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电荷转移激发态铁卡宾配合物中的能带选择性动力学。

Band-selective dynamics in charge-transfer excited iron carbene complexes.

作者信息

Chábera Pavel, Fredin Lisa A, Kjær Kasper S, Rosemann Nils W, Lindh Linnea, Prakash Om, Liu Yizhu, Wärnmark Kenneth, Uhlig Jens, Sundström Villy, Yartsev Arkady, Persson Petter

机构信息

Division of Chemical Physics, Department of Chemistry, Lund University, Box 124, SE-22100 Lund, Sweden.

Division of Theoretical Chemistry, Department of Chemistry, Lund University, Box 124, SE-22100 Lund, Sweden.

出版信息

Faraday Discuss. 2019 Jul 11;216(0):191-210. doi: 10.1039/c8fd00232k.

DOI:10.1039/c8fd00232k
PMID:31016293
Abstract

Ultrafast dynamics of photoinduced charge transfer processes in light-harvesting systems based on Earth-abundant transition metal complexes are of current interest for the development of molecular devices for solar energy conversion applications. A combination of ultrafast spectroscopy and first principles quantum chemical calculations of a recently synthesized iron carbene complex is used to elucidate the ultrafast excited state evolution processes in these systems with particular emphasis on investigating the underlying reasons why these complexes show promise in terms of significantly extended lifetimes of charge transfer excited states. Together, our results challenge the traditional excited state landscape for iron-based light harvesting transition metal complexes through radically different ground and excited state properties in alternative oxidation states. This includes intriguing indications of rich band-selective excited state dynamics on ultrafast timescales that are interpreted in terms of excitation energy dependence for excitations into a manifold of charge-transfer states. Some implications of the observed excited state properties and photoinduced dynamics for the utilization of iron carbene complexes for solar energy conversion applications are finally discussed.

摘要

基于储量丰富的过渡金属配合物的光捕获系统中光致电荷转移过程的超快动力学,目前对于开发用于太阳能转换应用的分子器件具有重要意义。结合超快光谱学和对最近合成的铁卡宾配合物的第一性原理量子化学计算,用于阐明这些系统中的超快激发态演化过程,特别着重于研究这些配合物在电荷转移激发态寿命显著延长方面显示出前景的潜在原因。我们的结果共同通过替代氧化态下截然不同的基态和激发态性质,挑战了铁基光捕获过渡金属配合物的传统激发态图景。这包括在超快时间尺度上丰富的带选择性激发态动力学的有趣迹象,这些迹象根据激发到电荷转移态多重态的激发能量依赖性来解释。最后讨论了观察到的激发态性质和光致动力学对利用铁卡宾配合物进行太阳能转换应用的一些影响。

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