Oxygen vacancies and p-n heterojunction modified BiOBr for enhancing donor density and separation efficiency under visible-light irradiation
暂无分享,去创建一个
[1] Zhifeng Liu,et al. Enhanced PEC performance of hematite photoanode coupled with bimetallic oxyhydroxide NiFeOOH through a simple electroless method , 2020, Applied Catalysis B: Environmental.
[2] P. Hu,et al. WO3/Cu2O heterojunction for the efficient photoelectrochemical property without external bias , 2020 .
[3] Guoqiang Tan,et al. Electric fields and local magnetic field enhance Ag-BiVO4-MnOx photoelectrochemical and photocatalytic performance , 2020 .
[4] Zhongyuan Zhou,et al. Tin and Oxygen-Vacancy Co-doping into Hematite Photoanode for Improved Photoelectrochemical Performances , 2020, Nanoscale Research Letters.
[5] Wei Zhao,et al. Enhanced piezoelectric-effect-assisted photoelectrochemical performance in ZnO modified with dual cocatalysts , 2020 .
[6] Longjun Xu,et al. Boosting the photocatalytic activity of BiOX under solar light via selective crystal facet growth , 2020, Journal of Materials Chemistry C.
[7] Jihuai Wu,et al. Visible-light-driven HSr2Nb3O10/CdS heterojunctions for high hydrogen evolution activity , 2020 .
[8] Zhong Lin Wang,et al. Unconventional Route to Oxygen Vacancies-Enabled Highly Efficient Electron Extraction and Transport in Perovskite Solar Cells. , 2020, Angewandte Chemie.
[9] Jihuai Wu,et al. Facile synthesis of three-dimensional WO3-x/Bi/BiOCl hierarchical heterostructures with broad spectrum driven photocatalytic activity , 2019, Journal of Alloys and Compounds.
[10] Songsong Li,et al. Novel photocatalyst incorporating Ni-Co layered double hydroxides with P-doped CdS for enhancing photocatalytic activity towards hydrogen evolution , 2019, Applied Catalysis B: Environmental.
[11] Qizhao Wang,et al. High-performance photoelectrochemical water splitting of BiVO4@Co-MIm prepared by a facile in-situ deposition method , 2019, Chemical Engineering Journal.
[12] Yifan Zheng,et al. Biomass Assisted Synthesis of 3D Hierarchical Structure BiOX(X Cl, Br)-(CMC) with Enhanced Photocatalytic Activity. , 2019, Journal of Nanoscience and Nanotechnology.
[13] Mingyang Chen,et al. The Electronic Structure and Optical Properties of Two‐Dimensional BiOX–YO3 (X = Cl, Br, and I; Y = Mo, W) Heterostructures , 2019, physica status solidi (b).
[14] Bin Yang,et al. Improvement of the Photoelectrochemical Performance of TiO2 Nanorod Array by PEDOT and Oxygen Vacancy Co-Modification , 2019, Catalysts.
[15] Yajie Bai,et al. In-situ approach to fabricate BiOI photocathode with oxygen vacancies: Understanding the N2 reduced behavior in photoelectrochemical system , 2019, Chemical Engineering Journal.
[16] 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.
[17] Xiaoming Yang,et al. Fabrication of UV–Vis-NIR-driven photocatalysts Ag/Bi/BiOCl0.8Br0.2 with high catalytic activity , 2019, Separation and Purification Technology.
[18] Shuquan Huang,et al. Conjugated conducting polymers PANI decorated Bi12O17Cl2 photocatalyst with extended light response range and enhanced photoactivity , 2019, Applied Surface Science.
[19] Zhanfeng Zheng,et al. Theoretical insights into photo-induced electron transfer at BiOX (X = F, Cl, Br, I) (001) surfaces and interfaces. , 2019, Physical chemistry chemical physics : PCCP.
[20] 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 .
[21] Zhifeng Liu,et al. Dual-Axial Gradient Doping (Zr and Sn) on Hematite for Promoting Charge Separation in Photoelectrochemical Water Splitting. , 2018, ChemSusChem.
[22] Zhao‐Qing Liu,et al. Enhanced plasmon-driven photoelectrocatalytic methanol oxidation on Au decorated α-Fe2O3 nanotube arrays. , 2018, Chemical communications.
[23] Zhifeng Liu,et al. Efficient photoelectrochemical water splitting of CaBi6O10 decorated with Cu2O and NiOOH for improved photogenerated carriers , 2018, International Journal of Hydrogen Energy.
