. Kang,et al. A Flower-like In2O3 Catalyst Derived via Metal–Organic Frameworks for Photocatalytic Applications , 2022, International journal of molecular sciences.
[5] N. Talreja,et al. A facile synthesis of CuBi2O4 hierarchical dumbbell-shaped nanorod cluster: a promising photocatalyst for the degradation of caffeic acid , 2022, Environmental Science and Pollution Research.
[6] Shiying Zhang,et al. Efficient interfacial charge transfer of BiOCl-In2O3 step-scheme heterojunction for boosted photocatalytic degradation of ciprofloxacin , 2022, Journal of Materials Science & Technology.
[7] T. Fujita,et al. Preparation of TiO2 photocatalyst microspheres by geopolymer technology for the degradation of tetracycline , 2022, Journal of Cleaner Production.
[8] D. Vo,et al. ZnO-based heterostructures as photocatalysts for hydrogen generation and depollution: a review , 2022, Environmental Chemistry Letters.
[9] Wanqing Zhang,et al. S-scheme heterojunction of CuBi2O4 supported Na doped P25 for enhanced photocatalytic H2 evolution , 2022, International Journal of Hydrogen Energy.
[10] Jiayin Li,et al. Onion-liked carbon-embedded graphitic carbon nitride for enhanced photocatalytic hydrogen evolution and dye degradation , 2022, Applied Catalysis B: Environmental.
[11] Haoran Du,et al. A novel amorphous alloy photocatalyst (NiB/In2O3) composite for sunlight-induced CO2 hydrogenation to HCOOH , 2021 .
[12] N. Nesnas,et al. Ferrate(VI) pre-treatment and subsequent electrochemical advanced oxidation processes: Recycling iron for enhancing oxidation of organic pollutants , 2021, Chemical Engineering Journal.
[13] L. Qin,et al. Shape-controlled synthesis of CuS as a Fenton-like photocatalyst with high catalytic performance and stability , 2021, Journal of Alloys and Compounds.
[14] Jianguo Zhou,et al. Construction of hierarchical CuBi2O4/Bi/BiOBr ternary heterojunction with Z-scheme mechanism for enhanced broad-spectrum photocatalytic activity , 2021 .
[15] Jianqiang Yu,et al. Influence of a hole inversion layer at the In2O3 / BiVO4 interface on the high-efficiency photocatalytic performance , 2021 .
[16] Caijin Huang,et al. Tunable charge transfer efficiency in HxMoO3@ZnIn2S4 hierarchical direct Z-scheme heterojunction toward efficient visible-light-driven hydrogen evolution , 2021 .
[17] Lei Wang,et al. Fabrication of hollow type-II and Z-scheme In2O3/TiO2/Cu2O photocatalyst based on In-MIL-68 for efficient catalytic degradation of tetracycline , 2021 .
[18] D. Leung,et al. Metal-organic framework-derived rodlike AgCl/Ag/In2O3: A plasmonic Z-scheme visible light photocatalyst , 2021, Chemical Engineering Journal.
[19] Chao Yao,et al. Core-shell ZIF-8@MIL-68(In) derived ZnO nanoparticles-embedded In2O3 hollow tubular with oxygen vacancy for photocatalytic degradation of antibiotic pollutant. , 2021, Journal of hazardous materials.
[20] Xun Xu,et al. In2O3 microspheres decorated with ZnIn2S4 nanosheets as core-shell hybrids for boosting visible-light photodegradation of organic dyes , 2021, Materials Research Express.
[21] Xiaofang Zhang,et al. Construction of Ag/ CuBi2O4/ Ag2MoO4 composites for enhanced degradation of methylene blue and the proposed possible photocatalytic mechanism , 2021 .
[22] S. K. Pasha,et al. Construction of magnetically recoverable ZnS-WO3-CoFe2O4 nanohybrid enriched photocatalyst for the degradation of MB dye under visible light irradiation. , 2021, Chemosphere.
[23] P. Thangadurai,et al. Transition metal ion-doped In2O3 nanocubes: investigation of their photocatalytic degradation activity under sunlight , 2020, Nanoscale advances.
[24] Xingcan Shen,et al. g-C3N4/CoNiFe-LDH Z-Scheme Heterojunction for efficient CO2 photoreduction and MB dye photodegradation , 2021, Catalysis Science & Technology.
