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一种用于自供电发电的微型生物太阳能电池。

A micro-sized bio-solar cell for self-sustaining power generation.

作者信息

Lee Hankeun, Choi Seokheun

机构信息

Bioelectronics & Microsystems Laboratory, Department of Electrical & Computer Engineering, State University of New York-Binghamton, Binghamton, NY 13902, USA.

出版信息

Lab Chip. 2015 Jan 21;15(2):391-8. doi: 10.1039/c4lc01069h.

Abstract

Self-sustainable energy sources are essential for a wide array of wireless applications deployed in remote field locations. Due to their self-assembling and self-repairing properties, "biological solar (bio-solar) cells" are recently gaining attention for those applications. The bio-solar cell can continuously generate electricity from microbial photosynthetic and respiratory activities under day-night cycles. Despite the vast potential and promise of bio-solar cells, they, however, have not yet successfully been translated into commercial applications, as they possess persistent performance limitations and scale-up bottlenecks. Here, we report an entirely self-sustainable and scalable microliter-sized bio-solar cell with significant power enhancement by maximizing solar energy capture, bacterial attachment, and air bubble volume in well-controlled microchambers. The bio-solar cell has a ~300 μL single chamber defined by laser-machined poly(methyl methacrylate) (PMMA) substrates and it uses an air cathode to allow freely available oxygen to act as an electron acceptor. We generated a maximum power density of 0.9 mW m(-2) through photosynthetic reactions of cyanobacteria, Synechocystis sp. PCC 6803, which is the highest power density among all micro-sized bio-solar cells.

摘要

对于部署在偏远地区的众多无线应用而言,自我维持的能源至关重要。由于其自组装和自我修复特性,“生物太阳能电池”最近在这些应用中受到关注。生物太阳能电池能够在昼夜循环下通过微生物的光合作用和呼吸活动持续发电。尽管生物太阳能电池具有巨大潜力和前景,但由于其存在持续的性能限制和扩大规模的瓶颈,尚未成功转化为商业应用。在此,我们报告了一种完全自我维持且可扩展的微升尺寸生物太阳能电池,通过在精心控制的微腔室中最大化太阳能捕获、细菌附着和气团体积,其功率得到显著增强。该生物太阳能电池有一个由激光加工的聚甲基丙烯酸甲酯(PMMA)基板定义的约300微升单腔室,并使用空气阴极使可自由获取的氧气充当电子受体。我们通过蓝藻聚球藻属PCC 6803的光合作用反应产生了0.9毫瓦每平方米的最大功率密度,这是所有微型生物太阳能电池中最高的功率密度。

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