Department of Environmental Microbiology, Helmholtz Centre for Environmental Research GmbH - UFZ, Permoser Str. 15, 04318, Leipzig, Germany.
ChemSusChem. 2021 Feb 18;14(4):1155-1165. doi: 10.1002/cssc.202002611. Epub 2021 Jan 19.
Bed electrodes provide high electrode area-to-volume ratios represent a promising configuration for transferring bioelectrochemical systems close to industrial applications. Nevertheless, the intrinsic electrical resistance leads to poor polarization behavior. Therefore, the distribution of Geobacter spp. and their electrochemical performance within exemplary fixed-bed electrodes are investigated. A minimally invasive sampling system allows characterization of granules from different spatial locations of bed electrodes. Cyclic voltammetry of single granules (n=63) demonstrates that the major share of electroactivity (134.3 mA L ) is achieved by approximately 10 % of the bed volume, specifically that being close to the current collector. Nevertheless, analysis of the microbial community reveals that Geobacter spp. dominated all sampled granules. These findings clearly demonstrate the need for engineered bed electrodes to improve electron exchange between microorganisms and granules.
床电极提供了高的电极面积与体积比,代表了一种很有前途的配置,可将生物电化学系统接近工业应用。然而,固有的电阻导致较差的极化行为。因此,研究了 Geobacter spp. 在典型固定床电极内的分布及其电化学性能。一个微创采样系统允许对床电极不同空间位置的颗粒进行表征。对单个颗粒(n=63)进行的循环伏安法研究表明,主要的电化学活性(134.3 mA·L)由大约 10%的床体积实现,特别是靠近集电器的部分。然而,微生物群落的分析表明,Geobacter spp. 主导了所有采样颗粒。这些发现清楚地表明需要设计床电极来改善微生物和颗粒之间的电子交换。