[25] Hua-ming Li,et al. Construction 3D rod-like Bi3.64Mo0.36O6.55/CuBi2O4 photocatalyst for enhanced photocatalytic activity via a photo-Fenton-like Cu2+/Cu+ redox cycle , 2021 .
[26] Qingxiang Ma,et al. Regular octahedron Cu-MOFs modifies Mn0.05Cd0.95S nanoparticles to form a S-scheme heterojunction for photocatalytic hydrogen evolution , 2020 .
[27] Xiaofang Zhang,et al. Design of a novel CuBi2O4/CdMoO4 heterojunctions with nano-microsphere structure: Synthesis and photocatalytic degradation mechanism , 2020 .
[28] Jiang Wu,et al. Self-grown oxygen vacancies-rich CeO2/BiOBr Z-scheme heterojunction decorated with rGO as charge transfer channel for enhanced photocatalytic oxidation of elemental mercury. , 2020, Journal of colloid and interface science.
[29] Changchang Ma,et al. Fabrication of Bi2WO6/In2O3 photocatalysts with efficient photocatalytic performance for the degradation of organic pollutants: Insight into the role of oxygen vacancy and heterojunction , 2020 .
[30] Rencheng Jin,et al. CTAB-assisted solvothermal construction of hierarchical Bi2MoO6/Bi5O7Br with improved photocatalytic performances , 2020 .
[31] K. Fang,et al. Z-scheme In2O3/WO3 heterogeneous photocatalysts with enhanced visible-light-driven photocatalytic activity toward degradation of organic dyes , 2020, Journal of Materials Science.
[32] Lixi Zeng,et al. Insight into combining visible-light photocatalysis with transformation of dual metal ions for enhancing peroxymonosulfate activation over dibismuth copper oxide , 2020, Chemical Engineering Journal.
[33] Xiaoling Li,et al. Construction of CuBi2O4/MnO2 composite as Z-scheme photoactivator of peroxymonosulfate for degradation of antibiotics , 2020 .
[34] Srabanti Ghosh,et al. Novel ZnO/CuBi2O4 heterostructures for persulfate-assisted photocatalytic degradation of dye contaminants under visible light , 2020 .
[35] S. S. Dhar,et al. Construction of hierarchical MnMoO4/NiFe2O4 nanocomposite: Highly efficient visible light driven photocatalyst in the degradation of different polluting dyes in aqueous medium , 2020 .
[36] Xue Lin,et al. Fabrication of a ternary heterostructure BiVO4 quantum dots/C60/g-C3N4 photocatalyst with enhanced photocatalytic activity , 2020 .
[37] Hui Zhu,et al. Co3O4 imbedded g-C3N4 heterojunction photocatalysts for visible-light-driven hydrogen evolution , 2020 .
[38] Hongbing Ji,et al. Hybridization of CuO with Bi2MoO6 nanosheets as a surface multifunctional photocatalyst for toluene oxidation under solar irradiation. , 2019, ACS applied materials & interfaces.
[39] J. Crittenden,et al. Fabrication of the flower-flake-like CuBi2O4/Bi2WO6 heterostructure as efficient visible-light driven photocatalysts: Performance, kinetics and mechanism insight , 2019, Applied Surface Science.
[40] Paresh Chandra Ray,et al. Effects of calcination temperature on crystal structure and photocatalytic activity of CaIn2O4/ In2O3 composites , 2019 .
[41] Shaoming Huang,et al. Ag and N-doped graphene quantum dots co-modified CuBi2O4 submicron rod photocathodes with enhanced photoelectrochemical activity , 2019, Applications of Surface Science.
[42] Guoqiang Tan,et al. Photocatalytic properties of the g-C3N4/{010} facets BiVO4 interface Z-Scheme photocatalysts induced by BiVO4 surface heterojunction , 2018, Applied Catalysis B: Environmental.
[43] Seong‐Hyeon Hong,et al. Gas sensing properties of p-type CuBi2O4 porous nanoparticulate thin film prepared by solution process based on metal-organic decomposition , 2018, Sensors and Actuators B: Chemical.
[44] A. Habibi-Yangjeh,et al. Facile fabrication of novel ZnO/CoMoO 4 nanocomposites: Highly efficient visible-light-responsive photocatalysts in degradations of different contaminants , 2018, Journal of Photochemistry and Photobiology A: Chemistry.
