Field Test of a Bioelectrochemical Membrane-Less Reactor for Chlorinated Aliphatic Hydrocarbon and Nitrate Removal from a Contaminated Groundwater.

IF 2.8 4区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Geremia Sassetto, Maria Presutti, Agnese Lai, Giulia Simonetti, Laura Lorini, Marco Petrangeli Papini, Marco Zeppilli
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Abstract

This study uses a membrane-less reactor to explore the bioelectrochemical remediation of real contaminated groundwater from chlorinated aliphatic hydrocarbons (CAHs) and nitrates. The research focuses on testing a column-type bioelectrochemical reactor to stimulate in situ degradation of contaminants through the supply of electrons by a graphite granules biocathode. After a preliminary laboratory characterization and operation with a synthetic feeding solution, a field test is conducted in a real contaminated site, where the reactor demonstrates effective degradation of CAHs and inorganic anions. Notably, the cathodic potential promotes the reductive dechlorination of chlorinated species. Simultaneously, nitrate reduction, sulfate reduction, and methanogenesis occurr, influencing the overall coulombic efficiency of the process. The use of real groundwater, compared to the synthetic medium, significantly decreases the coulombic efficiency of reductive dechlorination, dropping from 2.43% to 0.01%. Concentration profiles along the bioelectrochemical reactor allow for a deeper description of the reductive dechlorination rate at different flow rates, as well as increase the knowledge about reduction and oxidation mechanisms. Scaling up the technology presents several challenges, including the optimization of coulombic efficiency and the management of competing microbial metabolisms. The study provides a valuable contribution toward advancing bioelectrochemical technologies for the bioremediation of complex contaminated sites.

生物电化学无膜反应器去除污染地下水中氯化脂肪烃和硝酸盐的现场试验。
本研究采用无膜反应器探讨了氯化脂肪烃(CAHs)和硝酸盐对实际污染地下水的生物电化学修复。该研究的重点是测试一种柱式生物电化学反应器,通过石墨颗粒生物阴极提供电子来刺激污染物的原位降解。在对合成进料溶液进行了初步的实验室表征和操作后,在实际污染现场进行了现场测试,该反应器证明了对CAHs和无机阴离子的有效降解。值得注意的是,阴极电位促进了氯代物的还原脱氯。同时发生硝酸盐还原、硫酸盐还原和甲烷生成,影响了整个过程的库仑效率。与合成介质相比,真实地下水的使用显著降低了还原脱氯的库仑效率,从2.43%降至0.01%。沿着生物电化学反应器的浓度曲线可以更深入地描述不同流速下的还原性脱氯速率,以及增加关于还原和氧化机制的知识。扩大这项技术提出了几个挑战,包括库仑效率的优化和竞争微生物代谢的管理。该研究为推进复杂污染场地生物修复的生物电化学技术提供了有价值的贡献。
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来源期刊
ChemPlusChem
ChemPlusChem CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
5.90
自引率
0.00%
发文量
200
审稿时长
1 months
期刊介绍: ChemPlusChem is a peer-reviewed, general chemistry journal that brings readers the very best in multidisciplinary research centering on chemistry. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. Fully comprehensive in its scope, ChemPlusChem publishes articles covering new results from at least two different aspects (subfields) of chemistry or one of chemistry and one of another scientific discipline (one chemistry topic plus another one, hence the title ChemPlusChem). All suitable submissions undergo balanced peer review by experts in the field to ensure the highest quality, originality, relevance, significance, and validity.
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