Chin. J. Process Eng. ›› 2017, Vol. 17 ›› Issue (2): 404-411.DOI: 10.12034/j.issn.1009-606X.216320
• Review • Previous Articles Next Articles
HU Chao, CHAI Wen-ke, CHE Yan-hao, ZHANG Wei, RAN Song-lin, LV Yao-hui*
Received:
2016-10-12
Revised:
2016-11-04
Online:
2017-04-20
Published:
2017-04-19
Contact:
LV Yao-hui lvyaohui2015@163.com
胡 超, 柴文柯, 车延浩, 张 伟, 冉松林, 吕耀辉*
通讯作者:
吕耀辉 lvyaohui2015@163.com
基金资助:
HU Chao CHAI Wen-ke CHE Yan-hao ZHANG Wei RAN Song-lin LV Yao-hui. Recent Progress on the Bi2MO6 Based Semiconductor Photocatalytic Material[J]. Chin. J. Process Eng., 2017, 17(2): 404-411.
胡超 柴文柯 车延浩 张伟 冉松林 吕耀辉. Bi2MO6基半导体光催化材料的研究进展[J]. 过程工程学报, 2017, 17(2): 404-411.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.jproeng.com/EN/10.12034/j.issn.1009-606X.216320
[1]Fujishima A, Honda K.Electrochemical Photolysis of Water at a Semiconductor Electrode[J].Nature, 1972, 238(5358):37-38 [2]Akihiko Kudo K O, Hideki Kato.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 [J]. J. Am. Chem. Soc., 1999, 12: 11459-11467. [3]Zhang L, Wang H, Chen Z, et al.Bi2WO6Micro/nano-structures: Synthesis, Modifications and Visible-light-driven Photocatalytic Applications [J]. Appl. Catal. B-Environ, 2011, 106:1-13. [4]Zhang L, Zhu Y.A Review of Controllable Synthesis and Enhancement of Performances of Bismuth Tungstate Visible-light-driven Photocatalysts[J].Catal Sci. Technol., 2012, 2(4):694-703 [5]McDowell N A, Knight K S, Lightfoot P.Unusual High-temperature Structural Behaviour in Ferroelectric Bi2WO6[J].Chem, 2006, 12(5):1493-1499 [6]Fu H, Pan C, Yao W, et al.Visible-light-induced Degradation of Rhodamine B by Nanosized Bi2WO6[J].J. Phys. Chem. B, 2005, 109(47):22432-22439 [7]Zhao Z, Li Z, Zou Z.Electronic Structure and Optical Properties of Monoclinic Clinobisvanite BiVO4[J].Phys. Chem. Chem. Phys., 2011, 13(10):4746-4753 [8]Yong Xu M A A S.The Absolute Energy Positions of Conduction and Valence Bands of Selected Semiconducting Minerals [J]. Am. Mineral., 2000, 85: 543-556. [9]Chuan Zhang Y Z.Synthesis of Square Bi2WO6Nanoplates as High-activity Visible-light-driven Photocatalysts [J]. Chem.Mater., 2005, 17: 3537-3545. [10]Zhang L, Wang W, Chen Z, et al.Fabrication of Flower-like Bi2WO6Superstructures as High Performance Visible-light Driven Photocatalysts[J].J. Mater. Chem, 2007, 17(24):2526-2532 [11]Amano F, Nogami K and Ohtani B.Visible Light-Responsive Bismuth Tungstate Photocatalysts: Effects of Hierarchical Architecture on Photocatalytic Activity[J].J. Phys. Chem. C., 2009, 113(4):1536-1542 [12]Zhang L W, Wang Y J, Cheng H Y, et al.Synthesis of Porous Bi2WO6 Thin Films as Efficient Visible Light Active Photocatalysts[J].Adv. Mater., 2009, 21(12):1286-1290 [13]Saison T, Chemin N, Chane?ac C, et al.Bi2O3,BiVO4,and Bi2WO6: Impact of Surface Properties on Photocatalytic Activity under Visible Light[J].J. Phys. Chem. C, 2011, 115(13):5657-5666 [14]Fu H, Zhang S, Xu T, et al.Photocatalytic Degradation of RhB by Fluorinated Bi2WO6 and Distributions of the Intermediate Products[J].Environ. Sci. Technol., 2008, 42(6):2085-2091 [15]Liang Zhou M Y, Jie Yang, Yunhua Wang, Chengzhong Yu.Nanosheet-based