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Structural Dynamics upon Photoexcitation in a Spin Crossover Crystal Probed with Femtosecond Electron Diffraction

机译:用飞秒电子衍射探测旋转交叉晶体中的运动动力学

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摘要

Photoexcitation of spin crossover (SCO) complexes can trigger extensive electronic spin transitions and transformation of molecular structure. However, the precise nature of the associated ultrafast structural dynamics remains elusive, especially in the solid state. Here, we studied a single-crystal SCO material with femtosecond electron diffraction (FED). The unique capability of FED allows us to directly probe atomic motions and to track ultrafast structural changes within a crystal lattice. By monitoring the time-dependent changes of the Bragg reflections, we observed the formation of a photoinduced structure similar to the thermally induced high-spin state. The data and refinement calculations indicate the global structural reorganization within 2.3 ps, as the metal-ligand bond distribution narrows during intramolecular vibrational energy redistribution (IVR) driving the intermolecular rearrangement. Three independent dynamical group are identified to model the structural dynamics upon photoinduced SCO.
机译:旋转交叉(SCO)复合物的光筛可以引发广泛的电子旋转转变和分子结构的转化。然而,相关超快结构动态的精确性仍然难以捉摸,特别是在固态中。在这里,我们研究了具有飞秒电子衍射(FED)的单晶硅材料。美联储的独特能力使我们能够直接探测原子动作并跟踪晶格内的超快结构变化。通过监测布拉格反射的时间依赖性变化,我们观察了与热诱导的高旋转状态类似的光诱导结构的形成。数据和细化计算表明2.3 PS内的全局结构重组,因为金属 - 配体粘合分布在驾驶分子间重排的分子内振动能量再分配(IVR)期间变窄。鉴定了三个独立的动态组,以在光抑制的SCO上模拟结构动态。

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