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BiOI-氧化石墨烯纳米复合材料中光催化-光热协同作用对抗菌活性的贡献

Synergistic Photocatalytic-Photothermal Contribution to Antibacterial Activity in BiOI-Graphene Oxide Nanocomposites.

作者信息

Yang Yuping, Yin Haibo, Li Huifan, Zou Quan, Zhang Ziping, Pei Wenkai, Luo Liulin, Huo Yuning, Li Hexing

机构信息

The Education Ministry Key Lab of Res ource Chemistry, Shanghai Key Laboratory of Rare Earth Functional Materials, Shanghai Normal University, Shanghai 200234, China.

Department of Clinical Laboratory Medicine, Shanghai Pulmonary Hospital, Tongji University School of Medicine, Shanghai 200433, China.

出版信息

ACS Appl Bio Mater. 2018 Dec 17;1(6):2141-2152. doi: 10.1021/acsabm.8b00567. Epub 2018 Nov 26.

Abstract

The threat of environmental microbial contamination to the health of human beings has drawn particular attention. In order to explore the synergistic effect of photocatalytic and photothermal process to the antibacterial property, a stably combined BiOI-graphene oxide (GO) nanocomposite was constructed and prepared through a facile solvothermal method. BiOI crystals were uniformly distributed on the GO nanosheets by the formation of the Bi-C bond. On the basis of various characterizations, the great surface area, the high light harvesting with extension into NIR region, and the efficient transfer of photoinduced electrons by the conductivity of GO were demonstrated, all of which are beneficial for the photocatalytic antibacterial activity. More importantly, the photothermal effect of GO increased the temperature of the BiOI-GO composite with high photothermal conversion efficiency and induced the photogenerated electrons from BiOI crystals to obtain more energy and higher carrier mobility. Conversely, the temperature elevation of BiOI-GO composite improved its capability for light absorption and separation of photoinduced charges. As a result, the BiOI-GO composite enabled the synergistic photocatalytic-photothermal effect for the improvement of the antibacterial property for with higher efficiency of TOC removal and leakage of K ions, in comparison with the individual photocatalytic process. Thus, the synergistic photocatalytic-photothermal contribution of BiOI-GO composite will provide significance for the potential application of environmental disinfection in the future.

摘要

环境微生物污染对人类健康的威胁已引起特别关注。为了探究光催化和光热过程对抗菌性能的协同作用,通过简便的溶剂热法构建并制备了一种稳定结合的BiOI-氧化石墨烯(GO)纳米复合材料。通过形成Bi-C键,BiOI晶体均匀分布在GO纳米片上。基于各种表征,证明了其具有大的表面积、延伸至近红外区域的高光捕获能力以及通过GO的导电性实现光生电子的高效转移,所有这些都有利于光催化抗菌活性。更重要的是,GO的光热效应以高光热转换效率提高了BiOI-GO复合材料的温度,并诱导BiOI晶体中的光生电子获得更多能量和更高的载流子迁移率。相反,BiOI-GO复合材料的温度升高提高了其光吸收和光生电荷分离的能力。结果,与单独的光催化过程相比,BiOI-GO复合材料实现了光催化-光热协同效应,以更高的总有机碳去除效率和钾离子泄漏率提高了抗菌性能。因此,BiOI-GO复合材料的光催化-光热协同作用将为未来环境消毒的潜在应用提供重要意义。

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