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The role of rotational excitation in the activated dissociative chemisorption of vibrationally excited methane on Ni(100)

机译:旋转激发在振动激发甲烷在Ni(100)上的活化解离化学吸附中的作用

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摘要

We have measured the sticking probability of methane excited to v = 1 of the v3 antisymmetric C-H stretching vibration on a clean Ni(I00) surface as a function of rotational state (1 = 0, 1, 2 and 3) and have investigated the effect of Coriolis-mixing on reactivity. The data span a wide range of kinetic energies (9-49 kJ mol-l) and indicate that rotational excitation does not alter reactivity by more than a factor of two, even at low molecular speeds that allow for considerable rotation of the molecule during the interaction with the surface. In addition, rotation-induced Coriolis-splitting of the V3 mode into F+, Fa and F- states does not significantly affect the reactivity for 1 = 1 at 49 kJ mol-l translational energy, even though the nuclear motions of these states differ. The lack of a pronounced rotational energy effect in methane dissociation on Ni(I00) suggests that our previous results for (v = 1, v3 , 1 = 2) are representative of all rovibrational sublevels of this vibrational mode. These experiments shed light on the relative importance of rotational hindering and dynamical steering mechanisms in the dissociative chemisorption on Ni(100) and guide future attempts to accurately model methane dissociation on nickel surfaces.
机译:我们已经测量了甲烷在干净的Ni(I00)表面上受v3反对称CH拉伸振动的v = 1的粘附概率与旋转状态的函数关系(1 = 0、1、2和3),并研究了其影响混合对反应性的影响。数据涵盖了广泛的动能(9-49 kJ mol-1),表明旋转激发不会将反应性改变超过两倍,即使在低分子速度下也可以使分子在旋转过程中发生相当大的旋转。与表面的相互作用。另外,即使这些状态的核运动不同,旋转诱导的V3模式科里奥利分裂成F +,Fa和F-状态也不会显着影响1 = 1在49 kJ mol-1平移能时的反应性。甲烷在Ni(I00)上的离解中缺乏明显的旋转能效应,这表明我们先前的(v = 1,v3,1 = 2)结果代表了该振动模式的所有振动子水平。这些实验揭示了旋转阻碍和动态转向机制在Ni(100)上的解离化学吸附中的相对重要性,并指导了将来对甲烷在镍表面上的甲烷解离进行精确建模的尝试。

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