文献详情
Visible-light-driven photocatalytic inactivation of bacteriophage f2 by Cu-TiO2 nanofibers in the presence of humic acid
文献类型:期刊
通讯作者:Zheng, X (reprint author), Renmin Univ China, Sch Environm & Nat Resources, Beijing 100872, Peoples R China.
期刊名称:JOURNAL OF ENVIRONMENTAL SCIENCES-CHINA影响因子和分区
年:2019
卷:77
页码:383-391
ISSN:1001-0742
关键词:Photocatalysis; Visible light; Bacteriophage f2; Humic acid
所属部门:环境学院
摘要:Pathogenic viruses in drinking water are great threats to public health. Visible-lightdriven photocatalysis is a promising technology for virus inactivation. However, the existing photocatalytic antiviral research studies have mostly been carried out in single-component systems, neglecting the effect of natural organic matter, which exists widely in actual water bodies. In this paper, electrospun Cu-TiO2 nanofibers were prepared as photocatalysts, and their photocatalytic antiviral performance i ...More
Pathogenic viruses in drinking water are great threats to public health. Visible-lightdriven photocatalysis is a promising technology for virus inactivation. However, the existing photocatalytic antiviral research studies have mostly been carried out in single-component systems, neglecting the effect of natural organic matter, which exists widely in actual water bodies. In this paper, electrospun Cu-TiO2 nanofibers were prepared as photocatalysts, and their photocatalytic antiviral performance in the presence of humic acid (HA) was comprehensively studied for the first time. The properties of the reaction mixture were measured during the reaction. In addition, the safety, reliability and stability of photocatalytic disinfection in the mixed system were evaluated. The results showed that the virus removal efficiency decreased with the increase of the HA concentration. The type of reaction solution, such as PBS buffer solution or water, did not affect the removal efficiency noticeably. Under acidic conditions, the electrostatic forces between photocatalysts and viruses were strengthened, leading to higher virus removal efficiency. As the reaction time went on, the pH value in the solution increased first and then tended to be stable, the conductivity remained stable, and the dissolved oxygen increased first and then decreased. The safety test showed that the concentration of Cu ions released into the solution was lower than specified by the international standards. No photoreactivation was observed, and the addition of HA significantly reduced the reutilization efficiency of the photocatalysts. (C) 2018 The Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences. Published by Elsevier B.V. ...Hide
DOI:10.1016/j.jes.2018.09.017
百度学术:Visible-light-driven photocatalytic inactivation of bacteriophage f2 by Cu-TiO2 nanofibers in the presence of humic acid
语言:外文
基金:National Natural Science Foundation of China [51778618, 51478460]
作者其他论文
Removal of bacteriophage f2 in water by Fe-Ni nanoparticles: optimation of Fe/Ni ratio and influencing factors.Cheng, Rong, Kang, Mi, Shi, Lei, et al. .ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY. 2018, 256.
Preparation of acidified g-C3N4 via thermal polymerization of hydrochloric acid-treated urea for photodegradation of microcystin-LR under visible light.Shi, Lei, Shen, Liang-jie, Xiang, Shao-yu, et al. .ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY. 2018, 256.
Photocatalytic Inactivation of Bacteriophage f2 with Ag3PO4/g-C3N4 Composite under Visible Light Irradiation: Performance and Mechanism.Cheng, Rong, Shen, Liang-jie, Yu, Jin-hui, et al. .CATALYSTS. 2018, 8(10).
Removal of bacteriophage f2 in water by Fe-Ni nanoparticles: optimation of Fe/Ni ratio and influencing factors.Cheng, Rong, Kang, Mi, Shi, Lei, et al. .ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY. 2018, 256.
Preparation of acidified g-C3N4 via thermal polymerization of hydrochloric acid-treated urea for photodegradation of microcystin-LR under visible light.Shi, Lei, Shen, Liang-jie, Xiang, Shao-yu, et al. .ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY. 2018, 256.
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Visible-light-driven photocatalytic inactivation of bacteriophage f2 by Cu-TiO2 nanofibers in the
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