[24] Mu Xiao,et al. New Iron‐Cobalt Oxide Catalysts Promoting BiVO4 Films for Photoelectrochemical Water Splitting , 2018, Advanced Functional Materials.
[25] Xiang-Feng Wu,et al. In-situ synthesis of novel p-n heterojunction of Ag2CrO4-Bi2Sn2O7 hybrids for visible-light-driven photocatalysis , 2018 .
[26] Jihuai Wu,et al. Solvothermal fabrication of La-WO3/SrTiO3 heterojunction with high photocatalytic performance under visible light irradiation , 2018 .
[27] Li Wang,et al. Multi-layer monoclinic BiVO4 with oxygen vacancies and V4+ species for highly efficient visible-light photoelectrochemical applications , 2018 .
[28] Jerry J. Wu,et al. Fabrication of hierarchical bismuth oxyhalides (BiOX, X = Cl, Br, I) materials and application of photocatalytic hydrogen production from water splitting , 2017, Catalysis Today.
[29] Yi Du,et al. Band-gap engineering of BiOCl with oxygen vacancies for efficient photooxidation properties under visible-light irradiation , 2017 .
[30] Yihe Zhang,et al. Macroscopic Polarization Enhancement Promoting Photo- and Piezoelectric-Induced Charge Separation and Molecular Oxygen Activation. , 2017, Angewandte Chemie.
[31] Songcan Wang,et al. An Electrochemically Treated BiVO4 Photoanode for Efficient Photoelectrochemical Water Splitting. , 2017, Angewandte Chemie.
[32] Jing Cao,et al. Transforming type-I to type-II heterostructure photocatalyst via energy band engineering: A case study of I-BiOCl/I-BiOBr , 2017 .
[33] N. Wu,et al. Effects of Defects on Photocatalytic Activity of Hydrogen-Treated Titanium Oxide Nanobelts , 2017 .
[34] L. Shan,et al. Photoelectrochemical (PEC) water splitting of BiOI{001} nanosheets synthesized by a simple chemical transformation , 2016 .
[35] Hongbing Ji,et al. Boosting the photocatalytic performance of (001) BiOI: enhancing donor density and separation efficiency of photogenerated electrons and holes. , 2016, Chemical communications.
[36] Zhigang Chen,et al. Bidirectional acceleration of carrier separation spatially via N-CQDs/atomically-thin BiOI nanosheets nanojunctions for manipulating active species in a photocatalytic process , 2016 .
[37] Zebao Rui,et al. Enhancing the Photocatalytic Performance of BiOClxI1−x by Introducing Surface Disorders and Bi Nanoparticles as Cocatalyst , 2015 .
[38] J. Jia,et al. Photocatalytic degradation and electricity generation in a rotating disk photoelectrochemical cell over hierarchical structured BiOBr film , 2015 .
[39] Yihe Zhang,et al. Fabrication of multiple heterojunctions with tunable visible-light-active photocatalytic reactivity in BiOBr-BiOI full-range composites based on microstructure modulation and band structures. , 2015, ACS applied materials & interfaces.
[40] K. Zhao,et al. Sustainable molecular oxygen activation with oxygen vacancies on the {001} facets of BiOCl nanosheets under solar light. , 2014, Nanoscale.
[41] Wei‐De Zhang,et al. Photoelectrochemical property of the BiOBr-BiOI/ZnO heterostructures with tunable bandgap , 2014, Journal of Solid State Electrochemistry.
[42] Ping Liu,et al. Facile in situ synthesis of a Bi/BiOCl nanocomposite with high photocatalytic activity , 2013 .
[43] Falong Jia,et al. Facile construction of low-cost flexible solar cells with p-type BiOI nanoflake arrays fabricated via oriented attachment , 2013 .
[44] Jing Cao,et al. Thermodecomposition synthesis of WO3/H2WO4 heterostructures with enhanced visible light photocatalytic properties , 2012 .
[45] Wen Lai Huang,et al. DFT calculations on the electronic structures of BiOX (X = F, Cl, Br, I) photocatalysts with and without semicore Bi 5d states , 2009, J. Comput. Chem..
[46] Xinmiao Liang,et al. Mechanism and kinetics model of degradation of synthetic dyes by UV–vis/H2O2/Ferrioxalate complexes , 2007 .
[47] C. Zheng,et al. Study of the electronic structure and photocatalytic activity of the BiOCl photocatalyst , 2006 .
[48] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.