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卡西拉斯的卟啉:理论设计的基于儿茶酚的仿生平台中氧化还原调节的光学和电子性质的密度泛函理论建模

Kaxiras's Porphyrin: DFT Modeling of Redox-Tuned Optical and Electronic Properties in a Theoretically Designed Catechol-Based Bioinspired Platform.

作者信息

Crescenzi Orlando, D'Ischia Marco, Napolitano Alessandra

机构信息

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

出版信息

Biomimetics (Basel). 2017 Nov 7;2(4):21. doi: 10.3390/biomimetics2040021.

Abstract

A detailed computational investigation of the 5,6-dihydroxyindole (DHI)-based porphyrin-type tetramer first described by Kaxiras as a theoretical structural model for eumelanin biopolymers is reported herein, with a view to predicting the technological potential of this unique bioinspired tetracatechol system. All possible tautomers/conformers, as well as alternative protonation states, were explored for the species at various degrees of oxidation and all structures were geometry optimized at the density functional theory (DFT) level. Comparison of energy levels for each oxidized species indicated a marked instability of most oxidation states except the six-electron level, and an unexpected resilience to disproportionation of the one-electron oxidation free radical species. Changes in the highest energy occupied molecular orbital (HOMO)⁻lowest energy unoccupied molecular orbital (LUMO) gaps with oxidation state and tautomerism were determined along with the main electronic transitions: more or less intense absorption in the visible region is predicted for most oxidized species. Data indicated that the peculiar symmetry of the oxygenation pattern pertaining to the four catechol/quinone/quinone methide moieties, in concert with the NH centers, fine-tunes the optical and electronic properties of the porphyrin system. For several oxidation levels, conjugated systems extending over two or more indole units play a major role in determining the preferred tautomeric state: thus, the highest stability of the six-electron oxidation state reflects porphyrin-type aromaticity. These results provide new clues for the design of innovative bioinspired optoelectronic materials.

摘要

本文报道了对5,6 - 二羟基吲哚(DHI)基卟啉型四聚体的详细计算研究,该四聚体最早由卡希拉斯(Kaxiras)描述为真黑素生物聚合物的理论结构模型,旨在预测这种独特的受生物启发的四邻苯二酚体系的技术潜力。研究了该物种在不同氧化程度下的所有可能互变异构体/构象以及替代质子化状态,并在密度泛函理论(DFT)水平上对所有结构进行了几何优化。对每个氧化物种的能级比较表明,除了六电子能级外,大多数氧化态都具有明显的不稳定性,并且单电子氧化自由基物种对歧化反应具有意想不到的抗性。确定了最高占据分子轨道(HOMO) - 最低未占据分子轨道(LUMO)能隙随氧化态和互变异构的变化以及主要电子跃迁:预测大多数氧化物种在可见光区域或多或少有强烈吸收。数据表明,与NH中心协同作用的四个邻苯二酚/醌/醌甲基部分的氧化模式的特殊对称性微调了卟啉体系的光学和电子性质。对于几个氧化水平,延伸超过两个或更多吲哚单元的共轭体系在确定优选的互变异构状态中起主要作用:因此,六电子氧化态的最高稳定性反映了卟啉型芳香性。这些结果为创新的受生物启发的光电子材料的设计提供了新线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3279/6352670/cee677ff8cd0/biomimetics-02-00021-sch001.jpg

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