• Journal of Inorganic Materials
  • Vol. 35, Issue 7, 789 (2020)
Jingwei XU1, Zheng LI2, Zepu WANG1, Han YU1, Qi HE1, Nian FU3, Bangfu DING1、*, Shukai ZHENG1, and Xiaobing YAN1
Author Affiliations
  • 1College of Electronic Information Engineering, Hebei University, Baoding 071002, China
  • 2College of Civil Engineering and Architecture, Hebei University, Baoding 071002, China
  • 3College of Physics Science and Technology, Hebei University, Baoding 071002, China
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    DOI: 10.15541/jim20190409 Cite this Article
    Jingwei XU, Zheng LI, Zepu WANG, Han YU, Qi HE, Nian FU, Bangfu DING, Shukai ZHENG, Xiaobing YAN. Morphology and Photocatalytic Performance Regulation of Nd3+-doped BiVO4 with Staggered Band Structure [J]. Journal of Inorganic Materials, 2020, 35(7): 789 Copy Citation Text show less
    References

    [1] L LIU, F WANG Y, Q CUI W et al. Preparation of BiVO4 and photocatalytic degradation of RhB under visible light. Inorganic Chemicals Industry, 45, 60-63(2013).

    [2] J LI, J FENG X, F SONG C. Selective synthesis of bismuth vandate with different crystalline phases and their photocatalytic activity. New Chemical Materials, 46, 217-221(2018).

    [3] N GAO Y. Photo-catalyst degradation of ibuprofen by TiO2-BiVO4 composite. Inorganic Chemicals Industry, 51, 88-92(2019).

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    [5] Y LI, Y XIAO X, H YE Z. Facile fabrication of tetragonal scheelite (t-s) BiVO4/g-C3N4 composites with enhanced photocatalytic performance. Ceramics International, 44, 7067-7076(2018).

    [6] M DRAGOMIR, I ARCON, S GARDONIO et al. Phase relations and optoelectronic characteristics in the NdVO4-BiVO4 system. Acta Materialia, 61, 1126-1135(2013).

    [7] C ZENG, M HU Y, R ZHANG T et al. A core-satellite structured Z-scheme catalyst Cd0.5Zn0.5S/BiVO4 for highly efficient and stable photocatalytic water splitting. Journal of Materials Chemistry A, 6, 16932-16942(2018).

    [8] Q ZHANG J, Y ZHANG, K ZHU Y et al. Control synthesis of highly active BiVO4 by urea co-precipitation and the mechanism for enhanced photocatalytic performance. Imaging Science and Photochemistry, 33, 336-345(2015).

    [9] J LIANG M, N DENG, Y XIANG X et al. Bi/BiVO4/Bi4V2O11 composite catalysts: preparation and photocatalytic performance. Chinese Journal of Inorganic Chemistry, 35, 263-270(2019).

    [10] H TENG H, L QING L, Z GAO et al. Research progress in the modification of bismuth vanadate photocatalytic materials. Liaoning Chemical Industry, 48, 328-331(2019).

    [11] W ZHU S, G LI Q, M HUTTULA et al. One-pot hydrothermal synthesis of BiVO4 microspheres with mixed crystal phase and Sm3+-doped BiVO4 for enhanced photocatalytic activity. Journal of Materials Science, 52, 1679-1693(2017).

    [12] Z CHEN R, X WANG W, M JIANG D et al. Hydrothermal synthesis of Nd3+-doped heterojunction ms/tz-BiVO4 and its enhanced photocatalytic performance. Journal of Physics and Chemistry of Solids, 117, 28-35(2018).

    [13] T LIU, Q TANG G, C ZHAO C et al. Enhanced photocatalytic mechanism of the Nd-Er co-doped tetragonal BiVO4 photocatalysts. Applied Catalysis B: Environmental, 213, 87-96(2017).

    [14] N GUO M, L HE Q, Y WANG A et al. A novel, simple and green way to fabricate BiVO4 with excellent photocatalytic activity and its methylene blue decomposition mechanism. Catalysis, 6, 81-92(2016).

    [15] D RESSNIG, R KONTIC, R PARXKE G. Morphology control of BiVO4 photocatalysts: pH optimization vs. self-organization. Materials Chemistry and Physics, 135, 457-466(2012).

    [16] Y CAI X, Y ZHANG J, M FUJITSUKA et al. Graphitic-C3N4 hybridized N-doped La2Ti2O7 two-dimensional layered composites as efficient visible-light-driven photocatalyst. Applied Catalysis B: Environmental, 202, 191-198(2017).

    Jingwei XU, Zheng LI, Zepu WANG, Han YU, Qi HE, Nian FU, Bangfu DING, Shukai ZHENG, Xiaobing YAN. Morphology and Photocatalytic Performance Regulation of Nd3+-doped BiVO4 with Staggered Band Structure [J]. Journal of Inorganic Materials, 2020, 35(7): 789
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