State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, PR China.
Department of Agricultural and Biosystems Engineering, South Dakota State University, Brookings, SD 57007 USA.
Water Res. 2023 Mar 1;231:119630. doi: 10.1016/j.watres.2023.119630. Epub 2023 Jan 19.
Microbial extracellular electron transfer (EET) plays a crucial role in bioenergy production and resource recovery from wastewater. Interdisciplinary efforts have been made to unveil EET processes at various spatial scales, from nanowires to microbial aggregates. Electrical conductivity has been frequently measured as an indicator of EET efficiency. In this review, the conductivity of nanowires, biofilms, and granular sludge was summarized, and factors including subjects, measurement methods, and conducting conditions that affect the conductivity difference were discussed in detail. The high conductivity of nanowires does not necessarily result in efficient EET in microbial aggregates due to the existence of non-conductive substances and contact resistance. Improving the conductivity measurement of microbial aggregates is important because it enables the calculation of an EET flux from conductivity and a comparison of the flux with mass transfer coefficients. This review provides new insight into the significance, characterization, and optimization of EET in microbial aggregates during a wastewater treatment process.
微生物细胞外电子传递 (EET) 在生物能源生产和从废水中回收资源方面起着至关重要的作用。各学科已经做出了努力,以揭示各种空间尺度(从纳米线到微生物聚集体)的 EET 过程。电导率经常被用作 EET 效率的指标。在这篇综述中,总结了纳米线、生物膜和颗粒污泥的电导率,并详细讨论了影响电导率差异的因素,包括研究对象、测量方法和导电条件。由于存在非导电物质和接触电阻,纳米线的高导电性并不一定导致微生物聚集体中有效的 EET。改善微生物聚集体的电导率测量非常重要,因为它可以从电导率计算 EET 通量,并将通量与传质系数进行比较。这篇综述为污水处理过程中微生物聚集体中 EET 的重要性、表征和优化提供了新的见解。