[45] W. Guan,et al. Study on highly enhanced photocatalytic tetracycline degradation of type Ⅱ AgI/CuBi2O4 and Z-scheme AgBr/CuBi2O4 heterojunction photocatalysts. , 2018, Journal of hazardous materials.
[46] Danjun Wang,et al. Ag/Bi 2 MoO 6-x with enhanced visible-light-responsive photocatalytic activities via the synergistic effect of surface oxygen vacancies and surface plasmon , 2018 .
[47] 郭永福,et al. Bi 2 WO 6 /ZnO:一种在可见光下具有优良光催化性能的花状新型复合材料 , 2018 .
[48] M. Bououdina,et al. Hydrothermal synthesis of Ga-doped In2O3 nanostructure and its structural, optical and photocatalytic properties , 2017 .
[49] Huibo Wang,et al. Fabrication of a CuBi2O4/g-C3N4 p–n heterojunction with enhanced visible light photocatalytic efficiency toward tetracycline degradation , 2017 .
[50] D. Caputo,et al. Me-ZSM-5 monolith foams for the NH3-SCR of NO , 2017 .
[51] S. Yuan,et al. In situ synthesis of Z-scheme Ag 3 PO 4 /CuBi 2 O 4 photocatalysts and enhanced photocatalytic performance for the degradation of tetracycline under visible light irradiation , 2017 .
[52] Minglei Cao,et al. Hierarchical CuBi2O4 microspheres as lithium-ion battery anodes with superior high-temperature electrochemical performance , 2017 .
[53] L. Kong,et al. In 2 O 3 /Bi 2 Sn 2 O 7 heterostructured nanoparticles with enhanced photocatalytic activity , 2016 .
[54] Peter Bogdanoff,et al. Comprehensive Evaluation of CuBi2O4 as a Photocathode Material for Photoelectrochemical Water Splitting , 2016 .
[55] T. Bein,et al. Spray Deposition of Titania Films with Incorporated Crystalline Nanoparticles for All‐Solid‐State Dye‐Sensitized Solar Cells Using P3HT , 2016 .
[56] A. Bekka,et al. Synergetic effects of Sr-doped CuBi2O4 catalyst with enhanced photoactivity under UVA– light irradiation , 2016, Environmental Science and Pollution Research.
[57] Shaomin Liu,et al. Fabrication of α-Fe2O3/In2O3 composite hollow microspheres: A novel hybrid photocatalyst for toluene degradation under visible light. , 2015, Journal of colloid and interface science.
[58] Norah Alhokbany,et al. Radiation Induced Synthesis of In2O3Nanoparticles - Part II: Synthesis of In2O3 Nanoparticles by Thermal Decomposition of Un-irradiated and γ-irradiated Indium Acetylacetonate , 2015 .
[59] Yongqing Zhang,et al. Enhancement of the visible light photocatalytic activity of heterojunction In2O3/BiVO4 composites , 2015 .
[60] Say Chye Joachim Loo,et al. Solar-to-fuels conversion over In2O3/g-C3N4 hybrid photocatalysts , 2014 .
[61] S. Manorama,et al. Hierarchical In(OH)3 as a Precursor to Mesoporous In2O3 Nanocubes: A Facile Synthesis Route, Mechanism of Self-Assembly, and Enhanced Sensing Response toward Hydrogen , 2014 .
[62] P. Chu,et al. Facet cutting and hydrogenation of In(2)O(3) nanowires for enhanced photoelectrochemical water splitting. , 2014, ACS applied materials & interfaces.
[63] M. Nishikawa,et al. Enhanced photocatalytic activity of BiVO4 by co-grafting of metal ions and combining with CuBi2O4 , 2013 .
[64] Jianguo Guan,et al. Heterostructured mesoporous In2O3/Ta2O5 composite photocatalysts for hydrogen evolution: impacts of In2O3 content and calcination temperature. , 2012, Journal of colloid and interface science.
[65] Ying Yu,et al. CuBi2O4 single crystal nanorods prepared by hydrothermal method: Growth mechanism and optical properties , 2011 .
[66] S. Raghu,et al. Chemical or electrochemical techniques, followed by ion exchange, for recycle of textile dye wastewater. , 2007, Journal of hazardous materials.