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一种带有生物阴极传感元件的新型微生物燃料电池传感器。

A novel microbial fuel cell sensor with biocathode sensing element.

机构信息

State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, PR China.

State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, PR China.

出版信息

Biosens Bioelectron. 2017 Aug 15;94:344-350. doi: 10.1016/j.bios.2017.02.052. Epub 2017 Mar 2.

DOI:10.1016/j.bios.2017.02.052
PMID:28319901
Abstract

The traditional microbial fuel cell (MFC) sensor with bioanode as sensing element delivers limited sensitivity to toxicity monitoring, restricted application to only anaerobic and organic rich water body, and increased potential fault warning to the combined shock of organic matter/toxicity. In this study, the biocathode for oxygen reduction reaction was employed for the first time as the sensing element in MFC sensor for toxicity monitoring. The results shown that the sensitivity of MFC sensor with biocathode sensing element (7.4±2.0 to 67.5±4.0mA%cm) was much greater than that showed by bioanode sensing element (3.4±1.5 to 5.5±0.7mA%cm). The biocathode sensing element achieved the lowest detection limit reported to date using MFC sensor for formaldehyde detection (0.0005%), while the bioanode was more applicable for higher concentration (>0.0025%). There was a quicker response of biocathode sensing element with the increase of conductivity and dissolved oxygen (DO). The biocathode sensing element made the MFC sensor directly applied to clean water body monitoring, e.g., drinking water and reclaimed water, without the amending of background organic matter, and it also decreased the warning failure when challenged by a combined shock of organic matter/toxicity.

摘要

传统的微生物燃料电池(MFC)传感器以生物阳极作为传感元件,对毒性监测的灵敏度有限,仅适用于厌氧和有机物丰富的水体,并且对有机物/毒性的综合冲击增加了潜在的故障警告。在本研究中,首次将用于氧还原反应的生物阴极用作 MFC 传感器进行毒性监测的传感元件。结果表明,带有生物阴极传感元件的 MFC 传感器的灵敏度(7.4±2.0 至 67.5±4.0mA%cm)远大于生物阳极传感元件(3.4±1.5 至 5.5±0.7mA%cm)。生物阴极传感元件实现了迄今为止使用 MFC 传感器检测甲醛的最低检测限(0.0005%),而生物阳极则更适用于更高浓度(>0.0025%)。生物阴极传感元件的响应随着电导率和溶解氧(DO)的增加而加快。生物阴极传感元件使 MFC 传感器能够直接应用于清洁水体监测,例如饮用水和再生水,无需对背景有机物进行修正,并且减少了有机物/毒性综合冲击时的故障警告失败。

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