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Reduced-Dimensionality Quantum Dynamics Study of the 3Fe(CO)4 + H2 → 1FeH2(CO)4 Spin-inversion Reaction

机译:3Fe(CO)4 + H2→1FeH2(CO)4自旋转化反应的降维量子动力学研究

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摘要

Many chemical reactions of transition metal compounds involve a change in spin state via spin inversion, which is induced by relativistic spin-orbit coupling. In this work, we theoretically study the efficiency of a typical spin-inversion reaction, Fe(CO) + H → FeH (CO) . Structural and vibrational information on the spin-inversion point, obtained through the spin-coupled Hamiltonian approach, is used to construct three degree-of-freedom potential energy surfaces and to obtain singlet-triplet spin-orbit couplings. Using the developed spin-diabatic potential energy surfaces in reduced dimensions, we perform quantum nonadiabatic transition state wave packet calculations to obtain the cumulative reaction probability. The calculated cumulative reaction probability is found to be significantly larger than that estimated from the one-dimensional surface-hopping probability. This indicates the importance of both multidimensional and nuclear quantum effects in spin inversion for polyatomic chemical reaction systems.
机译:过渡金属化合物的许多化学反应都涉及通过自旋反转引起的自旋状态变化,这是由相对论自旋轨道耦合引起的。在这项工作中,我们从理论上研究了典型的自旋转化反应Fe(CO)+ H→FeH(CO)的效率。通过自旋耦合哈密顿方法获得的自旋反转点的结构和振动信息,用于构造三个自由度势能面,并获得单重态-三重态自旋轨道耦合。使用减小尺寸的已发展的自旋绝热势能面,我们执行量子非绝热过渡态波包计算,以获得累积反应概率。发现计算出的累积反应概率明显大于从一维表面跳变概率估计的累积反应概率。这表明多维和核量子效应在自旋反演中对多原子化学反应系统的重要性。

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