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Solar energy conversion: From natural to artificial photosynthesis

人工光合作用 光合作用 太阳能燃料 化学能 太阳能 化学 光化学 分解水 析氧 材料科学 光催化 催化作用 电化学 有机化学 生态学 生物 生物化学 物理化学 电极
作者
Mohamed E. El‐Khouly,Eithar El-Mohsnawy,Shunichi Fukuzumi
出处
期刊:Journal of Photochemistry and Photobiology C-photochemistry Reviews [Elsevier]
卷期号:31: 36-83 被引量:241
标识
DOI:10.1016/j.jphotochemrev.2017.02.001
摘要

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.
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