Journal of Synthetic Crystals, Volume. 50, Issue 1, 130(2021)
Preparation and Photocatalytic Properties of AgBr/TiO2 Nanofibers
[3] [3] HUANG W, WANG J, BIAN L, et al. Oxygen vacancy induces self-doping effect and metalloid LSPR in non-stoichiometric tungsten suboxide synergistically contributing to the enhanced photoelectrocatalytic performance of WO3-x/TiO2-x heterojunction[J]. Physical Chemistry Chemical Physics, 2018, 20(25): 17268-17278.
[6] [6] HUO P W, YAN Y S, LI S T, et al. Floating photocatalysts of fly-ash cenospheres supported AgCl/TiO2 films with enhanced Rhodamine B photodecomposition activity[J]. Desalination, 2010, 256(1/2/3): 196-200.
[9] [9] TONG T Z, ZHANG J L, TIAN B Z, et al. Preparation of Fe3+-doped TiO2 catalysts by controlled hydrolysis of titanium alkoxide and study on their photocatalytic activity for methyl orange degradation[J]. Journal of Hazardous Materials, 2008, 155(3): 572-579.
[10] [10] HABIBA U, ISLAM M S, SIDDIQUE T A, et al. Adsorption and photocatalytic degradation of anionic dyes on Chitosan/PVA/Na-Titanate/TiO2 composites synthesized by solution casting method[J]. Carbohydrate Polymers, 2016, 149: 317-331.
[11] [11] CUI J, HE T, ZHANG X. Synthesis of Fe3O4@SiO2@Ption-TiO2 hybrid composites with high efficient UV-visible light photoactivity[J]. Catalysis Communications, 2013, 40: 66-70.
[13] [13] ESWAR N K, KATKAR V V, RAMAMURTHY P C, et al. Novel AgBr/Ag3PO4 decorated ceria nanoflake composites for enhanced photocatalytic activity toward dyes and bacteria under visible light[J]. Industrial & Engineering Chemistry Research, 2015, 54(33): 8031-8042.
[14] [14] XIAO X L, GE L, HAN C C, et al. A facile way to synthesize Ag@AgBr cubic cages with efficient visible-light-induced photocatalytic activity[J]. Applied Catalysis B: Environmental, 2015, 163: 564-572.
[15] [15] XIA D H, AN T C, LI G Y, et al. Synergistic photocatalytic inactivation mechanisms of bacteria by graphene sheets grafted plasmonic AgAgX (X = Cl, Br, I) composite photocatalyst under visible light irradiation[J]. Water Research, 2016, 99: 149-161.
[16] [16] YIN L, WANG Z, LU L, et al. Universal degradation performance of a high-efficiency AgBr/Ag2CO3 photocatalyst under visible light and an insight into the reaction mechanism[J]. New Journal of Chemistry, 2015, 39(6): 4891-4900.
[17] [17] WU Y M, LIU H B, ZHANG J L, et al. Enhanced photocatalytic activity of nitrogen-doped titania by deposited with gold[J]. The Journal of Physical Chemistry C, 2009, 113(33): 14689-14695.
[18] [18] ZHANG J L, WU Y M, XING M Y, et al. Development of modified N doped TiO2 photocatalyst with metals, nonmetals and metal oxides[J]. Energy & Environmental Science, 2010, 3(6): 715.
[19] [19] CHEN D M, JIANG Z Y, GENG J Q, et al. Carbon and nitrogen Co-doped TiO2 with enhanced visible-light photocatalytic activity[J]. Industrial & Engineering Chemistry Research, 2007, 46(9): 2741-2746.
[20] [20] HUA S Z, YU X X, LI F, et al. Hydrogen titanate nanosheets with both adsorptive and photocatalytic properties used for organic dyes removal[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2017, 516: 211-218.
[21] [21] AMBRUS Z, BALZS N, DE ALAPI T, et al. Synthesis, structure and photocatalytic properties of Fe(III)-doped TiO2 prepared from TiCl3[J]. Applied Catalysis B: Environmental, 2008, 81(1/2): 27-37.
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SUN Nan, CHEN Peng, REN Youliang. Preparation and Photocatalytic Properties of AgBr/TiO2 Nanofibers[J]. Journal of Synthetic Crystals, 2021, 50(1): 130
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Received: Sep. 15, 2020
Accepted: --
Published Online: Apr. 15, 2021
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CSTR:32186.14.