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Vibrational control of selective bond cleavage in dissociative chemisorption of methanol on Cu(111)

机译:甲醇在Cu(111)上的解离化学吸附中选择性键裂解的振动控制

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摘要

Controlling product branching ratios in a chemical reaction represents a desired but difficult achievement in chemistry. In this work, we demonstrate the first example of altering the branching ratios in a multichannel reaction, i.e., methanol dissociative chemisorption on Cu(111), via selectively exciting specific vibrational modes. To this end, we develop a globally accurate full-dimensional potential energy surface for the CH3OH/Cu(111) system and perform extensive vibrational state-selected molecular dynamics simulations. Our results show that O–H/C–H/C–O stretching vibrational excitations substantially enhance the respective bond scission processes, representing extraordinary bond selectivity. At a given total energy, the branching ratio of C–O/C–H dissociation can increase by as large as 100 times by exciting the C–O stretching mode which possesses an unprecedentedly strong vibrational efficacy on reactivity. This vibrational control can be realized by the well-designed experiment using a linearly polarized laser.
机译:在化学反应中控制产物支化比率代表了化学中期望但困难的成就。在这项工作中,我们展示了通过选择性激发特定的振动模式来改变多通道反应(即甲醇对Cu(111)的离解性化学吸附)的支化比的第一个示例。为此,我们为CH3OH / Cu(111)系统开发了一个全球精确的全尺寸势能表面,并进行了广泛的振动状态选择分子动力学模拟。我们的结果表明,O–H / C–H / C–O拉伸振动激发显着增强了各自的键断裂过程,代表了非凡的键选择性。在给定的总能量下,通过激发具有前所未有的强振动反应活性的C–O拉伸模式,C–O / C–H离解的支化比可增加多达100倍。这种振动控制可以通过使用线性偏振激光器进行精心设计的实验来实现。

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