首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Air-cathode microbial fuel cell array: A device for identifying and characterizing electrochemically active microbes
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Air-cathode microbial fuel cell array: A device for identifying and characterizing electrochemically active microbes

机译:空气阴极微生物燃料电池阵列:一种用于识别和表征电化学活性微生物的装置

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Microbial fuel cells (MFCs) have generated excitement in environmental and bioenergy communities due to their potential for coupling wastewater treatment with energy generation and powering diverse devices. The pursuit of strategies such as improving microbial cultivation practices and optimizing MFC devices has increased power generating capacities of MFCs. However, surprisingly few microbial species with electrochemical activity in MFCs have been identified because current devices do not support parallel analyses or high throughput screening. We have recently demonstrated the feasibility of using advanced microfabrication methods to fabricate an MFC microarray. Here, we extend these studies by demonstrating a microfabricated air-cathode MFC array system. The system contains 24 individual air-cathode MFCs integrated onto a single chip. The device enables the direct and parallel comparison of different microbes loaded onto the array. Environmental samples were used to validate the utility of the air-cathode MFC array system and two previously identified isolates, 7Ca (Shewanella sp.) and 3C (Arthrobacter sp.), were shown to display enhanced electrochemical activities of 2.69mW/m~2 and 1.86mW/m~2, respectively. Experiments using a large scale conventional air-cathode MFC validated these findings. The parallel air-cathode MFC array system demonstrated here is expected to promote and accelerate the discovery and characterization of electrochemically active microbes.
机译:微生物燃料电池(MFCs)具有将废水处理与能量产生结合在一起并为各种设备供电的潜力,因此在环境和生物能源领域引起了极大的兴趣。对诸如改善微生物培养实践和优化MFC设备之类的策略的追求增加了MFC的发电能力。但是,由于当前的设备不支持并行分析或高通量筛选,因此令人惊讶的是,在MFC中很少发现具有电化学活性的微生物。我们最近已经证明了使用先进的微制造方法来制造MFC微阵列的可行性。在这里,我们通过演示微型空气阴极MFC阵列系统来扩展这些研究。该系统包含集成在单个芯片上的24个独立的空气阴极MFC。该设备可以对装载到阵列上的不同微生物进行直接和并行比较。使用环境样品验证了空气阴极MFC阵列系统的实用性,并且先前鉴定出的两个分离株7Ca(Shewanella sp。)和3C(Arthrobacter sp。)具有增强的2.69mW / m〜2的电化学活性。和1.86mW / m〜2。使用大型常规空气阴极MFC进行的实验验证了这些发现。此处展示的平行空气阴极MFC阵列系统有望促进和加速电化学活性微生物的发现和表征。

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