Design of novel p–n heterojunction ZnBi2O4-ZnS photocatalysts with impressive photocatalytic and antibacterial activities under visible light

被引:0
|
作者
Bui The Huy
Pham Tuan Nhi
Ngo Thi Tuong Vy
Dang Nguyen Nha Khanh
Nguyen Thi Mai Tho
Nguyen Quoc Thang
Do Trung Sy
Bui Quang Minh
Nguyen Thi Kim Phuong
机构
[1] Faculty of Chemical Engineering,Department of Chemistry
[2] Industrial University of Ho Chi Minh City,Hochiminh City Institute of Resources Geography, Tay Nguyen Institute of Scientific Research
[3] Changwon National University,undefined
[4] Vietnam Academy of Science and Technology,undefined
[5] Institute of Applied Mechanics and Informatics,undefined
[6] Vietnam Academy of Science and Technology,undefined
[7] Institute of Chemistry,undefined
[8] Vietnam Academy of Science and Technology,undefined
[9] Center for Research and Technology Transfer,undefined
[10] Vietnam Academy of Science and Technology,undefined
关键词
ZnBi; O; –Zn; Heterojunction; Indigo carmine; Visible-light illumination; Kinetic degradation,·Antimicrobial activity;
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中图分类号
学科分类号
摘要
Heterojunction structures have attracted considerable attention for enhancing electron migration across interfaces. In this report, ZnBi2O4–ZnS(12%) heterojunction photocatalysts was found to be capable of degrading over 94% of indigo carmine in a 15 mg/L solution within 90 min of visible light irradiation at a catalytic dose of 1.0 g/L and pH 4. Furthermore, more than 82% of the total organic carbon (TOC) was removed, confirming the almost complete mineralization of the indigo carmine by ZnBi2O4–ZnS(12%). Moreover, the photocatalyst exhibited high stability and retained its photocatalytic activity up to the 5th cycle of operation without photocorrosion. The dramatic enhancement in the visible-light photocatalytic performance of the ZnBi2O4–ZnS heterojunctions over pristine ZnBi2O4 and ZnS was due to the formation of a superior heterojunction between the n-type semiconductor, ZnS, and the p-type semiconductor, ZnBi2O4. This heterojunction facilitated the separation and transfer of the photoinduced electron at the interfaces of the two semiconductors. Furthermore, the ZnBi2O4–ZnS(12%) exhibited an inhibition zone of 15 mm against fecal Escherichia coli (ATCC 8739), with a minimum inhibitory concentration (MIC) of 150 μg/mL. These results demonstrated that the novel ZnBi2O4–ZnS p–n-type heterojunction is a promising visible-light active photo-catalyst for the degradation of organic pollutants and inhibition of fecal E. coli.
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页码:84471 / 84486
页数:15
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