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分子内氢键在羧酸萘醌氧化还原性质中的作用。

The role of an intramolecular hydrogen bond in the redox properties of carboxylic acid naphthoquinones.

作者信息

Guerra Walter D, Odella Emmanuel, Cui Kai, Secor Maxim, Dominguez Rodrigo E, Gonzalez Edwin J, Moore Thomas A, Hammes-Schiffer Sharon, Moore Ana L

机构信息

School of Molecular Sciences, Arizona State University Tempe Arizona 85287-1604 USA

Department of Chemistry, Princeton University Princeton New Jersey 08544 USA

出版信息

Chem Sci. 2024 Sep 20;15(42):17425-34. doi: 10.1039/d4sc05277c.

Abstract

A bioinspired naphthoquinone model of the quinones in photosynthetic reaction centers but bearing an intramolecular hydrogen-bonded carboxylic acid has been synthesized and characterized electrochemically, spectroscopically, and computationally to provide mechanistic insight into the role of proton-coupled electron transfer (PCET) of quinone reduction in photosynthesis. The reduction potential of this construct is 370 mV more positive than the unsubstituted naphthoquinone. In addition to the reversible cyclic voltammetry, infrared spectroelectrochemistry confirms that the naphthoquinone/naphthoquinone radical anion couple is fully reversible. Calculated redox potentials agree with the experimental trends arising from the intramolecular hydrogen bond. Molecular electrostatic potentials illustrate the reversible proton transfer driving forces, and analysis of the computed vibrational spectra supports the possibility of a combination of electron transfer and PCET processes. The significance of PCET, reversibility, and redox potential management relevant to the design of artificial photosynthetic assemblies involving PCET processes is discussed.

摘要

一种受生物启发的光合反应中心醌类的萘醌模型已被合成,该模型带有分子内氢键连接的羧酸,并通过电化学、光谱学和计算方法进行了表征,以深入了解质子耦合电子转移(PCET)在光合作用中醌还原作用的机制。该构建体的还原电位比未取代的萘醌正370 mV。除了可逆循环伏安法外,红外光谱电化学证实萘醌/萘醌自由基阴离子对是完全可逆的。计算得到的氧化还原电位与分子内氢键产生的实验趋势一致。分子静电势说明了可逆质子转移驱动力,对计算振动光谱的分析支持了电子转移和PCET过程相结合的可能性。讨论了与涉及PCET过程的人工光合组件设计相关的PCET、可逆性和氧化还原电位管理的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d29e/11526034/a8904d3b29f7/d4sc05277c-c1.jpg

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