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真黑素宽带吸收是在结构和氧化还原控制下,由聚集调节的生色团相互作用发展而来。

Eumelanin broadband absorption develops from aggregation-modulated chromophore interactions under structural and redox control.

机构信息

Department of Clinical Medicine and Surgery, University of Naples Federico II, I-80131 Naples, Italy.

Department of Chemical Sciences, University of Naples Federico II, I-80126 Naples, Italy.

出版信息

Sci Rep. 2017 Feb 2;7:41532. doi: 10.1038/srep41532.

Abstract

Eumelanins, the chief photoprotective pigments in man and mammals, owe their black color to an unusual broadband absorption spectrum whose origin is still a conundrum. Excitonic effects from the interplay of geometric order and disorder in 5,6-dihydroxyindole (DHI)-based oligomeric/polymeric structures play a central role, however the contributions of structural (scaffold-controlled) and redox (π-electron-controlled) disorder have remained uncharted. Herein, we report an integrated experimental-theoretical entry to eumelanin chromophore dynamics based on poly(vinyl alcohol)-controlled polymerization of a large set of 5,6-dihydroxyindoles and related dimers. The results a) uncover the impact of the structural scaffold on eumelanin optical properties, disproving the widespread assumption of a universal monotonic chromophore; b) delineate eumelanin chromophore buildup as a three-step dynamic process involving the rapid generation of oxidized oligomers, termed melanochromes (phase I), followed by a slow oxidant-independent band broadening (phase II) leading eventually to scattering (phase III); c) point to a slow reorganization-stabilization of melanochromes via intermolecular redox interactions as the main determinant of visible broadband absorption.

摘要

真黑素是人类和哺乳动物中主要的光保护色素,其黑色源于不寻常的宽频带吸收光谱,其起源至今仍是一个谜。然而,5,6-二羟基吲哚(DHI)基低聚物/聚合物结构中几何有序和无序的激子相互作用起着核心作用,而结构(支架控制)和氧化还原(π 电子控制)无序的贡献仍未被探索。在此,我们基于一系列大的 5,6-二羟基吲哚及其相关二聚体的聚乙烯醇控制聚合,报道了一种综合的实验-理论方法来研究真黑素发色团动力学。研究结果:a)揭示了结构支架对真黑素光学性质的影响,推翻了普遍存在的单一发色团假设;b)描绘了真黑素发色团的构建是一个涉及快速生成氧化低聚物(称为黑素原,I 相)的三步动态过程,然后是缓慢的与氧化剂无关的带宽扩展(II 相),最终导致散射(III 相);c)指出通过分子间氧化还原相互作用使黑素原缓慢重组稳定是可见光宽带吸收的主要决定因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1f8/5288692/e354ec8a7a43/srep41532-f1.jpg

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