Solid phase fabrication of Bismuth-rich Bi 3 O 4 Cl x Br 1− x solid solution for enhanced photocatalytic NO removal under visible light
暂无分享,去创建一个
Ping Yang | Haiquan Xie | Pingquan Wang | Liqun Ye | Yang Bai | Z. Fan | P. Wong
[1] S. Yin,et al. Facile preparation of BiOX (X = Cl, Br, I) nanoparticles and up-conversion phosphors/BiOBr composites for efficient degradation of NO gas: Oxygen vacancy effect and near infrared light responsive mechanism , 2017 .
[2] Haiquan Xie,et al. Photocatalytic Mechanism Regulation of Bismuth Oxyhalogen via Changing Atomic Assembly Method. , 2017, ACS applied materials & interfaces.
[3] S. Yin,et al. Novel visible-light-driven Z-scheme Bi12GeO20/g-C3N4 photocatalyst: Oxygen-induced pathway of organic pollutants degradation and proton assisted electron transfer mechanism of Cr(VI) reduction , 2017 .
[4] Yihe Zhang,et al. In situ assembly of BiOI@Bi12O17Cl2 p-n junction: charge induced unique front-lateral surfaces coupling heterostructure with high exposure of BiOI {001} active facets for robust and nonselective photocatalysis , 2016 .
[5] Pingquan Wang,et al. Size-dependent role of gold in g-C3N4/BiOBr/Au system for photocatalytic CO2 reduction and dye degradation , 2016 .
[6] Pingquan Wang,et al. Bismuth-rich Bi4O5X2 (X = Br, and I) nanosheets with dominant {1 0 1} facets exposure for photocatalytic H2 evolution , 2016 .
[7] Ping Yang,et al. Synthesis of 3D BiOBr microspheres for enhanced photocatalytic CO2 reduction , 2016 .
[8] Dan Chen,et al. Facet-Dependent Photocatalytic N2 Fixation of Bismuth-Rich Bi5O7I Nanosheets. , 2016, ACS applied materials & interfaces.
[9] Pingquan Wang,et al. g-C3N4/Bi4O5I2 heterojunction with I3−/I− redox mediator for enhanced photocatalytic CO2 conversion , 2016 .
[10] Xin Wang,et al. Effect of the counter ions on composition and morphology of bismuth oxyhalides and their photocatalytic performance , 2016 .
[11] Yongxiu Li,et al. Synthesis and photocatalytic activity of BiOBr nanosheets with tunable exposed {0 1 0} facets , 2016 .
[12] Haiping Li,et al. Wavelength-dependent differences in photocatalytic performance between BiOBr nanosheets with dominant exposed (0 0 1) and (0 1 0) facets , 2016 .
[13] Haiquan Xie,et al. Thickness-ultrathin and bismuth-rich strategies for BiOBr to enhance photoreduction of CO2 into solar fuels , 2016 .
[14] Ying Yu,et al. Giant Enhancement of Internal Electric Field Boosting Bulk Charge Separation for Photocatalysis , 2016, Advanced materials.
[15] Chao Liu,et al. Facet-dependent photocatalytic reduction of CO2 on BiOI nanosheets , 2016 .
[16] Jiaguo Yu,et al. Microwave-assisted solvothermal synthesis of Bi4O5I2 hierarchical architectures with high photocatalytic performance , 2016 .
[17] 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.
[18] Hanqing Yu,et al. Fabrication of BiOBrxI1−x photocatalysts with tunable visible light catalytic activity by modulating band structures , 2016, Scientific Reports.
[19] Yumin Leng,et al. Synthesis of black ultrathin BiOCl nanosheets for efficient photocatalytic H 2 production under visible light irradiation , 2015 .
[20] Hui Wang,et al. First hydrothermal synthesis of Bi5O7Br and its photocatalytic properties for molecular oxygen activation and RhB degradation , 2015 .
[21] A. Xu,et al. Facile Fabrication of Bi12O17Br2/Bi24O31Br10 Type II Heterostructures with High Visible Photocatalytic Activity , 2015 .
[22] W. Ho,et al. Photocatalytic NO removal on BiOI surface: The change from nonselective oxidation to selective oxidation , 2015 .
[23] J. Shang,et al. Efficient Visible Light Nitrogen Fixation with BiOBr Nanosheets of Oxygen Vacancies on the Exposed {001} Facets. , 2015, Journal of the American Chemical Society.