Bi2MoxW1-xO6Solid Solutions with Adjustable Band Gaps and Enhanced Visible-light-driven Photocatalytic Activities [J]. J. Phys. Chem. C, 2010, 114: 18812-18818. [16]Zhang L, Man Y, Zhu Y.Effects of Mo Replacement on the Structure andVisible-Light-InducedPhotocatalyticPerformances of Bi2WO6Photocatalyst[J].ACS Catal., 2011, 1(8):841-848 [17]Song X C, Zheng Y F, Ma R, et al.Photocatalytic Activities of Mo-doped Bi2WO6Three-dimensional Hierarchical Microspheres[J].J. Hazard. Mater., 2011, 192(1):186-191 [18]Zhang Z, Wang W, Gao E, et al.Enhanced Photocatalytic Activity of Bi2WO6 with Oxygen Vacancies by Zirconium Doping [J]. J. Hazard. Mater., 2011, 196 255-262. [19]Lai K, Wei W, Zhu Y, et al.Effects of Oxygen Vacancy and N-doping on the Electronic and Photocatalytic Properties of Bi2MO6 (M=Mo, W) [J]. J. Solid State Chem., 2012, 187: 103-108. [20]Shang M, Wang W Z, Zhang L, et al.Bi2WO6 with Significantly Enhanced Photocatalytic Activities by Nitrogen Doping[J].Mater. Chem. Phys., 2010, 120(1):155-159 [21]Shi R, Huang G L, Lin J, et al.Photocatalytic Activity Enhancement for Bi2WO6 by Fluorine Substitution[J].J. Phys. Chem. C, 2009, 113(45):19633-19638 [22]Tian N, Zhang Y, Huang H, et al.Influences of Gd Substitution on the Crystal Structure and Visible-Light-Driven Photocatalytic Performance of Bi2WO6[J].J. Phys. Chem. C, 2014, 118(29):15640-15648 [23]Hou Y F, Liu S J, Zhang J H, et al.Facile Hydrothermal Synthesis of TiO2-Bi2WO6Hollow Superstructures with Excellent Photocatalysis and Recycle Properties[J].Dalton Trans., 2014, 43(3):1025-1031 [24]Jia Y, Zhan S, Ma S, et al.Fabrication of TiO2-Bi2WO6 Binanosheet for Enhanced Solar Photocatalytic Disinfection of Ecoli: Insights on the Mechanism[J].ACS. Appl. Mater. Inter, 2016, 8(11):6841-6851 [25]Sun X J, Zhang H, Wei J Z, et al.Preparation of Point-line Bi2WO6@TiO2Nanowires Composite Photocatalysts with Enhanced UV/visible-light-driven Photocatalytic Activity [J]. Mat. Sci. Semicon. Proc., 2016, 45: 51-56. [26]Yang C Y, Huang Y, Li F, et al.One-step Synthesis of Bi2WO6TiO2Heterojunctions with Enhanced Photocatalytic and Superhydrophobic Property via Hydrothermal Method[J].J. Mater. Sci., 2016, 51(2):1032-1042 [27]Zhong S, Zhang F J, Lu W, et al.One-step synthesis of Bi2WO6Bi2O3Loaded Reduced Graphene Oxide Multicomponent Composite with Enhanced Visible-light Photocatalytic Activity[J].Rsc. Adv., 2015, 5(84):68646-68654 [28]Li M L, Zhang L X, Fan X Q, et al.Highly Selective CO2 Photoreduction to CO over g-C3N4Bi2WO6Composites under Visible Light[J].J. Mater. Chem. A., 2015, 3(9):5189-5196 [29]Ma D, Wu J, Gao M C, et al.Fabrication of Z-scheme g-C3N4/RGO/Bi2WO6Photocatalyst with Enhanced Visible-light Photocatalytic Activity [J]. Chem. Eng. J, 2016, 290: 136-146. [30]Zhu Z F, Yan Y, Li J Q.Preparation of Flower-like BiOBr-WO3-Bi2WO6Ternary Hybrid with Enhanced Visible-light Photocatalytic Activity [J]. J. Alloys Compd., 2015, 651: 184-192. [31]Ge L, Liu J.Efficient Visible Light-induced Photocatalytic Degradation of Methyl Orange by QDs Sensitized CdS-Bi2WO6[J].Appl. Catal. B-Environ., 2011, 105(3-4):289-297 [32]Yu C L, Zhou W Q, Liu H, et al.Design