In Situ Coupling of Reduction and Oxidation Processes with Alternating Current-Driven Bioelectrodes for Efficient Mineralization of Refractory Pollutants

IF 11.6 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Engineering Pub Date : 2024-12-01 DOI:10.1016/j.eng.2024.05.009
Ye Yuan , Junjie Zhang , Wanxin Yin , Lulu Zhang , Lin Li , Tianming Chen , Cheng Ding , Wenzong Liu , Aijie Wang , Fan Chen
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Abstract

The effective elimination of aromatic compounds from wastewater is imperative for safeguarding the ecological environment. Bioelectrochemical processes that combine cathodic reduction and anodic oxidation represent a promising approach for the biomineralization of aromatic compounds. However, conventional direct current bioelectrochemical methods have intrinsic limitations. In this study, a low-frequency and low-voltage alternating current (LFV-AC)-driven bioelectrode offering periodic in situ coupling of reduction and oxidation processes was developed for the biomineralization of aromatic compounds, as exemplified by the degradation of alizarin yellow R (AYR). LFV-AC stimulated biofilm demonstrated efficient bidirectional electron transfer and oxidation–reduction bifunctionality, considerably boosting AYR reduction (63.07% ± 1.91%) and subsequent mineralization of intermediate products (98.63% ± 0.37%). LFV-AC stimulation facilitated the assembly of a collaborative microbiome dedicated to AYR metabolism, characterized by an increased abundance of functional consortia proficient in azo dye reduction (Stenotrophomonas and Bradyrhizobium), aromatic intermediate oxidation (Sphingopyxis and Sphingomonas), and electron transfer (Geobacter and Pseudomonas). The collaborative microbiome demonstrated a notable enrichment of functional genes encoding azo- and nitro-reductases, catechol oxygenases, and redox mediator proteins. These findings highlight the effectiveness of LFV-AC stimulation in boosting azo dye biomineralization, offering a novel and sustainable approach for the efficient removal of refractory organic pollutants from wastewater.
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利用交变电流驱动的生物电极原位耦合还原和氧化过程,实现难降解污染物的高效矿化
有效去除废水中的芳香族化合物对保护生态环境至关重要。结合阴极还原和阳极氧化的生物电化学过程是芳香族化合物生物矿化的一种很有前途的方法。然而,传统的直流生物电化学方法存在固有的局限性。本研究以茜素黄R (AYR)的降解为例,开发了一种低频低压交流电(LFV-AC)驱动的生物电极,提供周期性的原位还原和氧化耦合过程,用于芳香化合物的生物矿化。LFV-AC刺激的生物膜表现出高效的双向电子传递和氧化还原双功能,显著提高了AYR的还原率(63.07%±1.91%)和中间产物的矿化率(98.63%±0.37%)。LFV-AC刺激促进了致力于AYR代谢的协同微生物组的组装,其特征是精通偶氮染料还原(窄养单胞菌和慢生根瘤菌),芳香中间体氧化(鞘氨单胞菌和鞘氨单胞菌)和电子转移(地杆菌和假单胞菌)的功能团的丰度增加。协作微生物组显示出编码偶氮和硝基还原酶、儿茶酚加氧酶和氧化还原介质蛋白的功能基因的显著富集。这些发现强调了LFV-AC刺激在促进偶氮染料生物矿化方面的有效性,为有效去除废水中的难降解有机污染物提供了一种新的可持续方法。
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来源期刊
Engineering
Engineering Environmental Science-Environmental Engineering
自引率
1.60%
发文量
335
审稿时长
35 days
期刊介绍: Engineering, an international open-access journal initiated by the Chinese Academy of Engineering (CAE) in 2015, serves as a distinguished platform for disseminating cutting-edge advancements in engineering R&D, sharing major research outputs, and highlighting key achievements worldwide. The journal's objectives encompass reporting progress in engineering science, fostering discussions on hot topics, addressing areas of interest, challenges, and prospects in engineering development, while considering human and environmental well-being and ethics in engineering. It aims to inspire breakthroughs and innovations with profound economic and social significance, propelling them to advanced international standards and transforming them into a new productive force. Ultimately, this endeavor seeks to bring about positive changes globally, benefit humanity, and shape a new future.
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