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纳米线修饰的三维电极实现低电压电穿孔用于水消毒。

Nanowire-Modified Three-Dimensional Electrode Enabling Low-Voltage Electroporation for Water Disinfection.

机构信息

Environmental Simulation and Pollution Control State Key Joint Laboratory, State Environmental Protection Key Laboratory of Microorganism Application and Risk Control (SMARC), School of Environment, Tsinghua University , Beijing 100084, P. R. China.

Linde+Robinson Laboratories, California Institute of Technology , 1200 East California Boulevard, MC 131-24, Pasadena, California 91125, United States.

出版信息

Environ Sci Technol. 2016 Jul 19;50(14):7641-9. doi: 10.1021/acs.est.6b01050. Epub 2016 Jul 1.

Abstract

More than 10% of the people in the world still suffer from inadequate access to clean water. Traditional water disinfection methods (e.g., chlorination and ultraviolet radiation) include concerns about the formation of carcinogenic disinfection byproducts (DBPs), pathogen reactivation, and/or excessive energy consumption. Recently, a nanowire-assisted electroporation-disinfection method was introduced as an alternative. Here, we develop a new copper oxide nanowire (CuONW)-modified three-dimensional copper foam electrode using a facile thermal oxidation approach. An electroporation-disinfection cell (EDC) equipped with two such electrodes has achieved superior disinfection performance (>7 log removal and no detectable bacteria in the effluent). The disinfection mechanism of electroporation guarantees an exceedingly low operation voltage (1 V) and level of energy consumption (25 J L(-1)) with a short contact time (7 s). The low operation voltage avoids chlorine generation and thus reduces the potential of DBP formation. Because of irreversible electroporation damage on cell membranes, no regrowth and/or reactivation of bacteria occurs during storage after EDC treatment. Water disinfection using EDCs has great potential for practical applications.

摘要

世界上超过 10%的人仍然难以获得清洁水。传统的水消毒方法(例如氯化和紫外线辐射)存在致癌消毒副产物(DBP)形成、病原体复活和/或过度能源消耗等问题。最近,一种纳米线辅助电穿孔-消毒方法被引入作为替代方法。在这里,我们使用简单的热氧化方法开发了一种新的氧化铜纳米线(CuONW)修饰的三维铜泡沫电极。配备两个这样的电极的电穿孔消毒池(EDC)实现了优异的消毒性能(>7 对数去除,流出物中没有可检测到的细菌)。电穿孔消毒的消毒机制保证了极低的操作电压(1V)和低水平的能耗(25J/L(-1)),接触时间短(7s)。低操作电压避免了氯的生成,从而降低了 DBP 形成的可能性。由于细胞膜发生不可逆的电穿孔损伤,因此在 EDC 处理后储存期间不会发生细菌的再生长和/或复活。EDC 用于水消毒具有很大的实际应用潜力。

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