and Fabrication of Microsphere Photocatalysts for Environmental Purification and Energy Conversion [J]. Chem. Eng. J, 2016, 287: 117-129. [33]Hojamberdiev M, Katsumata K, Morita K, et al.One-step Hydrothermal Synthesis and Photocatalytic Performance of ZnWO4/Bi2WO6Composite Photocatalysts for Efficient Degradation of Aacetaldehyde under UV Light Irradiation [J]. Appl. Catal.A-Gen., 2013, 457: 12-20. [34]Xiao Y, Chen C, Cao S, et al.Enhanced Sunlight-driven Photocatalytic Activity of Graphene OxideBi2WO6Nanoplates by Silicon Modification[J].Ceram. Int., 2015, 41(8):10087-10094 [35] Zhu S B, Xu T G, Fu H B, et al.Synergetic Effect of Bi2WO6Photocatalyst with C60 and Enhanced Photoactivity under Visible Irradiation [J]. Energ. Environ. Sci., 2007, 41: 6234-6239. [36]Di J, Xia J X, Ge Y P, et al.Novel Visible-light-driven CQDs/Bi2WO6Hybrid Materials with Enhanced Photocatalytic Activity Toward Organic Pollutants Degradation and Mechanism Insight [J]. Appl. Catal. B-Environ, 2015, 168: 51-61. [37]Yue L F, Wang S F, Shan G Q, et al.Novel MWNTs-Bi2WO6 Composites with Enhanced Simulated Solar Photoactivity Toward Adsorbed and Free Tetracycline in Water [J]. Appl. Catal. B-Environ, 2015, 176 11-19. [38]Yan T, Yan Q, Wang X D, et al.Facile Fabrication of Heterostructured g-C3N4Bi2MoO6Microspheres with Highly Efficient Activity under Visible Light Iirradiation[J].Dalton Trans., 2015, 44(4):1601-1611 [39]Zhang Y T, Shao C L, Li X H, et al.Controllable Synthesis and Enhanced Visible Photocatalytic Degradation Performances of Bi2WO6-carbon Nanofibers Heteroarchitectures[J].J. Sol-Gel Sci. Technol., 2014, 70(1):149-158 [40]Sun S, Wang W and Zhang L.Bi2WO6Quantum Dots Decorated Reduced Graphene Oxide: Improved Charge Separation and Enhanced Photoconversion Efficiency[J].J. Phys. Chem. C, 2013, 117(18):9113-9120 [41]Tian G H, Chen Y J, Zhou J, et al.In Situ Growth of Bi2MoO6 on Reduced Graphene Oxide Nanosheets for Improved Visible-light Photocatalytic Activity[J].Crystengcomm, 2014, 16(5):842-849 [42]Zhou F, Zhu Y.Significant Photocatalytic Enhancement in Methylene Blue Degradation of Bi2WO6Photocatalysts via Graphene Hybridization[J].J. Adv. Ceram., 2012, 1(1):72-78 [43]Cao S W, Yin Z, Barber J, et al.Preparation of Au-BiVO4 Heterogeneous Nanostructures as Highly Efficient Visible-Light Photocatalysts[J].ACS Appl.Mater. Inter., 2012, 4(1):418-423 [44]Wang F, Cao K, Wu Y, et al.Interfacial Properties of the Enhanced Visible-light Plasmonic Ag/Bi2WO6(001) Nanocomposite [J]. Appl. Surf. Sci., 2016, 360: 1075-1079. [45]Yu C L, Bai Y, Chen J C, et al.Pt/Bi2WO6Composite Microflowers: High Visible Light Photocatalytic Performance and Easy Recycle [J]. Sep. Purif. Technol., 2015, 154: 115-122. [46]Aazam E S.Photocatalytic Degradation of Congo Red under Visible Light Irradiation using Pd-Bi3.84W0.16O6.24Nanocomposite [J]. J. Alloys Compd., 2015, 644: 1-6. [47]Yang J, Wang X, Chen Y, et al.Enhanced Photocatalytic Activities of Visible-light Driven Green Synthesis in Water and Environmental Remediation on AuBi2WO6Hybrid Nanostructures[J].RSC Adv., 2015, 5(13):9771-9782 |
