Quinone and its derivatives for energy harvesting and storage materials

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In nature, quinone plays a vital role in numerous electrochemical reactions for energy transduction and storage; such processes include respiration and photosynthesis. For example, fast proton-coupled electron transfer between primary and secondary quinones in green plants triggers the rapid charge separation of chlorophyll molecules, achieving unparalleled photosynthesis with near-unity quantum yield. In addition, quinone-rich polymers such as eumelanin and polydopamine show unique optical and electrical properties (e.g., strong broadband absorbance or a switching response to external stimuli), mostly arising from their chemically disordered structures. Understanding the unique features of quinone and its derivatives can provide solutions to the construction of bio-inspired systems for energy harvesting and conversion. This paper reviews recent advances in the design of quinone-functionalized hybrid materials based on quinone's redox, electrical, optical, and metal chelating/reducing properties to determine these materials' applications in energy-harvesting and -storage systems, such as artificial photosynthetic platforms, rechargeable batteries, pseudocapacitors, phototransistors, plasmonic light harvesting platforms, and dye-sensitized solar cells
Publisher
ROYAL SOC CHEMISTRY
Issue Date
2016
Language
English
Article Type
Review
Citation

JOURNAL OF MATERIALS CHEMISTRY A, v.4, no.29, pp.11179 - 11202

ISSN
2050-7488
DOI
10.1039/c6ta03123d
URI
http://hdl.handle.net/10203/212589
Appears in Collection
MS-Journal Papers(저널논문)
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