Photophysics and Electrochemistry of Biomimetic Pyranoflavyliums: What Can Bioinspiration from Red Wines Offer?

Photochem Pub Date : 2022-03-01 DOI:10.3390/photochem2010003
Eli Misael Espinoza, John Anthony Clark, Mimi Karen Billones, Gustavo Thalmer de Medeiros Silva, Cassio Pacheco da Silva, Frank Herbert Quina, Valentine Ivanov Vullev
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引用次数: 3

Abstract

Natural dyes and pigments offer incomparable diversity of structures and functionalities, making them an excellent source of inspiration for the design and development of synthetic chromophores with a myriad of emerging properties. Formed during maturation of red wines, pyranoanthocyanins are electron-deficient cationic pyranoflavylium dyes with broad absorption in the visible spectral region and pronounced chemical and photostability. Herein, we survey the optical and electrochemical properties of synthetic pyranoflavylium dyes functionalized with different electron-donating and electron-withdrawing groups, which vary their reduction potentials over a range of about 400 mV. Despite their highly electron-deficient cores, the exploration of pyranoflavyliums as photosensitizers has been limited to the "classical" n-type dye-sensitized solar cells (DSSCs) where they act as electron donors. In light of their electrochemical and spectroscopic properties, however, these biomimetic synthetic dyes should prove to be immensely beneficial as chromophores in p-type DSSCs, where their ability to act as photooxidants, along with their pronounced photostability, can benefit key advances in solar-energy science and engineering.

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仿生pyranoflavylium的光物理和电化学:从红酒中能得到什么生物启示?
天然染料和色素提供了无与伦比的结构和功能多样性,使它们成为设计和开发具有无数新兴特性的合成发色团的绝佳灵感来源。pyranoanthocyanins是一种缺乏电子的阳离子pyranoflavyum染料,在可见光谱区具有广泛的吸收,具有明显的化学和光稳定性。本文研究了不同给电子基团和吸电子基团官能团在400 mV范围内还原电位变化的合成吡喃黄烷染料的光学和电化学性质。尽管它们的核心高度缺电子,但对pyranoflavylium作为光敏剂的探索仅限于“经典”n型染料敏化太阳能电池(DSSCs),在那里它们充当电子供体。然而,鉴于它们的电化学和光谱特性,这些仿生合成染料应该被证明是非常有益的p型DSSCs的发色团,在那里它们作为光氧化剂的能力,以及它们明显的光稳定性,可以促进太阳能科学和工程的关键进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.60
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