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打开微生物燃料电池传感器的外部电路,以监测水环境污染中的硝酸盐。

Open external circuit for microbial fuel cell sensor to monitor the nitrate in aquatic environment.

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. 2018 Jul 15;111:97-101. doi: 10.1016/j.bios.2018.04.018. Epub 2018 Apr 10.

Abstract

This study employed an open external circuit, rather than a closed circuit applied in previous studies, to operate an microbial fuel cell (MFC) sensor for real-time nitrate monitoring, and achieved surprisingly greater sensitivity (4.42 ± 0.3-6.66 ± 0.4 mV/(mg/L)) when the nitrate was at a concentration of 10-40 mg/L, compared to that of the MFC sensor with a closed circuit (0.8 ± 0.05-1.6 ± 0.1 mV/(mg/L)). The MFC sensor operated in open circuit (O-MFC sensor) delivered much more stable performance than that operated in closed circuit (C-MFC sensor) when affected by organic matter (NaAc). The sensitivity of O-MFC sensor was twice that of C-MFC sensor at a low background concentration of organic matter. When organic matter reached a high concentration, the sensitivity of O-MFC sensor remained at an acceptable level, while that of C-MFC sensor dropped to almost zero. Challenged by a combined shock of organic matter and nitrate, O-MFC sensor delivered evident electrical signals for nitrate warning, while C-MFC failed. Another novel feature of this study lies in a new mathematical model to examine the bioanode process of nitrate monitoring. It revealed that lower capacitance of the bioanode in O-MFC was the major contributor to the improved sensitivity of the device.

摘要

本研究采用开式外电路,而非先前研究中应用的闭式电路,来操作微生物燃料电池(MFC)传感器,以实现实时硝酸盐监测,并且在硝酸盐浓度为 10-40mg/L 时,与闭式电路的 MFC 传感器相比,实现了惊人的更高灵敏度(4.42±0.3-6.66±0.4mV/(mg/L))(0.8±0.05-1.6±0.1mV/(mg/L))。当受有机物(NaAc)影响时,开式电路(O-MFC 传感器)操作的 MFC 传感器比闭式电路(C-MFC 传感器)具有更稳定的性能。在低背景有机物浓度下,O-MFC 传感器的灵敏度是 C-MFC 传感器的两倍。当有机物达到高浓度时,O-MFC 传感器的灵敏度仍保持在可接受的水平,而 C-MFC 传感器的灵敏度降至几乎为零。当受到有机物和硝酸盐的综合冲击时,O-MFC 传感器为硝酸盐预警提供了明显的电信号,而 C-MFC 传感器则没有。本研究的另一个新颖特点在于一种新的数学模型,用于检查硝酸盐监测的生物阳极过程。结果表明,O-MFC 中生物阳极的较低电容是提高设备灵敏度的主要原因。

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