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铼(I)二亚胺配合物中微秒级电荷分离激发态的产生:驱动力是控制寿命的主导因素。

Generation of Microsecond Charge-Separated Excited States in Rhenium(I) Diimine Complexes: Driving Force Is the Dominant Factor in Controlling Lifetime.

作者信息

Barnsley Jonathan E, Shillito Georgina E, Larsen Christopher B, van der Salm Holly, Horvath Raphael, Sun Xue Zhong, Wu Xue, George Michael W, Lucas Nigel T, Gordon Keith C

机构信息

Department of Chemistry , University of Otago , P.O. Box 56, Dunedin , New Zealand.

School of Chemistry , University of Nottingham , Nottingham NG7 2NR , United Kingdom.

出版信息

Inorg Chem. 2019 Aug 5;58(15):9785-9795. doi: 10.1021/acs.inorgchem.9b00792. Epub 2019 Jul 17.

Abstract

A transition-metal-based donor-(linker)-acceptor system can produce long-lived charge transfer excited states using visible excitation wavelengths. The ground- and excited-state photophysical properties of a series of [ReCl(CO)(dppz-(linker)-TPA)] complexes, with varying donor and acceptor energies, have been systematically studied using spectroscopic techniques (both vibrational and electronic) supported by computational chemistry. The long-lived excited state is ILCT in nature for all complexes studied, characterized through transient absorption and emission, transient resonance Raman (TR), and time-resolved infrared (TRIR) spectroscopy and TDDFT calculations. Modulation of the donor and acceptor energies results in changes of the ILCT lifetime by 1 order of magnitude, ranging from 6.1(±1) μs when a diphenylamine donor is used to 0.6(±0.2) μs when a triazole linker and triphenylamine donor is used. The excited-state lifetime may be rationalized by consideration of the driving force within the framework of Marcus theory and appears insensitive to the nature of the linker.

摘要

基于过渡金属的供体-(连接体)-受体体系能够利用可见光激发波长产生长寿命的电荷转移激发态。利用光谱技术(振动光谱和电子光谱)并结合计算化学,对一系列具有不同供体和受体能量的[ReCl(CO)(dppz-(连接体)-TPA)]配合物的基态和激发态光物理性质进行了系统研究。对于所有研究的配合物,长寿命激发态本质上都是内禀电荷转移(ILCT),通过瞬态吸收和发射、瞬态共振拉曼(TR)以及时间分辨红外(TRIR)光谱和含时密度泛函理论(TDDFT)计算进行了表征。供体和受体能量的调节导致ILCT寿命变化1个数量级,范围从使用二苯胺供体时的6.1(±1) μs到使用三唑连接体和三苯胺供体时的0.6(±0.2) μs。在马库斯理论框架内考虑驱动力,可以对激发态寿命做出合理的解释,并且激发态寿命似乎对连接体的性质不敏感。

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