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磷光现象的理论与计算。

Theory and Calculation of the Phosphorescence Phenomenon.

机构信息

Division of Theoretical Chemistry and Biology, Royal Institute of Technology , SE-106 91 Stockholm, Sweden.

Bohdan Khmelnytsky National University , 18031 Cherkasy, Ukraine.

出版信息

Chem Rev. 2017 May 10;117(9):6500-6537. doi: 10.1021/acs.chemrev.7b00060. Epub 2017 Apr 7.

Abstract

Phosphorescence is a phenomenon of delayed luminescence that corresponds to the radiative decay of the molecular triplet state. As a general property of molecules, phosphorescence represents a cornerstone problem of chemical physics due to the spin prohibition of the underlying triplet-singlet emission and because its analysis embraces a deep knowledge of electronic molecular structure. Phosphorescence is the simplest physical process which provides an example of spin-forbidden transformation with a characteristic spin selectivity and magnetic field dependence, being the model also for more complicated chemical reactions and for spin catalysis applications. The bridging of the spin prohibition in phosphorescence is commonly analyzed by perturbation theory, which considers the intensity borrowing from spin-allowed electronic transitions. In this review, we highlight the basic theoretical principles and computational aspects for the estimation of various phosphorescence parameters, like intensity, radiative rate constant, lifetime, polarization, zero-field splitting, and spin sublevel population. Qualitative aspects of the phosphorescence phenomenon are discussed in terms of concepts like structure-activity relationships, donor-acceptor interactions, vibronic activity, and the role of spin-orbit coupling under charge-transfer perturbations. We illustrate the theory and principles of computational phosphorescence by highlighting studies of classical examples like molecular nitrogen and oxygen, benzene, naphthalene and their azaderivatives, porphyrins, as well as by reviewing current research on systems like electrophosphorescent transition metal complexes, nucleobases, and amino acids. We furthermore discuss modern studies of phosphorescence that cover topics of applied relevance, like the design of novel photofunctional materials for organic light-emitting diodes (OLEDs), photovoltaic cells, chemical sensors, and bioimaging.

摘要

磷光是一种延迟发光的现象,对应于分子三重态的辐射衰变。作为分子的一般性质,磷光代表了化学物理的一个基石问题,这是由于底层三重态-单重态发射的自旋禁止,以及其分析包含了对电子分子结构的深入了解。磷光是最简单的物理过程,它提供了一个自旋禁止转化的例子,具有特征的自旋选择性和磁场依赖性,也是更复杂的化学反应和自旋催化应用的模型。磷光中的自旋禁止的桥接通常通过微扰理论来分析,该理论考虑了来自自旋允许的电子跃迁的强度借用。在这篇综述中,我们强调了用于估计各种磷光参数(如强度、辐射速率常数、寿命、偏振、零场分裂和自旋亚层分布)的基本理论原理和计算方面。我们根据结构-活性关系、供体-受体相互作用、振子活性以及电荷转移扰动下自旋轨道耦合的作用等概念,讨论了磷光现象的定性方面。我们通过突出分子氮和氧、苯、萘及其氮杂衍生物、卟啉等经典例子的研究,以及通过综述电磷光过渡金属配合物、核碱基和氨基酸等系统的当前研究,来说明计算磷光的理论和原理。我们还讨论了涵盖有机发光二极管 (OLED)、光伏电池、化学传感器和生物成像等应用相关主题的现代磷光研究。

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