[24] S. Dou,et al. A dye-sensitized visible light photocatalyst-Bi24O31Cl10 , 2014, Scientific Reports.
[25] Chaozheng He,et al. Shape-dependent photocatalytic activity of Bi5O7I caused by facets synergetic and internal electric field effects , 2014 .
[26] Dae Won Cho,et al. Adsorption/photocatalytic performances of hierarchical flowerlike BiOBrxCl1 x nanostructures for methyl orange, Rhodamine B and methylene blue , 2014 .
[27] Fa‐tang Li,et al. In-situ one-step synthesis of novel BiOCl/Bi24O31Cl10 heterojunctions via self-combustion of ionic liquid with enhanced visible-light photocatalytic activities , 2014 .
[28] J. Nan,et al. Solvothermal synthesis of novel hierarchical Bi4O5I2 nanoflakes with highly visible light photocatalytic performance for the degradation of 4-tert-butylphenol , 2014 .
[29] D. Pradhan,et al. Adsorption/photocatalytic activity and fundamental natures of BiOCl and BiOClxI1−x prepared in water and ethylene glycol environments, and Ag and Au-doping effects , 2014 .
[30] Yi Du,et al. Bismuth Oxybromide with Reasonable Photocatalytic Reduction Activity under Visible Light , 2014 .
[31] Ying Yu,et al. Synthesis and internal electric field dependent photoreactivity of Bi3O4Cl single-crystalline nanosheets with high {001} facet exposure percentages. , 2014, Nanoscale.
[32] T. Peng,et al. Facets coupling of BiOBr-g-C3N4 composite photocatalyst for enhanced visible-light-driven photocatalytic activity , 2013 .
[33] Ying Yu,et al. Highly efficient photocatalytic removal of sodium pentachlorophenate with Bi3O4Br under visible light , 2013 .
[34] J. Nan,et al. Facile microwave synthesis of novel hierarchical Bi24O31Br10 nanoflakes with excellent visible light photocatalytic performance for the degradation of tetracycline hydrochloride , 2013 .
[35] F. Dong,et al. Visible-Light Photocatalytic Removal of NO in Air over BiOX (X = Cl, Br, I) Single-Crystal Nanoplates Prepared at Room Temperature , 2013 .
[36] Hua-ming Li,et al. Improvement of visible light photocatalytic activity over flower-like BiOCl/BiOBr microspheres synthesized by reactable ionic liquids , 2013 .
[37] T. Peng,et al. BiOI thin film via chemical vapor transport: Photocatalytic activity, durability, selectivity and mechanism , 2013 .
[38] T. Peng,et al. Two Different Roles of Metallic Ag on Ag/AgX/BiOX (X = Cl, Br) Visible Light Photocatalysts: Surface Plasmon Resonance and Z-Scheme Bridge , 2012 .
[39] Jing Cao,et al. Chemical etching preparation of BiOI/BiOBr heterostructures with enhanced photocatalytic properties for organic dye removal , 2012 .
[40] Jing Jiang,et al. Synthesis and facet-dependent photoreactivity of BiOCl single-crystalline nanosheets. , 2012, Journal of the American Chemical Society.
[41] Shuncheng Lee,et al. Efficient visible light photocatalytic removal of NO with BiOBr-graphene nanocomposites , 2011 .
[42] Lizhi Zhang,et al. NO treated TiO2 as an efficient visible light photocatalyst for NO removal. , 2011, Journal of hazardous materials.
[43] T. Peng,et al. Synthesis of highly symmetrical BiOI single-crystal nanosheets and their {001} facet-dependent photoactivity , 2011 .
[44] Jiujun Zhang,et al. The {001} facets-dependent high photoactivity of BiOCl nanosheets. , 2011, Chemical Communications.
[45] Ling Zhang,et al. Preparation of BiOBr lamellar structure with high photocatalytic activity by CTAB as Br source and template. , 2009, Journal of hazardous materials.
[46] W. Ho,et al. Efficient photocatalytic removal of NO in indoor air with hierarchical bismuth oxybromide nanoplate microspheres under visible light. , 2009, Environmental science & technology.
[47] C. Zheng,et al. Study of the electronic structure and photocatalytic activity of the BiOCl photocatalyst , 2006 .
[48] B. Delley. From molecules to solids with the DMol3 approach , 2000 .
[49] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[50] B. Delley. An all‐electron numerical method for solving the local density functional for polyatomic molecules , 1990 .