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Nanoscale rotational dynamics of four independent rotators confined in crowded crystalline layers

机译:纳米级四个独立的旋转动力学旋转的关在拥挤的水晶层

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摘要

We report a study where Car-Parrinello molecular dynamics simulations and variable-temperature (30-300 K) H-1 spin-lattice relaxation time experiments nicely complement each other to characterize the dynamics within a set of four crystalline 1,4-diethynylbicyclo[2.2.2]octane (BCO) rotors assembled in the metal-organic rotor, {Li-4(+)(-CO2-Ph-BCO-py)(4)(H2O)(8)}center dot 2DMF. The remarkable finding of this work is that, despite the individual rotational barriers of four rotors being indiscernible and superimposed in a broad relaxation process, we were able to unravel a strongly interrelated series of rotational motions involving disrotatory and conrotatory motions in pairs as well as rotational steps of single rotators, all three processes with similar, sizeable rotational barriers of 6 kcal mol(-1). It is noteworthy that DFT molecular dynamics simulations and variable-temperature (30-300 K) proton spin-lattice relaxation time experiments deliver the same high value for the rotational barriers stressing the potential of the combined use of the two techniques in understanding rotational motion at the nanoscale.
机译:我们报告一个研究Car-Parrinello分子动力学模拟和变温(30 - 300 K)的h spin-lattice弛豫时间实验很好地相互补充在一组四个动力学特征水晶1,4-diethynylbicyclo[2.2.2]辛烷(BCO)转子组装的有机配合, {Li-4 (+) (-CO2-Ph-BCO-py转子)(4)(H2O)(8)的中心点2 dmf。,尽管个人旋转障碍四个转子被看不见的和叠加在一个广泛的弛豫过程,我们能够解开强烈相关吗一系列的旋转运动涉及对旋和成对顺旋运动单一强大的旋转步骤,所有三个过程相似,可观的旋转障碍6千卡摩尔(1)。DFT分子动力学模拟和变温(30 - 300 K)质子spin-lattice弛豫时间实验提供同样的高价值的旋转障碍强调综合利用的潜力理解旋转的两种技术运动在纳米尺度上。

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