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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 >Enzymatic fuel cells: Integrating flow-through anode and air-breathing cathode into a membrane-less biofuel cell design
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Enzymatic fuel cells: Integrating flow-through anode and air-breathing cathode into a membrane-less biofuel cell design

机译:酶促燃料电池:将流通式阳极和吸气阴极整合到无膜生物燃料电池设计中

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摘要

One of the key goals of enzymatic biofuel cells research has been the development of a fully enzymatic biofuel cell that operates under a continuous flow-through regime. Here, we present our work on achieving this task. Two NAD~+-dependent dehydrogenase enzymes; malate dehydrogenase (MDH) and alcohol dehydrogenase (ADH) were independently coupled with poly-methylene green (poly-MG) catalyst for biofuel cell anode fabrication. A fungal laccase that catalyzes oxygen reduction via direct electron transfer (DET) was used as an air-breathing cathode. This completes a fully enzymatic biofuel cell that operates in a flow-through mode of fuel supply polarized against an air-breathing bio-cathode. The combined, enzymatic, MDH-laccase biofuel cell operated with an open circuit voltage (OCV) of 0.584V, whereas the ADH-laccase biofuel cell sustained an OCV of 0.618V. Maximum volumetric power densities approaching 20μWcm~(-3) are reported, and characterization criteria that will aid in future optimization are discussed.
机译:酶促生物燃料电池研究的关键目标之一是开发在连续流通方式下运行的完全酶促生物燃料电池。在这里,我们介绍了完成这项任务的工作。两种NAD〜+依赖性脱氢酶;苹果酸脱氢酶(MDH)和醇脱氢酶(ADH)分别与聚亚甲基绿(poly-MG)催化剂偶联用于生物燃料电池阳极制造。通过直接电子转移(DET)催化氧还原的真菌漆酶用作呼吸阴极。这样就完成了一个完全酶促的生物燃料电池,该燃料电池在流通的燃料供应模式下运行,该模式与空气呼吸生物阴极极化。组合的酶促MDH-漆酶生物燃料电池的开路电压(OCV)为0.584V,而ADH-漆酶生物燃料电池的OCV为0.618V。报告了最大体积功率密度接近20μWcm〜(-3),并讨论了有助于未来优化的表征标准。

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