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Theoretical investigation of the interaction of CH4 with Al2 and Al3 neutral and charged clusters

机译:CH4与Al2和Al3中性和带电团簇相互作用的理论研究

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We have studied the interaction of CH4 with Al2 and Al3 neutral and charged clusters in the two lowest lying spin states using density functional theory. These calculations, via extended search, are used to determine the stable positions of H and CH3 near the cluster, and the transition state to break the H–CH3 bond. In all cases, stable methyl-aluminum-hydrides are possible. The H desorption is studied by means of vibration analysis and application of transition state theory. A common observed trend is that, in breaking the H–CH3 bond, the interacting H atom is attached to the “surface” of the clusters attracting some negative charge of 0.2e. The charge transfer is illustrated using the corresponding orbitals near the transition state in conjunction with the computed Mulliken population analysis. Thermal vibrations, generally, do not enhance the reaction. In all exothermic cases, the binding energy toward CH3+HAln charge increases with increasing charge of the original Aln q=1,0,1 cluster. Although Al lacks occupied d-orbitals, the small Al clusters reduce the free methane CH3–H dissociation barrier except for Al3 q=1,0. The relevant reactions in desorption require 400–700 °C.
机译:我们使用密度泛函理论研究了CH4与Al2和Al3中性和带电团簇在两个最低自旋状态下的相互作用。这些计算,通过扩展搜索,用于确定H和CH3在簇附近的稳定位置,以及打破H–CH3键的过渡态。在所有情况下,稳定的甲基铝氢化物都是可能的。通过振动分析和过渡态理论的应用研究了H的解吸。一个普遍观察到的趋势是,在破坏H–CH3键时,相互作用的H原子附着在团簇的“表面”,从而吸引了一些0.2e的负电荷。结合转移态计算的Mulliken总体分析,使用了跃迁状态附近的相应轨道来说明电荷转移。通常,热振动不会增强反应。在所有放热情况下,对CH3 + HAln电荷的结合能随原始Aln q = 1,0,1簇的电荷增加而增加。尽管Al缺少占据的d轨道,但小的Al团簇降低了Al3 q = 1,0之外的甲烷CH3-H的自由解离势垒。解吸中的相关反应需要400–700°C。

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