Journal of Inorganic Materials, Volume. 34, Issue 2, 164(2019)

Controllable Synthesis and Photocatalytic Performance of BiVO4 under Visible-light Irradiation

Jie LI1, Chen-Fei SONG2, Xian-Juan PANG2, [in Chinese]1, [in Chinese]2, and [in Chinese]2
Author Affiliations
  • 11. Medical College, Henan University of Science and Technology, Luoyang 471023, China
  • 22. National United Engineering Laboratory for Advanced Bearing Tribology, Henan University of Science and Technology, Luoyang 471023, China
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    References(31)

    [1] DONG L M, MI J B, SHAN L W. Enhanced photocatalytic properties of silver oxide loaded bismuth vanadate.[D]. Chinese Journal of Chemical Engineering, 22, 909-913(2014).

    [2] KATO H, KUDO A, OMORI K. A novel aqueous process for preparation of crystal form-controlled and highly crystalline BiVO4 powder from layered vanadates at room temperature and its photocatalytic and photophysical properties[D]. Journal of the American Chemical Society, 121, 11459-11467(1999).

    [3] HOANG L H, PHU N D, VU P K. Control of crystal phase of BiVO4 nanoparticles synthesized by microwave assisted method[D]. Journal of Materials Science: Materials in Electronics, 27, 6452-6456(2016).

    [4] GAO S M, QIAO Q A, ZHAO P P. Synthesis of different morphologies and structures of nano-sized BiVO4 by precipitation method.[D]. Chinese Journal of Inorganic Chemistry, 23, 1153-1157(2007).

    [5] KE D N, MA L, PENG T Y. Effects of hydrothermal temperature on the microstructures of BiVO4 and its phtotcatalytic O2 evolution activity under visible light[D]. Inorganic Chemistry, 48, 4685-4691(2009).

    [6] GUO Y N, MA F Y, YANG X. Additive-free controllable fabrication of bismuth vanadates and their photocatalytic activity toward dye degradation[D]. Applied Surface Science, 256, 2215-2222(2010).

    [7] GE L, ZHANG X H. Synthesis of novel visible light driven BiVO4 photocatalysts via microemulsion process and its photocatalytic performance[D]. . Journal of Inorganic Materials, 24, 453-456(2009).

    [8] HOU L R, LIAN L, ZHANG L H. Microwave-assisted interfacial hydrothermal fabrication of hydrophobic CdWO4 microspheres as a high-performance photocatalyst[D]. RSC Advances, 4, 2374-2381(2014).

    [9] BYZYNSKI G, PEREIRA A P, VOLANTI D P. High-performance ultraviolet-visible driven ZnO morphologies photocatalyst obtained by microwave-assisted hydrothermal method[D]. Journal of Photochemistry and Photobiology A: Chemistry, 353, 358-367(2018).

    [10] SUN D H, YU X, ZHAO Z H. Microwave-assisted hydrothermal synthesis of Sn3O4 nanosheet/rGO planar heterostructure for efficient photocatalytic hydrogen generation.[D]. Applied Catalysis B: Environmental, 227, 470-476(2018).

    [11] KANGWANSUPAMONKON A, NATTESTAD A, PINGMUGANG K. Phase-controlled microwave synthesis of pure monoclinic BiVO4 nanoparticles for photocatalytic dye degradation[D]. Applied Materials Today, 1, 67-73(2015).

    [12] LIU J B, WANG H, ZHANG H M. Rapid microwave- assisted synthesis of phase controlled BiVO4 nanocrystals and research on photocatalytic properties under visible light irradiation[D]. Journal of Nanoparticle Research, 10, 767-774(2008).

    [13] CUI N Y, ZHANG A P, ZHANG J Z. Effects of pH on hydrothermal synthesis and characterization of visible-light-driven BiVO4 photocatalys[D]. Journal of Molecular Catalysis A: Chemical, 304, 28-32(2009).

    [14] KATO H, KUDO A, TOKUNAGA S. Selective preparation of monoclinic and tetragonal BiVO4 with scheelite structure and their photocatalytic properties[D]. Chemistry of Materials, 13, 4624-4628(2001).

    [15] XI G C, YE J H. Synthsis of bismuth vanadate nanoplates with exposed {001} facets and enhanced visible-light photocatalytic properties[D]. Chemical Communication, 46, 1893-1895(2010).

