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A microfluidic microbial fuel cell array that supports long-term multiplexed analyses of electricigens

机译:一种微流控微生物燃料电池阵列,可对电试剂进行长期多重分析

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Microbial fuel cells (MFCs) are green energy technologies that exploit microbial metabolism to generate electricity. The widespread implementation of MFC technologies has been stymied by their high cost and limited power. MFC arrays in which device configurations or microbial consortia can be screened have generated significant interest because of their potential for defining aspects that will improve performance featuring high throughput characteristics. However, current miniature MFCs and MFC array systems do not support long-term studies that mimic field conditions, and hence, have limitations in fully characterizing and understanding MFC performances in varieties of conditions. Here, we describe an MFC array device that incorporates microfluidic technology to enable continuous long-term analysis of MFC performance at high throughput utilizing periodic anolyte/catholyte replenishment. The system showed 360% higher power output and 700% longer operating time when compared to MFC arrays without catholyte replenishment. We further demonstrate the utility of the system by reporting its successful use in screening microbial consortia collected from geographically diverse environments for communities that support enhanced MFC performance. Taken together, this work demonstrates that anolyte/catholyte replenishment can significantly improve the long-term performance of microfabricated MFC arrays, and support the characterization of diverse microbial consortia.
机译:微生物燃料电池(MFCs)是利用微生物新陈代谢来发电的绿色能源技术。 MFC技术的广泛实施因其成本高昂和功能有限而受到阻碍。可以在其中筛选设备配置或微生物群落的MFC阵列引起了人们极大的兴趣,因为它们具有定义可以改善具有高通量特性的性能的方面的潜力。但是,当前的微型MFC和MFC阵列系统不支持模拟现场条件的长期研究,因此在全面表征和理解各种条件下的MFC性能方面存在局限性。在这里,我们描述了一种MFC阵列设备,该设备结合了微流体技术,能够利用周期性的阳极电解液/阴极电解液补给以高通量连续进行长期的MFC性能分析。与没有补充阴极电解液的MFC阵列相比,该系统显示出360%的更高功率输出和700%的工作时间。我们通过报告其在筛选从地理上不同的环境中收集到的微生物群落的成功使用中,进一步证明了该系统的实用性,这些群落支持增强的MFC性能。两者合计,这项工作表明,阳极电解液/阴极电解液的补充可以显着改善微细MFC阵列的长期性能,并支持各种微生物联合体的表征。

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