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[Re(CO)(im)(phen)]在水溶液中的非常规两步自旋弛豫动力学

Unconventional two-step spin relaxation dynamics of [Re(CO)(im)(phen)] in aqueous solution.

作者信息

Mai Sebastian, González Leticia

机构信息

Institute of Theoretical Chemistry , Faculty of Chemistry , University of Vienna , Währinger Straße 17 , 1090 Vienna , Austria . Email:

出版信息

Chem Sci. 2019 Sep 27;10(44):10405-10411. doi: 10.1039/c9sc03671g. eCollection 2019 Nov 28.

Abstract

Changes of molecular spin are ubiquitous in chemistry and biology. Among spin flip processes, one of the fastest is intersystem crossing (ISC) in transition metal complexes. Here, we investigate the spin relaxation dynamics and emission spectrum of [Re(CO)(im)(phen)] (im = imidazole, phen = phenanthroline) using extensive full-dimensional excited-state dynamics simulations in explicit aqueous solution. Contrary to what has been observed in other transition metal complexes, the transition from the singlet to triplet states occurs a two-step process, with clearly separable electronic and nuclear-driven components with two different time scales. The initially excited electronic wave function is a "molecular spin-orbit wave packet" that evolves almost instantaneously, with an 8 fs time constant, into an approximate 25 : 75 singlet-to-triplet equilibrium. Surprisingly, this ISC process is an order of magnitude faster than it was previously documented for this and other rhenium(i) carbonyl diimine complexes from emission spectra. Simulations including explicit laser field interactions evidence that few-cycle UV laser pulses are required to follow the creation and evolution of such molecular spin-orbit wave packets. The analysis of the dynamics also reveals a ISC component, with a time constant of 420 fs, which can be explained invoking intramolecular vibrational energy redistribution. The emission spectrum is shown to be characterized by ISC convoluted with internal conversion and vibrational relaxation. These results provide fundamental understanding of ultrafast intersystem crossing in transition metal complexes.

摘要

分子自旋的变化在化学和生物学中无处不在。在自旋翻转过程中,最快的过程之一是过渡金属配合物中的系间窜越(ISC)。在这里,我们在明确的水溶液中使用广泛的全维激发态动力学模拟,研究了[Re(CO)(im)(phen)](im = 咪唑,phen = 菲咯啉)的自旋弛豫动力学和发射光谱。与在其他过渡金属配合物中观察到的情况相反,从单重态到三重态的转变是一个两步过程,具有明显可分离的电子和核驱动成分,且具有两个不同的时间尺度。最初激发的电子波函数是一个“分子自旋 - 轨道波包”,它以8 fs的时间常数几乎瞬间演变成近似25 : 75的单重态 - 三重态平衡。令人惊讶的是,这个ISC过程比之前从发射光谱中记录的该配合物和其他铼(I)羰基二亚胺配合物的ISC过程快一个数量级。包括明确激光场相互作用的模拟表明,需要几周期的紫外激光脉冲来跟踪这种分子自旋 - 轨道波包的产生和演化。动力学分析还揭示了一个时间常数为420 fs的ISC成分,这可以通过分子内振动能量重新分布来解释。发射光谱表明其特征是ISC与内转换和振动弛豫相互卷积。这些结果为过渡金属配合物中的超快系间窜越提供了基本理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a115/6988600/8f628f6ed632/c9sc03671g-f1.jpg

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