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非辐射和辐射π-自由基的激发态动力学。

Excited-State Dynamics of Non-Luminescent and Luminescent π-Radicals.

机构信息

Division of Molecular Materials Science, Graduate School of Science, Osaka City University, 3-3-138 Sugimoto, Sumiyoshi-ku, Osaka, 558-8585, Japan.

出版信息

Chemistry. 2020 Jan 22;26(5):980-996. doi: 10.1002/chem.201903444. Epub 2019 Sep 30.

Abstract

Recently, the potential use of organic π-radicals and related spin systems has been expanded to modern technological applications. The unique excited-state dynamics of organic π-radicals can be useful to improve the stability of photochemically unstable organic compounds, make the polarization transfer applicable to information technology, and achieve effective up-conversion of interest for luminescence bioimaging, among others. Furthermore, highly luminescent stable π-radicals have been recently reported, which are especially interesting for application in organic light-emitting devices owing to their potential to provide an internal quantum efficiency of 100 %. Thus, the excited-state nature of stable π-radicals as well as the control of their excited-state spin dynamics are emerging topics both in terms of fundamental science and related technological applications. In this minireview, we focus on the excited-state dynamics of both photostable non(weakly)-luminescent and luminescent π-radicals, which are opposites of each other. In particular, we cover the following topics: 1) effective generation of high-spin photoexcited states and control of the excited-state dynamics by using non-luminescent π-radicals, 2) unique excited-state dynamics of luminescent π-radicals and radical excimers, and 3) applications utilizing excited-state dynamics of π-radicals.

摘要

最近,有机π-自由基和相关自旋体系的潜在用途已经扩展到现代技术应用中。有机π-自由基的独特激发态动力学可用于提高光化学不稳定有机化合物的稳定性,使极化转移适用于信息技术,并实现对光学生物成像等领域感兴趣的有效上转换。此外,最近还报道了高度发光的稳定π-自由基,由于其有可能提供 100%的内部量子效率,因此对于有机发光器件的应用特别有趣。因此,稳定的π-自由基的激发态性质以及其激发态自旋动力学的控制是基础科学和相关技术应用中新兴的课题。在这篇小综述中,我们重点关注光稳定非(弱)发光和发光π-自由基的激发态动力学,它们彼此相反。具体而言,我们涵盖了以下主题:1)通过使用非发光π-自由基有效产生高自旋光激发态并控制激发态动力学,2)发光π-自由基和自由基激基复合物的独特激发态动力学,以及 3)利用π-自由基的激发态动力学的应用。

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