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基于防水透气膜的阴极对生物电化学系统性能和生物膜微生物组的影响。

Effect of waterproof breathable membrane based cathodes on performance and biofilm microbiomes in bioelectrochemical systems.

机构信息

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China..

出版信息

Sci Total Environ. 2021 Jan 20;753:142281. doi: 10.1016/j.scitotenv.2020.142281. Epub 2020 Sep 8.

Abstract

A novel method for fabricating air-cathodes was developed by assembling an activated carbon (AC) catalyst together with a waterproof breathable membrane (WBM) and stainless steel mesh (SSM) to reduce manufacturing costs of bioelectrochemical systems (BESs). WBMs made of different materials were tested in the assembly, including a hybrid of polypropylene and polyolefin (PPPO), polyethylene (PE), and polyurethane (PU), and compared against poly tetrafluoroethylene (PTFE)-based cathodes. Results showed that the maximum power density of the activated carbon-stainless steel mesh-polyurethane (AC@SSM/PU) assembly was 2.03 W/m while that of conventional carbon cloth cathode assembly (Pt@CC/PTFE) was 1.51 W/m. Compared to conventional cathode fabrication, AC@SSM/PU had a much lower cost and simpler manufacturing process. Illumina Miseq sequencing of 16S rRNA gene amplicons indicated that microbiomes were substantially different between anode and cathode biofilms. There was also a difference in the community composition between different cathode biofilms. The predominant population in the anode biofilms was Geobacter (38-75% relative abundance), while Thauera and Pseudomonas dominated the cathode biofilms. The results demonstrated that different types of air-cathodes influenced the microbial community assembly on the electrodes.

摘要

开发了一种新型空气阴极制备方法,即将活性炭 (AC) 催化剂与防水透气膜 (WBM) 和不锈钢网 (SSM) 组装在一起,以降低生物电化学系统 (BES) 的制造成本。在组装过程中测试了不同材料的 WBM,包括聚丙烯和聚烯烃 (PPPO)、聚乙烯 (PE) 和聚氨酯 (PU) 的混合物,并与基于聚四氟乙烯 (PTFE) 的阴极进行了对比。结果表明,活性炭-不锈钢网-聚氨酯 (AC@SSM/PU) 组件的最大功率密度为 2.03 W/m,而传统碳布阴极组件 (Pt@CC/PTFE) 的最大功率密度为 1.51 W/m。与传统阴极制造相比,AC@SSM/PU 的成本更低,制造工艺更简单。Illumina Miseq 测序 16S rRNA 基因扩增子表明,阳极和阴极生物膜中的微生物群落有很大的不同。不同阴极生物膜之间的群落组成也存在差异。阳极生物膜中的主要种群是 Geobacter(相对丰度为 38-75%),而阴极生物膜中则以 Thauera 和 Pseudomonas 为主。结果表明,不同类型的空气阴极会影响电极上的微生物群落组装。

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