Jahangiri Soran, Arrazola Juan Miguel, Quesada Nicolás, Delgado Alain
Xanadu, Toronto, ON M5G 2C8, Canada.
Phys Chem Chem Phys. 2020 Nov 18;22(44):25528-25537. doi: 10.1039/d0cp03593a.
The excitation of vibrational modes in molecules affects the outcome of chemical reactions, for example by providing molecules with sufficient energy to overcome activation barriers. In this work, we introduce a quantum algorithm for simulating molecular vibrational excitations during vibronic transitions. We discuss how a special-purpose quantum computer can be programmed with molecular data to optimize a vibronic process such that desired modes get excited during the transition. We investigate the effect of such excitations on selective bond dissociation in pyrrole and butane during photochemical and mechanochemical vibronic transitions. The results are discussed with respect to experimental observations and classical simulations. We also introduce quantum-inspired classical algorithms for simulating molecular vibrational excitations in special cases where only a limited number of modes are of interest.
分子中振动模式的激发会影响化学反应的结果,例如为分子提供足够的能量以克服活化能垒。在这项工作中,我们引入了一种量子算法,用于模拟振转跃迁过程中的分子振动激发。我们讨论了如何用分子数据对专用量子计算机进行编程,以优化振转过程,使得在跃迁过程中所需的模式被激发。我们研究了这种激发对吡咯和丁烷在光化学和机械化学振转跃迁过程中选择性键解离的影响。结合实验观测结果和经典模拟对结果进行了讨论。我们还引入了受量子启发的经典算法,用于在仅关注有限数量模式的特殊情况下模拟分子振动激发。