Sustainable bioelectric activation of periodate for highly efficient micropollutant abatement

阴极 高碘酸盐 环境修复 催化作用 降级(电信) 电子转移 化学 活性炭 过氧二硫酸盐 电子受体 污染 光化学 吸附 有机化学 生态学 电信 物理化学 计算机科学 生物
作者
Rusen Zou,Wenqiang Yang,Babak Rezaei,Kai Tang,Ping Zhang,Henrik Rasmus Andersen,Stephan Sylvest Keller,Yifeng Zhang
出处
期刊:Water Research [Elsevier BV]
卷期号:: 121388-121388 被引量:2
标识
DOI:10.1016/j.watres.2024.121388
摘要

The periodate (PI)-based advanced oxidation process is valued for environmental remediation, but current activation methods involve high costs, secondary contamination risks, and limited applicability due to external energy inputs (e.g., UV), catalyst incorporation (e.g., Fe2+), or environmental modifications (e.g., freezing). In this work, novel bioelectric activation of PI using the electrons generated by electroactive bacteria was developed and investigated for rapid removal of carbamazepine (CBZ), achieving 100%, 100%, and 76% removal efficiency for 4.22 µM of CBZ in 20 minutes at pH 2, 120 minutes at pH 6.4, and HRT of 30 minutes at pH 8.5, respectively, with a 1mM PI dose and without an input voltage. It was deduced that electrons derived from bacteria could directly activate PI using Ti mesh electrodes and generate •IO3 via single electron transfer under strongly acidic conditions (e.g., pH 2). Nevertheless, under weak alkaline conditions (e.g., pH 8.5), biogenic electrons indirectly activated PI by generating OH− via 4e− reduction at the Ti mesh cathode, resulting in the formation of •O2− and 1O2. In addition to the metal cathode, a carbon-based cathode finely modulates the 2e− reduction, yielding H2O2 and activating PI to mainly form •OH. Moreover, primarily non-toxic IO3− was produced during treatment, while no detectable reactive iodine species (HOI, I2, and I3−) were observed. Furthermore, the bioelectric activation of PI demonstrated its capability to remove various micropollutants present in secondary-treated municipal wastewater, showcasing its broad-spectrum degradation ability. This study introduces a novel, cost-effective, and environmentally friendly PI activation technique with promising applicability for micropollutant elimination in water treatment.
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