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Ultrafast Excited State Relaxation of a Metalloporphyrin Revealed by Femtosecond X-ray Absorption Spectroscopy

机译:飞秒X射线吸收光谱法揭示金属卟啉的超快激发态弛豫

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摘要

Photoexcited Nickel(II) tetramesitylporphyrin (NiTMP), like many open-shell metalloporphyrins, relaxes rapidly through multiple electronic states following an initial porphyrin-based excitation, some involving metal centered electronic configuration changes that could be harnessed catalytically before excited state relaxation. While a NiTMP excited state present at 100 ps was previously identified by X-ray transient absorption (XTA) spectroscopy at a synchrotron source as a relaxed (d,d) state, the lowest energy excited state (J. Am. Chem. Soc., 2007, 129, 9616 and Chem. Sci., 2010, 1, 642), structural dynamics before thermalization were not resolved due to the similar to 100 ps duration of the available X-ray probe pulse. Using the femtosecond (fs) X-ray pulses of the Linac Coherent Light Source (LCLS), the Ni center electronic configuration from the initial excited state to the relaxed (d,d) state has been obtained via ultrafast Ni K-edge XANES (X-ray absorption near edge structure) on a time scale from hundreds of femtoseconds to 100 ps. This enabled the identification of a short-lived Ni(I) species aided by time-dependent density functional theory (TDDFT) methods. Computed electronic and nuclear structure for critical excited electronic states in the relaxation pathway characterize the dependence of the complex's geometry on the electron occupation of the 3d orbitals. Calculated XANES transitions for these excited states assign a short-lived transient signal to the spectroscopic signature of the Ni(I) species, resulting from intramolecular charge transfer on a time scale that has eluded previous synchrotron studies. These combined results enable us to examine the excited state structural dynamics of NiTMP prior to thermal relaxation and to capture intermediates of potential photocatalytic significance.
机译:像许多开壳金属卟啉一样,光激发四甲基镍卟啉镍(NiTMP)在基于卟啉的初始激发后通过多个电子态快速弛豫,其中一些涉及以金属为中心的电子构型变化,可以在激发态弛豫之前通过催化来利用。虽然先前通过同步加速器源的X射线瞬态吸收(XTA)光谱将100 ps处存在的NiTMP激发态识别为松弛(d,d)态,但最低能量激发态(J.Am.Chem.Soc。 ,例如,2007,129,9616和Chem.Sci。,2010,1,642),由于可用的X射线探针脉冲的持续时间类似于100ps,所以未解决热化之前的结构动力学。使用直线加速器相干光源(LCLS)的飞秒(fs)X射线脉冲,已经通过超快的Ni K边缘XANES获得了从初始激发态到弛豫(d,d)态的Ni中心电子结构(在数百飞秒到100 ps的时间范围内,在边缘结构附近吸收X射线。这使得能够借助时变密度泛函理论(TDDFT)方法来鉴定寿命短的Ni(I)物种。弛豫路径中临界激发电子态的计算电子和核结构表征了复合物的几何形状对3d轨道电子占据的依赖性。计算出的这些激发态的XANES跃迁将短暂的瞬态信号分配给Ni(I)物种的光谱特征,这是由于分子内电荷转移在时间尺度上产生的,而该时间尺度是以前的同步加速器研究所无法企及的。这些综合的结果使我们能够检查NiTMP在热弛豫之前的激发态结构动力学,并捕获具有潜在光催化作用的中间体。

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