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Inverted-region electron transfer as a mechanism for enhancing photosynthetic solar energy conversion efficiency

机译:反转区电子转移作为提高光合太阳能转化效率的机制

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摘要

In all photosynthetic organisms, light energy is used to drive electrons from a donor chlorophyll species via a series of acceptors across a biological membrane. These light-induced electron-transfer processes display a remarkably high quantum efficiency, indicating a near-complete inhibition of unproductive charge recombination reactions. It has been suggested that unproductive charge recombination could be inhibited if the reaction occurs in the so-called inverted region. However, inverted-region electron transfer has never been demonstrated in any native photosynthetic system. Here we demonstrate that the unproductive charge recombination in native photosystem I photosynthetic reaction centers does occur in the inverted region, at both room and cryogenic temperatures. Computational modeling of light-induced electron-transfer processes in photosystem I demonstrate a marked decrease in photosynthetic quantum efficiency, from 98% to below 72%, if the unproductive charge recombination process does not occur in the inverted region. Inverted-region electron transfer is therefore demonstrated to be an important mechanism contributing to efficient solar energy conversion in photosystem I. Inverted-region electron transfer does not appear to be an important mechanism in other photosystems; it is likely because of the highly reducing nature of photosystem I, and the energetic requirements placed on the pigments to operate in such a regime, that the inverted-region electron transfer mechanism becomes important.
机译:在所有光合作用生物中,光能用于通过一系列生物膜上的一系列受体驱动来自供体叶绿素物种的电子。这些光诱导的电子转移过程显示出极高的量子效率,表明几乎完全抑制了非生产性电荷重组反应。已经提出,如果反应发生在所谓的反向区域中,则可以抑制无用的电荷复合。但是,从未在任何自然光合作用系统中证明反向区域电子转移。在这里,我们证明自然光系统I光合反应中心中的非生产性电荷重组确实发生在室温和低温下的反向区域。光系统I中光诱导的电子转移过程的计算模型表明,如果非生产性电荷复合过程不在反向区域发生,则光合量子效率将从98%显着降低至72%以下。因此,倒区电子转移被证明是促进光系统I中有效的太阳能转换的重要机制。倒区电子转移在其他光系统中似乎并不是重要的机制。可能是由于光系统I的高度还原性,以及对颜料要在这种状态下进行操作的高能要求,所以反向区域电子传输机制变得很重要。

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