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在具有发电和除盐功能的微生物脱盐电池的生物阴极中降解苯酚。

Degradation of phenol in the bio-cathode of a microbial desalination cell with power generation and salt removal.

机构信息

Department of Biochemical Engineering, Faculty of Chemical Engineering, Tarbiat Modares University, Tehran, Iran.

Department of Biochemical Engineering, Faculty of Chemical Engineering, Tarbiat Modares University, Tehran, Iran.

出版信息

Bioelectrochemistry. 2022 Dec;148:108258. doi: 10.1016/j.bioelechem.2022.108258. Epub 2022 Sep 6.

Abstract

In this study, the performance of a three-chamber microbial desalination cell (MDC) was assessed to simultaneously remove salt (35 g.L) from water and degrade phenol as a hazardous compound. Two parallel MDCs with the same configurations were run using glucose as the chemical oxygen demand (COD) at an initial concentration of 1.5 g.L as the anolyte. MDC#1 operated with 10 mM phosphate buffer solution (PBS), while MDC#2 operated with bio-cathode as the catholyte for the degradation of 100 mg.L of phenol. The use of MDC#1 resulted in a power density, desalination efficiency, and COD removal of 366.2 mW.m, 50.3 ± 4.0 %, and 79.3 ± 2.2 %, respectively. All performance parameters were improved in MDC#2 with bio-cathode so that power density, desalination efficiency, and COD removal reached 660.1 mW.m, 72.1 ± 3.0 %, and 92.6 ± 2.4 %, respectively. Also, more than 96 % of phenol was degraded using bio-cathode within 7 h of operation. Bio-cathode could enhance the performance of the MDC reactor through catalyzing the final reactions of electron acceptors compared to MDC#1 with a chemical cathode. In general, the results indicated that heterotrophic microorganisms, able to grow alongside autotrophic bacteria, could effectively extend the applications of MDC reactors to degrade hazardous compounds in cathode chambers.

摘要

在这项研究中,评估了三室微生物脱盐电池 (MDC) 的性能,以同时去除水中的盐分 (35g/L) 和降解作为危险化合物的苯酚。使用葡萄糖作为化学需氧量 (COD),初始浓度为 1.5g/L,作为阳极电解液,运行了两个具有相同配置的平行 MDC。MDC#1 采用 10mM 磷酸盐缓冲溶液 (PBS) 作为电解液,而 MDC#2 采用生物阴极作为电解液,用于降解 100mg/L 的苯酚。使用 MDC#1 的结果是功率密度、脱盐效率和 COD 去除率分别为 366.2mW.m、50.3±4.0%和 79.3±2.2%。在使用生物阴极的 MDC#2 中,所有性能参数都得到了提高,功率密度、脱盐效率和 COD 去除率分别达到 660.1mW.m、72.1±3.0%和 92.6±2.4%。此外,使用生物阴极在 7 小时的运行时间内可将苯酚降解超过 96%。与使用化学阴极的 MDC#1 相比,生物阴极通过催化电子受体的最终反应,可以增强 MDC 反应器的性能。总的来说,结果表明,能够与自养细菌一起生长的异养微生物可以有效地扩展 MDC 反应器的应用范围,用于降解阴极室内的危险化合物。

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