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A cost-effective and field-ready potentiostat that poises subsurface electrodes to monitor bacterial respiration

机译:具有成本效益且可现场使用的恒电位仪,可调节地下电极以监测细菌呼吸

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Here, we present the proof-of-concept for a subsurface bioelectrochemical system (BES)-based biosensor capable of monitoring microbial respiration that occurs through exocellular electron transfer. This system includes our open-source design of a three-channel microcontroller-unit (MCU)-based potentiostat that is capable of chronoamperometry, which laboratory tests showed to be accurate within 0.95 ± 0.58% (95% Confidence Limit) of a commercial potentiostat. The potentiostat design is freely available online: http://angenent.bee.cornell.edu/potentiostat.html. This robust and field-ready potentiostat, which can withstand temperatures of -30°C, can be manufactured at relatively low cost ($600), thus, allowing for en-masse deployment at field sites. The MCU-based potentiostat was integrated with electrodes and a solar panel-based power system, and deployed as a biosensor to monitor microbial respiration in drained thaw lake basins outside Barrow, AK. At three different depths, the working electrode of a microbial three-electrode system (M3C) was maintained at potentials corresponding to the microbial reduction of iron(III) compounds and humic acids. Thereby, the working electrode mimics these compounds and is used by certain microbes as an electron acceptor. The sensors revealed daily cycles in microbial respiration. In the medium- and deep-depth electrodes the onset of these cycles followed a considerable increase in overall activity that corresponded to those soils reaching temperatures conducive to microbial activity as the summer thaw progressed. The BES biosensor is a valuable tool for studying microbial activity in situ in remote environments, and the cost-efficient design of the potentiostat allows for wide-scale use in remote areas.
机译:在这里,我们介绍了基于地下生物电化学系统(BES)的生物传感器的概念验证,该传感器能够监控通过胞外电子转移发生的微生物呼吸。该系统包括我们基于三通道微控制器单元(MCU)的恒电位仪的开源设计,该恒电位仪能够进行计时电流分析,实验室测试表明该精度在商用恒电位仪的0.95±0.58%(95%置信限)内。恒电位仪设计可在线免费获得:http://angenent.bee.cornell.edu/potentiostat.html。这种坚固耐用且可现场使用的恒电位仪可以承受-30°C的温度,并且可以用相对较低的成本(600美元)制造,因此可以在现场现场进行大规模部署。基于MCU的恒电位仪已与电极和基于太阳能电池板的电源系统集成在一起,并被部署为生物传感器,用于监测位于阿拉巴马州巴罗市外的排水融化湖盆中的微生物呼吸。在三个不同的深度,微生物三电极系统(M3C)的工作电极保持在与微生物还原铁(III)化合物和腐殖酸相对应的电势下。因此,工作电极模拟这些化合物,并被某些微生物用作电子受体。传感器显示出微生物呼吸的每日周期。在中深度电极中,这些循环的开始伴随着总体活动的显着增加,这对应于随着夏季融化的进行而达到有利于微生物活动的温度的土壤。 BES生物传感器是用于在偏远环境中就地研究微生物活动的有价值的工具,而且恒电位仪的经济高效设计使其可以在偏远地区广泛使用。

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