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首页> 外文期刊>Nanoscale >Boosting interfacial charge transfer and electricity generation for levofloxacin elimination in a self-driven bio-driven photoelectrocatalytic system
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Boosting interfacial charge transfer and electricity generation for levofloxacin elimination in a self-driven bio-driven photoelectrocatalytic system

机译:提高界面电荷转移发电对左氧氟沙星消除bio-driven较深photoelectrocatalytic系统

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Recently, molybdenum disulfide (MoS2) has stimulated significant research interest as a promising electrode candidate in solar cells and energy conservation fields. Unfortunately, the short lower electron/hole migration lifetimes and easy agglomeration hamper its wide practical applications to some extent. Herein, interface engineering coupled with a bio-assisted photoelectrochemical (PEC) strategy is presented to construct a 0D MoS2 quantum dot (QD)/1D TiO2 nanotube electrode for pollutant elimination. Aimed at accelerating charge transfer over the 0D/1D composite interface, three types of coupling PEC models were developed to optimize the catalytic performance. The single chamber microbial fuel cell (SCMFC)-PEC integrated system was found to be the best alternative for levofloxacin (LEV) elimination (0.029 min(-1)), and the sequential SCMFC-PEC further realized the whole system self-running independently. In addition, the interfacial electron migration and LEV degradation pathways were thoroughly investigated by LC/TOF/MS coupled with density functional theory (DFT) calculations to clearly elucidate the electron transfer paths, LEV-attacked sites and mineralization pathways in a joint sequential SCMFC-PEC system. As such, the constructed self-recycling system provides a new platform for bio-photo-electrochemical utilization, which could exhibit promising potential in environmental purification.
机译:最近,二硫化钼(监理)刺激作为一个重要的研究兴趣承诺在太阳能电池和电极候选人节能领域。短电子/空穴迁移寿命和低容易聚集阻碍其广泛的实用性应用程序在某种程度上。工程,加上辅助光电化学(压电)策略构建一个0 d二硫化钼量子点(QD) / 1 d二氧化钛纳米管电极污染物消除。旨在加速电荷转移了0 d / 1 d复合界面,三种类型的耦合压电陶瓷开发优化模型催化性能。微生物燃料电池(SCMFC)压电陶瓷集成系统被发现是最好的选择左氧氟沙星(LEV)消除(0.029分钟(1)),和顺序SCMFC-PEC进一步意识到整个系统独立运行的。的界面电子迁移和列弗彻底降解途径研究了LC / TOF MS加上密度泛函理论(DFT)计算清楚阐明电子传输路径,LEV-attacked网站和矿化途径联合顺序SCMFC-PEC系统。构建self-recycling系统提供了一个新的平台bio-photo-electrochemical利用率,从而表现出有前途潜在的环境净化。

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