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基于硅的微制造微生物燃料电池毒性传感器。

Silicon-based microfabricated microbial fuel cell toxicity sensor.

机构信息

Universidad Autónoma de Barcelona, Departamento de Genética y de Microbiología, Campus UAB, 08193 Bellaterra, Barcelona, Spain.

出版信息

Biosens Bioelectron. 2011 Jan 15;26(5):2426-30. doi: 10.1016/j.bios.2010.10.025. Epub 2010 Oct 21.

DOI:10.1016/j.bios.2010.10.025
PMID:21074397
Abstract

Microbial fuel cells (MFCs) have been used for several years as biosensors for measuring environmental parameters such as biochemical oxygen demand and water toxicity. The present study is focused on the detection of toxic matter using a novel silicon-based MFC. Like other existing toxicity sensors based on MFCs, this device is capable of detecting the variation on the current produced by the cell when toxic compounds are present in the medium. The MFC approach presented in this work aims to obtain a simple, compact and planar device for its further application as a biosensor in the design and fabrication of equipment for toxicity monitoring. It consists on a proton exchange membrane placed between two microfabricated silicon plates that act as current collectors. An array of square 80 μm × 80 μm vertical channels, 300 μm deep, have been defined trough the plates over an area of 6 mm × 6 mm. The final testing assembly incorporates two perspex pieces positioned onto the plates as reservoirs with a working volume of 144 μL per compartment. The operation of the microdevice as a direct electron transfer MFC has been validated by comparing its performance against a larger scale MFC, run under the same conditions. The device has been tested as a toxicity sensor by setting it at a fixed current while monitoring changes in the output power. A drop in the power production is observed when a toxic compound is added to the anode compartment. The compact design of the device makes it suitable for its incorporation into measurement equipment either as an individual device or as an array of sensors for high throughput processing.

摘要

微生物燃料电池(MFC)已经被用于测量环境参数,如生化需氧量和水毒性的生物传感器多年。本研究集中在使用新型硅基 MFC 检测有毒物质。与其他基于 MFC 的现有毒性传感器一样,该装置能够检测到有毒化合物存在于介质中时细胞产生的电流变化。本工作中提出的 MFC 方法旨在获得一种简单、紧凑和平面的装置,以便将其进一步应用于毒性监测设备的设计和制造中的生物传感器。它由质子交换膜放置在两个微加工硅片之间组成,这两个硅片作为电流收集器。在 6mm×6mm 的面积上,通过硅片定义了一个 80μm×80μm 的正方形垂直通道阵列,深度为 300μm。最终的测试组件包括两个置于硅片上的有机玻璃片作为工作体积为 144μL/腔的储液器。通过将其与在相同条件下运行的更大规模的 MFC 进行比较,验证了微器件作为直接电子转移 MFC 的性能。通过将其设置为固定电流同时监测输出功率的变化,将该装置测试为毒性传感器。当向阳极室中添加有毒化合物时,观察到功率产生下降。该装置的紧凑设计使其适合于将其集成到测量设备中,无论是作为单个装置还是作为用于高通量处理的传感器阵列。

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