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首页> 外文期刊>Chemistry: A European journal >Electron exchange in conformationally restricted donor-spacer-acceptor dyads: Angle dependence and involvement of upper-lying excited states
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Electron exchange in conformationally restricted donor-spacer-acceptor dyads: Angle dependence and involvement of upper-lying excited states

机译:构象受限的供体-间隔子-受体二体中的电子交换:角度依赖性和上层激发态的参与

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摘要

The rate constant for triplet energy transfer (k(TET)) has been measured in fluid solution for a series of mixed-metal Ru-Os bis(2,2':6',2"-terpyridine) complexes built around a tethered biphenyl-based spacer group. The length of the tether controls the central torsion angle for the spacer, which can be varied systematically from 37 to 130 degrees. At low temperature, but still in fluid solution, the spacer adopts the lowest-energy conformation and kTET shows a clear correlation with the torsion angle. A similar relationship holds for the inverse quantum yield for emission from the Ru-terpy donor. Triplet energy transfer is more strongly activated at higher temperature and the kinetic data require analysis in terms of two separate processes. The more weakly activated step involves electron exchange from the first-excited triplet state on the Ru-terpy donor and the size of the activation barrier matches well with that calculated from spectroscopic properties. The pre-exponential factor derived for this process correlates remarkably well with the torsion angle and there is a large disparity in electronic coupling through pi and sigma orbitals on the spacer. The more strongly activated step is attributed to electron exchange from an upper-lying triplet state localized on the Ru-terpy donor. Here, the pre-exponential factor is larger but shows the same dependence on the geometry of the spacer. Strangely, the difference in coupling through pi and sigma orbitals is much less pronounced. Despite internal flexibility around the spacer, k(TET) shows a marked dependence on the torsion angle computed for the lowest-energy conformation.
机译:已经在围绕联苯的联苯构建的一系列混合金属Ru-Os双(2,2':6',2“-吡啶)配合物的流体溶液中测量了三重态能量转移的速率常数(k(TET))间隔基团。系链的长度控制着间隔基的中心扭转角,可在37至130度之间系统地变化。在低温下但仍在流体溶液中,间隔基采用最低能量构象和kTET显示出与扭转角的明显相关性。Ru-terpy供体的发射的逆量子产率也具有相似的关系。在更高的温度下三重态能量转移被更强烈地激活,动力学数据需要根据两个独立的过程进行分析。活化程度较弱的步骤涉及Ru-terpy供体上的第一个激发三重态的电子交换,并且活化能垒的大小与根据光谱性质计算出的值非常吻合。为此过程推导的结果与扭转角非常相关,并且通过间隔板上的pi和sigma轨道进行的电子耦合存在很大差异。活化更强的步骤归因于来自位于Ru-terpy供体上的三重态的电子交换。在此,指数前因子较大,但对垫片的几何形状显示出相同的依赖性。奇怪的是,通过pi和sigma轨道耦合的差异不那么明显。尽管垫片周围具有内部柔性,但k(TET)仍显示出对最低能量构型计算出的扭转角的明显依赖性。

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