School of Environment and Natural Resources, Renmin University of China, Beijing 100872, PR China.
Department of Chemical and Environmental Engineering, Yale University, New Haven, Connecticut 06520-8286, United States.
Environ Sci Technol. 2022 Aug 2;56(15):10925-10934. doi: 10.1021/acs.est.2c01793. Epub 2022 Jul 12.
Conventional water disinfection methods such as chlorination typically involve the generation of harmful disinfection byproducts and intensive chemical consumption. Emerging electroporation disinfection techniques using nanowire-enhanced local electric fields inactivate microbes by damaging their outer structures without byproduct formation or chemical dosing. However, this physical-based method suffers from a limited inactivation efficiency under high water flux due to an insufficient contact time. Herein, we integrate electrochlorination with nanowire-enhanced electroporation to achieve a synergistic flow-through process for efficient water disinfection targeting bacteria and viruses. Electroporation at the cathode induces sub-lethal damages on the microbial outer structures. Subsequently, electrogenerated active chlorine at the anode aggravates these electroporation-induced injuries to the level of lethal damage. This sequential flow-through disinfection system achieves complete disinfection (>6.0-log) under a very high water flux of 2.4 × 10 L/(m h) with an applied voltage of 2.0 V. This disinfection efficiency is 8 times faster than that of electroporation alone. Further, the specific energy consumption for the disinfection by this novel process is extremely low (8 × 10 kW h/m). Our results demonstrate a promising method for rapid and energy-efficient water disinfection by coupling electroporation with electrochlorination to meet vital needs for pathogen elimination.
传统的水消毒方法,如氯化消毒,通常涉及生成有害的消毒副产物和大量化学物质的消耗。新兴的纳米线增强局部电场的电穿孔消毒技术通过破坏微生物的外部结构来灭活微生物,而不会形成副产物或进行化学加药。然而,这种基于物理的方法由于接触时间不足,在高水通量下的灭活效率有限。在此,我们将电氯化与纳米线增强的电穿孔相结合,实现了针对细菌和病毒的高效水消毒协同流动过程。在阴极上电穿孔会对微生物的外部结构造成亚致死损伤。随后,在阳极上产生的活性氯会加剧这些电穿孔引起的损伤,使其达到致死损伤的程度。在 2.0 V 的外加电压下,该顺序流动式消毒系统在非常高的水通量 2.4×10 L/(m h)下实现完全消毒(>6.0-log)。这种消毒效率比单独的电穿孔快 8 倍。此外,这种新型工艺的消毒比能非常低(8×10 kW h/m)。我们的结果表明,通过将电穿孔与电氯化相结合来快速有效地进行水消毒是一种很有前途的方法,可以满足消除病原体的重要需求。