[1] ZHANG LI-SHA, WANG HUAN-LI, CHEN ZHI-GANG, et al. Bi2WO6 micro/nano-structures: synthesis, modifications and visible- light-driven photocatalytic applications. Applied Catalysis B-Environmental, 2011, 106(1/2): 1–13.
[2] ZHANG LI-WU, ZHU YONG-FA. A review of controllable synthesis and enhancement of performances of bismuth tungstate visible- light-driven photocatalysts. Catalysis Science & Technology, 2012, 2(4): 694–706.
[3] TANG JUN-WANG, ZOU ZHI-GANG, YE JIN-HUA. Photocatalytic decomposition of organic contaminants by Bi2WO6 under visible light irradiation. Catalysis Letters, 2004, 92(1/2): 53–56.
[4] HUANG YI, SHEN YUE, WU JI-HUAI, et al. Synthesis and characterization of flower-like Bi2WO6 and its photocatalytic activity. Journal of Functional Materials, 2010, 41(1): 52–56.
[5] LAI SHU-TING, ZHANG PENG, ZHOU WU-YI, et al. Synthesis and properties of visible-light photocatalytic Bi2WO6 via microemulsion-assisted hydrothermal method. Journal of Inorganic Materials, 2012, 27(9): 945–950.
[6] LIU YU-MIN, LI ZI-JING, LV HUA, et al. Synthesis of hierarchical Bi2WO6 microspheres with high visible-light-driven photocatalytic activities by Sol-Gel-hydrothermal route. Materials Letters, 2013, 108(10): 84–87.
[7] ZHU ZHEN-FENG, YU HONG-GUANG, LI JUN-QI, et al. One step template-free synthesis of nest-like Bi2WO6 microspheres and enhanced photocatalytic activity. Journal of Functional Materials, 2012, 43(4): 409–413.
[8] TANG PEI-SONG, CHEN HAI-FENG, CAO FENG. One-step preparation of bismuth tungstate nanodisks with visible-light photocatalytic activity. Materials Letters, 2012, 68(2): 171–173.
[9] XU JIE-HUI, WANG WEN-ZHONG, SHANG MENG, et al. Efficient visible light induced degradation of organic contaminants by Bi2WO6 film on SiO2 modified reticular substrate. Applied Catalysis B-Environmental, 2010, 93(3/4): 227–232.
[10] SU XIN-TAI, YAN QING-ZHI, GE CHANG-CHUN. Recent developments of low-temperature combustion synthesis of ultrafine ceramic powder. Progress in Chemistry, 2005, 17(3): 430–436.
[11] LU LI-PING, ZHANG XI-YAN, BAI ZHAO-HUI, et al. Research progress of low-temperature combustion synthesis method. Journal of Changchun University of Science and Technology (Natural Science Edition), 2008, 31(3): 82–84.
[12] ZHANG ZHI-JIE, WANG WEN-ZHONG, SHANG MENG, et al. Low-temperature combustion synthesis of Bi2WO6 nanoparticles as a visible-light-driven photocatalyst. Journal of Hazardous Materials, 2010, 177(1/3): 1013–1018.
[13] SONG XU-CHUN, ZHENG YI-FAN, MA RONG, et al. Photocatalytic activities of Mo-doped Bi2WO6 three-dimensional hierarchical microspheres. Journal of Hazardous Materials, 2011, 192(1): 186–191.
[14] SONG JI-MEI, WANG HONG, LI YA-PING, et al. Photocatalytic activity enhancement for 3D hierarchical Bi2WO6 microsphere and surface acidity. Science China Chemistry, 2013, 43(2): 163–170.
[15] CHEN PENG, ZHU LING-YAN, FANG SHU-HONG, et al. Photocatalytic degradation efficiency and mechanism of microcystin-RR by mesoporous Bi2WO6 under near ultraviolet light. Environmental Science & Technology, 2012, 46(4): 2345–2351.
[16] FU HONG-BO, PAN CHENG-SHI, YAO WEN-QING, et al. Visible- light-induced degradation of rhodamine B by nanosized Bi2WO6. Journal of Physical Chemistry B, 2005, 109(47): 22432–22439.
[17] HE ZHONG, SUN CHENG, YANG SHAO-GUI, et al. Photocatalytic degradation of rhodamine B by Bi2WO6 with electron accepting agent under microwave irradiation: Mechanism and pathway. Journal of Hazardous Materials, 2009, 162(2/3): 1477–1486.
[18] WANG CHUN-YING, ZHU LING-YAN, WEI MING-CUI, et al. Photolytic reaction mechanism and impacts of coexisting substances on photodegradation of bisphenol A by Bi2WO6 in water. Water Research, 2012, 46(3): 845–853. |