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Progress and perspectives in exploiting photosynthetic biomolecules for solar energy harnessing

机译:利用光合生物分子开发太阳能的进展与展望

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摘要

Photosynthetic proteins are emerging as a new class of photovoltaic materials as their nature-designed architecture and internal circuitry are so sophisticated that they carry out the initial light-driven steps of photosynthesis with approximate to 100% quantum efficiency. Research on bioinspired solar cells has increased in recent years as they promise better efficiency than the conventional p-n junction solar cells that have limited conversion efficiency (34%). Since it is a mammoth task to perfectly mimic the intricate proteins evolved in nature, the idea of interfacing the natural proteins with engineered materials seems to be propitious for developing biohybrid solar cells. Herein, we summarize various approaches in immobilizing the photosynthetic biomolecules in photovoltaic devices and the progress in the photocurrent generation achieved. This review highlights the multidisciplinary nature of photosynthetic biohybrid devices and their future prospects in light of some of the research challenges and discrepancies witnessed by this field. The fascinating aspect of this research area is that it guides the biologists to explore the possibilities of improving protein stability and robustness suitable for solar cells and inspires the solar cell researchers to explore the physics behind the working mechanisms of biohybrid solar cells which can generate novel architectures in future solar energy conversion devices.
机译:由于光合蛋白的自然设计架构和内部电路非常复杂,因此它们以一种接近100%的量子效率执行光合作用的初始光驱动步骤,因此,光合蛋白已成为一类新型的光伏材料。近年来,对生物启发型太阳能电池的研究有所增加,因为它们有望比转换效率有限的传统p-n结太阳能电池(34%)具有更高的效率。由于要完美地模仿自然界中进化出的复杂蛋白质是一项艰巨的任务,因此将天然蛋白质与工程材料相接的想法似乎有利于开发生物杂交太阳能电池。在本文中,我们总结了将光合作用生物分子固定在光伏器件中的各种方法以及实现的光电流产生的进展。鉴于该领域所面临的一些研究挑战和差异,本文综述了光合生物杂交装置的多学科性质及其未来前景。该研究领域的迷人之处在于,它引导生物学家探索提高适合太阳能电池的蛋白质稳定性和鲁棒性的可能性,并激发太阳能电池研究人员探索生物杂交太阳能电池工作机理背后的物理学,从而产生新颖的结构在未来的太阳能转换设备中。

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  • 来源
    《Energy & environmental science》 |2015年第9期|2551-2573|共23页
  • 作者单位

    Natl Univ Singapore, Dept Mat Sci & Engn, Singapore 117575, Singapore;

    Natl Univ Singapore, Dept Mat Sci & Engn, Singapore 117575, Singapore;

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  • 正文语种 eng
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  • 入库时间 2022-08-17 23:11:35

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