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有机液流电池的构建——介绍一个研究型化学实验
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作者 曹剑瑜 朱振涛 +2 位作者 许娟 陈智栋 董如林 《广州化工》 CAS 2015年第24期187-189,共3页
将探索性实验教学和科学研究紧密结合,设计了一项新颖的研究型化学实验-有机液流电池的构建及其性能研究,让学生在教师引导下独立完成文献查阅、实验方案设计和电活性物种及液流电池的性能测试等任务,构建下一代大规模储能器件。该实验... 将探索性实验教学和科学研究紧密结合,设计了一项新颖的研究型化学实验-有机液流电池的构建及其性能研究,让学生在教师引导下独立完成文献查阅、实验方案设计和电活性物种及液流电池的性能测试等任务,构建下一代大规模储能器件。该实验有助于拓展学生的知识面,培养其科研热情,提高其分析和解决问题的能力,符合现代高等院校对化学实验教学的要求。 展开更多
关键词 研究型实验 大规模储能 液流 电活性物种
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Electrocatalytic generation of reactive species and implications in microbial inactivation
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作者 Forrest Nichols Kenneth I.Ozoemena Shaowei Chen 《Chinese Journal of Catalysis》 SCIE EI CAS CSCD 2022年第6期1399-1416,共18页
Controlling microbial proliferation in water systems,including wastewater,recreational water,and drinking water,is essential to societal health.Microbial inactivation through electrochemically generated reactive speci... Controlling microbial proliferation in water systems,including wastewater,recreational water,and drinking water,is essential to societal health.Microbial inactivation through electrochemically generated reactive species(RS)mediated pathways provides an effective route toward this microbial control.Herein we provide an overview of recent progress toward electrocatalytic generation of RS and their application in water disinfection,with a focus on the selective production of RS,the microorganism interactions with RS(including both RS mechanisms of action and innate microorganism responses to RS),and practical implementation of electrochemically generated RS for microbial inactivation.The article is concluded with a perspective where the challenges and opportunities of RS‐based electrochemical disinfection of water are highlighted,along with possible future research directions. 展开更多
关键词 ELECTROCATALYSIS Reactive species MICROORGANISM INACTIVATION Water electrodisinfection
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Inactivating SARS-CoV-2 by electrochemical oxidation
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作者 Yunchuan Tu Wei Tang +11 位作者 Liang Yu Zheyi Liu Yanting Liu Huicong Xia Haiwei Zhang Shiyun Chen Jia Wu Xiaoju Cui Jianan Zhang Fangjun Wang Yangbo Hu Dehui Deng 《Science Bulletin》 SCIE EI CSCD 2021年第7期720-726,M0004,共8页
Fully inactivating SARS-Co V-2, the virus causing coronavirus disease 2019, is of key importance for interrupting virus transmission but is currently performed by using biologically or environmentally hazardous disinf... Fully inactivating SARS-Co V-2, the virus causing coronavirus disease 2019, is of key importance for interrupting virus transmission but is currently performed by using biologically or environmentally hazardous disinfectants. Herein, we report an eco-friendly and efficient electrochemical strategy for inactivating the SARS-Co V-2 using in-situ formed nickel oxide hydroxide as anode catalyst and sodium carbonate as electrolyte. At a voltage of 5 V, the SARS-Co V-2 viruses can be rapidly inactivated with disinfection efficiency reaching 95% in only 30 s and 99.99% in 5 min. Mass spectrometry analysis and theoretical calculations indicate that the reactive oxygen species generated on the anode can oxidize the peptide chains and induce cleavage of the peptide backbone of the receptor binding domain of the SARS-Co V-2 spike glycoprotein, and thereby disables the virus. This strategy provides a sustainable and highly efficient approach for the disinfection of the SARS-CoV-2 viruliferous aerosols and wastewater. 展开更多
关键词 Electrochemical oxidation Reactive oxygen specie Receptor binding domain SARS-Co V-2
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