Substituent Control of Near-Infrared Absorption of Triphenylamine Radical Cation

Colorants Pub Date : 2022-08-01 DOI:10.3390/colorants1030021
Masafumi Yano, Mai Sasaoka, K. Tamada, Misaki Nakai, T. Yajima, K. Mitsudo, Yukiyasu Kashiwagi
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Abstract

Five triphenyltriphenylamines with various substituents were investigated as precursors for near-infrared absorbing materials. Cyclic voltammetry (CV) studies showed that they all give stable radical cations in solution. The radical cations obtained by one-electron chemical oxidation of these compounds show strong absorption in the near-infrared region, and the position of the absorption is strongly influenced by the substituent. DFT (density functional theory) calculations suggest that the introduction of stronger electron-donating substituents would result in a smaller HOMO–SOMO energy gap and thus a larger long wavelength shift, which is consistent with the experimental results. On the other hand, strong electron-withdrawing substituents increase the HOMO–SOMO energy gap, resulting in a short wavelength shift. The position of the near-infrared absorption peak of the triphenylamine radical cation can be controlled to the longer or shorter wavelength direction depending on the substituent. A molecular design of near-infrared absorbing dyes utilizing the electronic effects of substituents is described.
取代基对三苯胺自由基阳离子近红外吸收的控制
研究了5种具有不同取代基的三苯基三苯胺作为近红外吸收材料的前驱体。循环伏安法(CV)研究表明,它们在溶液中均生成稳定的自由基。这些化合物通过单电子化学氧化得到的自由基阳离子在近红外区表现出很强的吸收,并且吸收的位置受取代基的强烈影响。DFT(密度泛函理论)计算表明,引入更强的供电子取代基会导致HOMO-SOMO能隙变小,从而导致更大的长波位移,这与实验结果一致。另一方面,强吸电子取代基增加了HOMO-SOMO的能隙,导致短波移。根据取代基的不同,三苯胺自由基阳离子的近红外吸收峰的位置可以控制在较长或较短的波长方向上。描述了利用取代基电子效应的近红外吸收染料的分子设计。
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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