Bioinspiration in light harvesting and catalysis

生化工程 可再生能源 化学能 太阳能转换 人工光合作用 光合作用 材料科学 纳米技术 太阳能 化学 计算机科学 催化作用 生态学 有机化学 工程类 生物 光催化 生物化学
作者
Andrew H. Proppe,Yuguang C. Li,Alán Aspuru‐Guzik,Curtis P. Berlinguette,Christopher J. Chang,Richard J. Cogdell,Abigail G. Doyle,Johannes Flick,Nathaniel Gabor,Rienk van Grondelle,Sharon Hammes‐Schiffer,Shaffiq A. Jaffer,Shana O. Kelley,Mario Leclerc,Karl Leo,Thomas E. Mallouk,Prineha Narang,Gabriela S. Schlau‐Cohen,Gregory D. Scholes,Aleksandra Vojvodić,Vww Yam,Jenny Y. Yang,Edward H. Sargent
出处
期刊:Nature Reviews Materials [Springer Nature]
卷期号:5 (11): 828-846 被引量:134
标识
DOI:10.1038/s41578-020-0222-0
摘要

Capturing and converting solar energy into fuels and feedstocks is a global challenge that spans numerous disciplines and fields of research. Billions of years of evolution have allowed natural organisms to hone strategies for harvesting light from the sun and storing energy in the form of carbon–carbon and carbon–hydrogen bonds. Photosynthetic antenna proteins capture solar photons and funnel photoexcitations to reaction centres with high yields, and enzymes catalyze multi-electron reactions, facilitating chemical transformations not yet efficiently implemented using artificially engineered catalysts. Researchers in renewable energy often look to nature to understand the mechanisms at work and, if possible, to explore their translation into artificial systems. Here, we review advances in bioinspiration across the fields of biological light harvesting and chemical energy conversion. We examine how multi-photon and multi-electron reactions in biology can inspire new methods in photoredox chemistry to achieve novel, selective and complex organic transformations; how carbonic-dehydrogenase-inspired design principles enable catalytic reactions such as the conversion of CO2 into useful products such as fuels; and how concepts from photosynthetic antenna complexes and reaction centres can benefit artificial light-harvesting materials. We then consider areas in which bioinspiration could enable advances in the rational design of molecules and materials, the expansion of the synthetic capabilities of catalysts and the valorization of molecular building blocks. We highlight the challenges that must be overcome to realize these advances and propose new directions that may use bioinspiration to achieve them. Natural photosynthetic systems harvest light to perform selective chemistry on atmospheric molecules such as CO2. This Review discusses the implementation of bioinspired concepts in engineered light harvesting and catalysis.
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