[1] | Rui ZHOU Shiyu HUANG Weiming LIU Zhaojin WU. Effect of roasting modification on visible light photo-Fenton catalytic performance of zinc-containing electric furnace dust [J]. The Chinese Journal of Process Engineering, 2024, 24(11): 1274-1283. |
[2] | Runnian WANG Chun ZHANG Jiaqi WU Yao ZHANG Yuxiang ZHANG Luyao ZHANG Rong YU Yongdong LIU. Soluble expression and antigenicity identification of VP1 capsid protein from serotype O foot?and?mouth disease virus [J]. The Chinese Journal of Process Engineering, 2023, 23(3): 472-479. |
[3] | Hanxiao DU Juan JI Chenwei QIN Ze ZHANG Fengfeng LI Yi SHEN. Preparation methods of g-C3N4 and its photocatalytic performance improvement approaches—a review [J]. The Chinese Journal of Process Engineering, 2022, 22(2): 162-175. |
[4] | Hao ZHANG Yuandi XU Xiuyu LIU. Optimizing preparation of Ce-Cu/TiO2 hollow microspheres with uniform particle size distribution and its photocatalysis and humidity control performance [J]. Chin. J. Process Eng., 2019, 19(1): 195-201. |
[5] | Yunzhu LIU Xiaofang FU Lihua GAO Liancai LEI Yibo WANG?. Synthesis and photocatalytic degradation performance of 1,3-bis(carboxymethyl)-imidazolium phosphotungstate in treatment of methyl red [J]. Chin. J. Process Eng., 2018, 18(S1): 146-152. |
[6] | Guixiang XIE Jijian WEI Zhibiao HU Ruijuan ZHENG. Preparation and photocatalytic properties of ZnO/C/TiO2 nanoparticles [J]. Chin. J. Process Eng., 2018, 18(5): 1068-1074. |
[7] | Zhaojun LI Hao DU. Review of the Development of Fine Bubble Technology in China [J]. Chin. J. Process Eng., 2017, 17(4): 655-663. |
[8] | LI Jing FU Min ZHOU Wan-jiao LIU Homg-yan. Preparation of g-C3N4/TiO2 Composite by One-step Calcination and Its Photocatalytic Activity for NOx [J]. Chin. J. Process Eng., 2015, 15(6): 1063-1068. |
[9] | HOU Yue WANG Yi-bo GAO Li-hua ZHANG Xin WANG Yi-juan YANG Jun-qing ZHAO Ming QING Miao-qing. Synthesis and Photocatalytic Degradation Performance of Molybdovanadophosphoric Heteropoly Acid [J]. Chin. J. Process Eng., 2015, 15(4): 703-707. |
[10] | ZHAO Jin-hua WANG Yu-song CHEN Wu-hua LAI Fei. Preparation and Photocatalytic Properties of Nanometer TiO2 Powder in Morpholine Ionic Liquid [J]. , 2015, 15(1): 159-163. |
[11] | HUANG Qing-ming XU Guang-qing FENG Chun-xiao LU Jun WU Yu-cheng. Synthesis and Photoelectrochemical Properties of Pt Nanoparticles Modified TiO2 Nanotube Arrays [J]. , 2012, 12(6): 1032-1037. |
[12] | ZHANG Hao LIU Xiu-yu ZHU Qing-ming DING Hou-cheng. Experimental Study on Photocatalytic Degradation of Indoor Formaldehyde Gas over Copper-doped Titania [J]. , 2012, 12(4): 696-701. |
[13] | GUO Ling-kun LU Jun ZHOU Song WANG Dong-mei XU Guang-qing ZHENG Zhi-xiang . Preparation of Ag@AgCl-TiO2-Flyash Microspheres Composite Photocatalyst and Its Photocatalytic Property under Visible Light [J]. , 2012, 12(1): 142-147. |
[14] | ZHANG Hao QIAN Fu-ping. Photocatalytic Property of TiO2 Catalyst Doped with Cerium [J]. , 2011, 11(3): 514-518. |
[15] | LIU Liang LU Jun LI Yun LIU Jia-qin WU Yu-cheng. Preparation of Nano-TiO2/Attapuleite Composite and Its Photocatalytic Kinetics [J]. , 2011, 11(1): 117-123. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||