    [16] BU Y X, FAN W L, SONG X Y. Selective-control hydrothermal synthesis and formation mechanism of monazite-and zircon-type LaVO4 nanocrystals.[D]. Journal of Physical Chemistry B, 110, 23247-23254(2006).

    [17] GUO J, ZHANG Y M, ZHU Y. Hydrothermal synthesis and visible-light-photocatalytic properties of BiVO4 with different structures and morphologies.[D]. Journal of Inorganic Materials, 27, 26-32(2012).

    [18] KATO H, KUDO A, TSUJI I. AgInZn7S9 solid solution photocatalyst for H2 evolution from aqueous solutions under visible light irradiation[D]. Chemical Communications, 17, 1958-1959(2002).

    [19] LI G S, YU J C, ZHANG D Q. Ordered mesoporous BiVO4 through nanocating: a superior visible light-driven photoctotalyst[D]. Chemistry of Materials, 20, 3983-3992(2008).

    [20] DAI H X, JIANG H Y, MENG X. High-performance porous spherical or octapod-like single-crystalline BiVO4 photocatalysts for the removal of phenol and methylene blue under visible-light illumination[D]. Journal of Hazardous Materials, 217-218, 92-99(2017).

    [21] KUDO A, YU J Q. Effects of structure variation on the photocatalytic performance of hydrothermal synthesized BiVO4[D]. Advanced Functional Materials, 16, 2163-2169(2006).

    [22] CHEN Y, HUANG S P, ZHOU K C. Hydrothermal synthesis and photocatalytic property of BiVO4 nanosheets.[D]. The Chinese Journal of Nonferrous Metals, 21, 1570-1579(2011).

    [23] JOSHI S, NIKAM S. Irreversible phase transition in BiVO4 nanostructures synthesized by a polyol method and enhancement in photo degradation of methylene blue[D]. RSC Advances, 6, 107463-107474(2016).

    [24] GONG H H, ZHANG Y, ZHANG Y F. The controllably synthesized octadecahedron-BiVO4 with exposed {111} facets[D]. European Journal of Inorganic Chemistry, 6, 107463-107474(2016).

    [25] , SHI W D, YAN Y. Microwave-assisted synthesis of nano-scale BiVO4 photocatalysts and their excellent visible-light- driven photocatalytic activity for the degradation of ciprofloxacin[D]. Chemical Engineering Journal, 215-216, 740-746(2013).

    [26] NIE H Y, OU M, ZHONG Q. Controllable synthesis of 3D BiVO4 superstructure with visible-light-induced photocatalytic oxidation of NO in gas phase and mechanism analysis[D]. Physical Chemistry Chemical Physics, 17, 28809-28817(2015).

    [27] CHOI W, PARK H. Photocatalytic reactivities of Nafion-coated TiO2 for the degradation of charged organic compounds under UV or visible light[D]. Journal of Physical Chemistry B, 109, 11667-11674(2005).

    [28] DONG S Y, LI Y K, YU C F. Controlled synthesis of T-shaped BiVO4 and enhanced visible light responsive photocatalytic activity[D]. Journal of Solid State Chemistry, 211, 176-183(2014).

    [29] CASTILLO N C, GRAULE T, HEEL A. Flame-assisted synthesis of nanoscale, amorphous and crystalline, spherical BiVO4 with visible-light photocatalytic activity.[D]. Applied Catalysis B-Environmental, 95, 335-347(2010).

    [30] HUSSAIN M, RUSSO N, THALLURI S M. Green- synthesized BiVO4 oriented along {040} facets for visible-light- driven ethylene degradation[D]. Industrial & Engineering Chemistry Research, 53, 2640-2646(2014).

    [31] LI C J, LV R, ZHANG P. Selective deposition of Ag3PO4 on monoclinic BiVO4(040) for highly efficient photocatalysis[D]. Small, 9, 3951-3956(2013).

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    Jie LI, Chen-Fei SONG, Xian-Juan PANG, [in Chinese], [in Chinese], [in Chinese]. Controllable Synthesis and Photocatalytic Performance of BiVO4 under Visible-light Irradiation[J]. Journal of Inorganic Materials, 2019, 34(2): 164

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    Paper Information

    Category: Research Articles

    Received: Jun. 7, 2018

    Accepted: --

    Published Online: Sep. 24, 2021

    The Author Email:

    DOI:10.15541/jim20180257

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