Sánchez Carlos, Khandelwal Amitap, Lens Piet N L
University of Galway University Road H91 TK33 Ireland
RSC Adv. 2025 Jun 25;15(27):21568-21581. doi: 10.1039/d5ra03133h. eCollection 2025 Jun 23.
A set of six low-cost 3D printed microbial electrochemical cells (MECs), each containing four electrodes and one ceramic membrane were constructed. The electrodes included a polarized working electrode (WE, polarized at +0.2 V Ag/AgCl), a reference electrode (RE) and a counter electrode (CE) typical in three-electrode electrochemical cells and an additional fourth electrode , auxiliary electrode (AE). The AE was identical to the WE, but it was kept in open circuit. This study was conducted to evaluate the potential of AE as a measurement of the bulk potential and control for the effect of polarization of the WE. Two different salinity levels, , 12 and 50 mS cm were tested in triplicate along with propionate concentrations of 0.1 g L and 1 g L to study the oxidation of propionate by the microbial community present in the reactor. Continuous monitoring of the electrode potentials, cyclic voltammetry (CV) at different scan rates and electrochemical impedance spectroscopy (EIS) data were obtained throughout the experiment to compare the results from the AE and the WE. The open-circuit auxiliary electrode (AE) was useful to control the state of the electrolyte and to distinguish changes in the system caused by the continuous polarization. The use of the AE allowed to compare the changes in the EIS diffusion slope caused by the WE polarization. This study showed that AE in MECs helps to understand and predict the electrochemical reactions more precisely.
构建了一组六个低成本的3D打印微生物电化学电池(MEC),每个电池包含四个电极和一个陶瓷膜。电极包括一个极化工作电极(WE,在+0.2 V Ag/AgCl下极化)、一个参比电极(RE)和一个对电极(CE),这是三电极电化学电池中的典型电极,还有一个额外的第四电极,即辅助电极(AE)。AE与WE相同,但保持开路状态。进行这项研究是为了评估AE作为测量本体电位和控制WE极化效应的潜力。测试了两种不同的盐度水平,即12和50 mS cm,并分别设置了0.1 g L和1 g L的丙酸盐浓度,一式三份,以研究反应器中微生物群落对丙酸盐的氧化作用。在整个实验过程中持续监测电极电位,获取不同扫描速率下的循环伏安法(CV)和电化学阻抗谱(EIS)数据,以比较AE和WE的结果。开路辅助电极(AE)有助于控制电解质状态,并区分由持续极化引起的系统变化。使用AE可以比较由WE极化导致的EIS扩散斜率的变化。这项研究表明,MEC中的AE有助于更精确地理解和预测电化学反应。