Cecconet Daniele, Sabba Fabrizio, Devecseri Matyas, Callegari Arianna, Capodaglio Andrea G
Department of Civil Engineering and Architecture, University of Pavia, Via Adolfo Ferrata 3, 27100 Pavia, Italy.
Department of Earth and Planetary Sciences, Northwestern University, 2145 Sheridan Road, Evanston, IL 60208, USA.
Environ Int. 2020 Apr;137:105550. doi: 10.1016/j.envint.2020.105550. Epub 2020 Feb 18.
Groundwater contamination is an ever-growing environmental issue that has attracted much and undiminished attention for the past half century. Groundwater contamination may originate from both anthropogenic (e.g., hydrocarbons) and natural compounds (e.g., nitrate and arsenic); to tackle the removal of these contaminants, different technologies have been developed and implemented. Recently, bioelectrochemical systems (BES) have emerged as a potential treatment for groundwater contamination, with reported in situ applications that showed promising results. Nitrate and hydrocarbons (toluene, phenanthrene, benzene, BTEX and light PAHs) have been successfully removed, due to the interaction of microbial metabolism with poised electrodes, in addition to physical migration due to the electric field generated in a BES. The selection of proper BESs relies on several factors and problems, such as the complexity of groundwater and subsoil environment, scale-up issues, and energy requirements that need to be accounted for. Modeling efforts could help predict case scenarios and select a proper design and approach, while BES-based biosensing could help monitoring remediation processes. In this review, we critically analyze in situ BES applications for groundwater remediation, focusing in particular on different proposed setups, and we identify and discuss the existing research gaps in the field.
地下水污染是一个日益严重的环境问题,在过去半个世纪里一直备受关注且热度不减。地下水污染可能源自人为化合物(如碳氢化合物)和天然化合物(如硝酸盐和砷);为解决这些污染物的去除问题,人们开发并应用了不同的技术。最近,生物电化学系统(BES)已成为一种潜在的地下水污染处理方法,已有原位应用报告显示出了良好的效果。硝酸盐和碳氢化合物(甲苯、菲、苯、BTEX和轻质多环芳烃)已成功去除,这归因于微生物代谢与固定电极的相互作用,以及生物电化学系统中产生的电场导致的物理迁移。选择合适的生物电化学系统取决于多个因素和问题,如地下水和底土环境的复杂性、放大问题以及需要考虑的能量需求。建模工作有助于预测实际情况并选择合适的设计和方法,而基于生物电化学系统的生物传感则有助于监测修复过程。在本综述中,我们批判性地分析了生物电化学系统在地下水修复中的原位应用,特别关注不同的提议设置,并识别和讨论了该领域现有的研究空白。