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Development of a longevous two-species biophotovoltaics with constrained electron flow

机译:具有约束电子流的长寿双面生物光伏的开发

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Microbial biophotovoltaics (BPV) offers a biological solution for renewable energy production by using photosynthetic microorganisms as light absorbers. Although abiotic engineering approaches, e.g., electrode modification and device optimization, can enhance the electrochemical communication between living cells and electrodes, the power densities of BPV are still low due to the weak exoelectrogenic activity of photosynthetic microorganisms. Here, we develop a BPV based on a D-lactate mediated microbial consortium consisting of photosynthetic cyanobacteria and exoelectrogenic Shewanella. By directing solar energy from photons to D-lactate, then to electricity, this BPV generates a power density of over 150?mW·msup-2/sup in a temporal separation setup. Furthermore, a spatial-temporal separation setup with medium replenishment enables stable operation for over 40 days with an average power density of 135?mW·msup-2/sup. These results demonstrate the electron flow constrained microbial consortium can facilitate electron export from photosynthetic cells and achieve an efficient and durable power output.
机译:微生物Biophotovoltaics(BPV)通过使用光合微生物作为光吸收剂提供可再生能源生产的生物解决方案。虽然非生物工程方法,例如电极改性和器件优化,可以增强活细胞和电极之间的电化学通信,由于光合微生物的弱外部活性,BPV的功率密度仍然很低。在这里,我们开发基于D-乳酸介导的微生物联盟的BPV组成的光合胞间细胞和exoeloctencicHehechella。通过将太阳能从光子引导至D-乳酸,然后电力,该BPV在时间分离设置中产生超过150Ωmw·m -2 的功率密度。此外,具有介质补充的空间间隔设置能够稳定运行超过40天,平均功率密度为135Ωmw·m -2 。这些结果证明了电子流量受限的微生物联盟可以促进电子来自光合电池的电子,并实现高效且耐用的功率输出。

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