Wang Hongmiao, Wen Kaicheng, You Xiaoqing, Mao Qian, Luo Kai Hong, Pilling Michael J, Robertson Struan H
Center for Combustion Energy, Tsinghua University, Beijing 100084, China.
Department of Mechanical Engineering, University College London, Torrington Place, London WC1E 7JE, United Kingdom.
J Chem Phys. 2019 Jul 28;151(4):044301. doi: 10.1063/1.5094104.
Classical trajectory simulations of intermolecular collisions were performed for a series of polycyclic aromatic hydrocarbons interacting with the bath gases helium and argon for bath gas temperature from 300 to 2500 K. The phase-space average energy transferred per deactivating collision, ⟨∆E⟩, was obtained. The Buckingham pairwise intermolecular potentials were validated against high-level quantum chemistry calculations and used in the simulations. The reactive force-field was used to describe intramolecular potentials. The dependence of ⟨∆E⟩ on initial vibrational energy is discussed. A canonical sampling method was compared with a microcanonical sampling method for selecting initial vibrational energy at high bath gas temperatures. Uncertainties introduced by the initial angular momentum distribution were identified. The dependence of the collisional energy transfer parameters on the type of bath gas and the molecular structure of polycyclic aromatic hydrocarbons was examined.
针对一系列多环芳烃与浴气氦气和氩气在300至2500K的浴气温度下相互作用的情况,进行了分子间碰撞的经典轨迹模拟。获得了每次失活碰撞转移的相空间平均能量⟨∆E⟩。将Buckingham成对分子间势与高水平量子化学计算进行了验证,并用于模拟中。采用反应力场来描述分子内势。讨论了⟨∆E⟩对初始振动能量的依赖性。比较了在高浴气温度下选择初始振动能量时的正则采样方法和微正则采样方法。确定了初始角动量分布引入的不确定性。研究了碰撞能量转移参数对浴气类型和多环芳烃分子结构的依赖性。