Decoupling locally enhanced electric field treatment (LEEFT) intensity and copper release by applying asymmetric electric pulses for water disinfection

IF 7.2 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research X Pub Date : 2023-11-11 DOI:10.1016/j.wroa.2023.100206
Feiyang Mo, Jianfeng Zhou, Cecilia Yu, Feifei Liu, Manhitha Jumili, Yuxiao Wu, Xing Xie
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Abstract

Copper has well-known anti-microbial properties but is typically not considered for drinking water disinfection because of its health risk to human at efficient biocidal concentrations. Locally enhanced electric field treatment (LEEFT) is a cutting-edge technique that aims to inactivate bacteria by generating aqueous pores on the cell membrane through the application of a strong electric field. LEEFT can also increase the permeability of the cell membrane, which promotes the uptake of chemical disinfectants to reduce the required biocidal concentrations. Previously, a coaxial-electrode copper ionization cell (CECIC) was developed to combine copper disinfection with LEEFT, demonstrating superior disinfection efficiency with low effluent copper concentrations (<0.5 mg/L). However, using direct-current (DC) voltages results in a dilemma that a higher voltage is necessary for effective LEEFT disinfection, but a lower voltage is required to limit Cu release. Here, asymmetric electric pulses are employed to decouple the LEEFT intensity from copper release in the CECIC. In this case, LEEFT intensity is primarily determined by the pulse amplitude while the copper release is controlled by the pulse offset. We have demonstrated that the use of asymmetric electric pulses achieves significantly higher inactivation efficiency compared to the DC voltages with the similar level of Cu release. For the water with conductivity similar to tap water (∼100 μS/cm), a high inactivation efficiency of 4.7-log is achieved with only 0.49 mg/L copper release. These findings highlight the potential of asymmetric electric pulses as a promising alternative to DC voltages for the practical application of LEEFT-Cu systems in the future.

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应用不对称电脉冲对水进行消毒,解耦局部增强电场处理(LEEFT)强度和铜释放
铜具有众所周知的抗菌特性,但通常不考虑用于饮用水消毒,因为在有效的杀菌剂浓度下,铜对人体健康有风险。局部增强电场处理(LEEFT)是一种尖端技术,旨在通过施加强电场在细胞膜上产生水孔来灭活细菌。LEEFT还可以增加细胞膜的渗透性,从而促进化学消毒剂的吸收,从而降低所需的杀菌剂浓度。此前,同轴电极铜离子池(CECIC)被开发出来,将铜消毒与LEEFT相结合,在低出水铜浓度(<0.5 mg/L)下显示出卓越的消毒效率。然而,使用直流(DC)电压会导致一个困境,即需要更高的电压才能有效地消毒LEEFT,但需要更低的电压来限制Cu的释放。在这里,不对称电脉冲被用来解耦左强度从铜释放在CECIC。在这种情况下,left强度主要由脉冲幅度决定,而铜的释放由脉冲偏移量控制。我们已经证明,与具有相似Cu释放水平的直流电压相比,使用不对称电脉冲可以实现显着更高的失活效率。对于电导率与自来水相似(~ 100 μS/cm)的水,铜释放量仅为0.49 mg/L,失活效率高达4.7 log。这些发现强调了不对称电脉冲在未来的实际应用中作为直流电压的替代方案的潜力。
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来源期刊
Water Research X
Water Research X Environmental Science-Water Science and Technology
CiteScore
12.30
自引率
1.30%
发文量
19
期刊介绍: Water Research X is a sister journal of Water Research, which follows a Gold Open Access model. It focuses on publishing concise, letter-style research papers, visionary perspectives and editorials, as well as mini-reviews on emerging topics. The Journal invites contributions from researchers worldwide on various aspects of the science and technology related to the human impact on the water cycle, water quality, and its global management.
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