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首页> 外文期刊>Journal of photochemistry and photobiology, C. Photochemistry reviews >Solar energy conversion: From natural to artificial photosynthesis
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Solar energy conversion: From natural to artificial photosynthesis

机译:太阳能转换:从自然到人造光合作用

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Solar energy has a great potential as a clean, cheap, renewable and sustainable energy source, but it must be captured and transformed into useful forms of energy as plants do. An especially attractive approach is to store solar energy in the form of chemical bonds as performed in natural photosynthesis. Therefore, there is a challenge in the last decades to construct semi-artificial and artificial photosynthetic systems, which are able to efficiently capture and convert solar energy and then store it in the form of chemical bonds of solar fuels such as hydrogen or hydrogen peroxide, while at the time producing oxygen from water. Here, we review the molecular level details of the natural photosynthesis, particularly the mechanism of light dependent reactions in oxygen evolving organisms, absorption efficiency of solar energy and direct energy production. We then demonstrate the concept and examples of the semi-artificial photosynthesis in vitro. Finally we demonstrate the artificial photosynthesis, which is composed of light harvesting and charge-separation units together with catalytic units of water oxidation and reduction as well as CO2 reduction. The reported photosynthetic molecular and supramolecular systems have been designed and examined in order to mimic functions of the antenna-reaction center of the natural process. The relations between structures and photochemical behaviors of these artificial photosynthetic systems are discussed in relation to the rates and efficiencies of charge-separation and charge-recombination processes by utilizing the laser flash photolysis technique, as well as other complementary techniques. Finally the photocatalytic production of hydrogen peroxide as a more promising solar fuel is discussed in relation with the natural photosynthesis, which also produces hydrogen peroxide in addition to NADPH. (C) 2017 Elsevier B.V. All rights reserved.
机译:太阳能具有清洁,便宜,可再生和可持续的能源的巨大潜力,但必须捕获并转变为植物所做的有用形式的能量。一种特别有吸引力的方法是以天然光合作用中进行的化学键形式存储太阳能。因此,在过去几十年来构建半人工和人造光合体系的挑战,该系统能够有效地捕获和转化太阳能,然后以太阳能燃料的化学键(如氢或过氧化氢)的形式储存它,在当时从水中产生氧气。在这里,我们审查了天然光合作用的分子水平细节,特别是光依赖性反应在氧不应生物中的光依赖性反应,太阳能吸收效率和直接能量产生。然后,我们展示了体外半人造光合作用的概念和实例。最后,我们展示了人造光合作用,其由光收集和电荷分离单元组成,与催化单位的水氧化和还原以及CO 2还原。已经设计和检查了报告的光合分子和超分子系统,以模拟天线反应中心的天然工艺的功能。通过利用激光闪光光解技术以及其他互补技术,讨论了这些人造光合系统的结构和光化学行为之间的关系。最后,与天然光合作用相比,讨论了作为更有前景的太阳能燃料的过氧化氢的光催化作用,除了NADPH,还产生过氧化氢。 (c)2017 Elsevier B.v.保留所有权利。

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