Suppr超能文献

打破卡沙规则以实现更高效的光化学。

Breaking the Kasha Rule for More Efficient Photochemistry.

机构信息

Palladin Institute of Biochemistry, National Academy of Sciences of Ukraine , 9 Leontovicha Street, Kyiv 01030, Ukraine.

Institute of Physics, Pomeranian University in Słupsk , ul. Arciszewskiego, 22b, Słupsk 76-200, Poland.

出版信息

Chem Rev. 2017 Nov 8;117(21):13353-13381. doi: 10.1021/acs.chemrev.7b00110. Epub 2017 Oct 9.

Abstract

This paper provides a systematic review and analysis of different phenomena that violate a basic principle, Kasha's rule, when applied to photochemical reactions. In contrast to the classical route of ultrafast transition to the lowest energy excited state and photochemical reaction starting therein, in some cases, these reactions proceed directly from high-energy excited states. Nowadays, this phenomenon can be observed for a number of major types of excited-state reactions: harvesting product via intersystem crossing; photoisomerizations; bond-breaking; and electron, proton, and energy transfers. We show that specific conditions for their observation are determined by kinetic factors. They should be among the fastest reactions in studied systems, competing with vibrational relaxation and radiative or nonradiative processes occurring in upper excited states. The anti-Kasha effects, which provide an important element that sheds light on the mechanisms of excited-state transformations, open new possibilities of selective control of these reactions for a variety of practical applications. Efficient utilization of excess electronic energy should enhance performance in the systems of artificial photosynthesis and photovoltaic devices. The modulation of the reporting signal by the energy of excitation of light should lead to new technologies in optical sensing and imaging.

摘要

本文对违反基本原理(卡沙规则)的各种现象进行了系统的回顾和分析,这些现象在光化学反应中得到了应用。与经典的超快跃迁到最低能量激发态并从中开始光化学反应的途径相反,在某些情况下,这些反应直接从高能激发态进行。如今,这种现象可以观察到许多主要类型的激发态反应中:通过系间窜越收获产物;光致异构化;键断裂;电子、质子和能量转移。我们表明,观察到它们的具体条件取决于动力学因素。它们应该是在所研究系统中最快的反应之一,与上激发态中发生的振动弛豫和辐射或非辐射过程竞争。反卡沙效应为激发态转化的机制提供了重要的解释元素,为各种实际应用中这些反应的选择性控制开辟了新的可能性。有效利用多余的电子能量应该会提高人工光合作用和光伏器件系统的性能。通过激发光的能量来调制报告信号,应该会导致光学传感和成像的新技术。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验