Peng Tianze, Bai Yuyao, Qi Jianjun, Fu Yan-Lin, Han Yong-Chang, Fu Bina, Zhang Dong H
State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
Department of Physics, DUT-BSU Joint Institute, Dalian University of Technology, Dalian 116024, China.
J Phys Chem A. 2024 Mar 28;128(12):2330-2338. doi: 10.1021/acs.jpca.4c00374. Epub 2024 Mar 13.
An accurate, global, full-dimensional potential energy surface (PES) of NaCl + NaCl has been constructed by the fundamental invariant-neural network (FI-NN) fitting based on roughly 13,000 ab initio energies at the level of CCSD(T)-F12a/aug-cc-pVTZ, with the small fitting error of 0.16 meV. Extensive quasiclassical trajectory (QCT) calculations were performed on this PES to investigate the energy transfer process of the NaCl + NaCl collision at four different collision energies. Various quantities were obtained, including the cross-sections, energy transfer probability, average energy transfer, and collision lifetime. The probabilities of energy transfer ((Δ)) for prompt trajectories, nonreactive trajectories, and reactive trajectories deviate from a simple exponential decay pattern. Instead, a noteworthy probability is observed in the high-energy transfer region, indicative of supercollisions. The formation of the (NaCl) complex, coupled with a comparatively extended collision lifetime, promotes vibrational excitation in NaCl molecules. The reactive trajectories exhibit enhanced energy transfer, attributed to the longer lifetime of the NaCl dimer. This study not only provides an accurate and extensive understanding of the NaCl + NaCl collision dynamics but also reveals intriguing phenomena, such as supercollisions and enhanced energy transfer in reactive trajectories, shedding light on the complex intricacies of molecular interactions.
基于约13000个在CCSD(T)-F12a/aug-cc-pVTZ水平下的从头算能量,通过基本不变神经网络(FI-NN)拟合构建了NaCl + NaCl精确、全局、全维势能面(PES),拟合误差小至0.16毫电子伏特。在该势能面上进行了广泛的准经典轨迹(QCT)计算,以研究NaCl + NaCl在四种不同碰撞能量下碰撞的能量转移过程。获得了各种量,包括截面、能量转移概率、平均能量转移和碰撞寿命。快速轨迹、非反应轨迹和反应轨迹的能量转移概率((Δ))偏离了简单的指数衰减模式。相反,在高能量转移区域观察到一个值得注意的概率,这表明存在超碰撞。(NaCl)复合物的形成,加上相对较长的碰撞寿命,促进了NaCl分子中的振动激发。反应轨迹表现出增强的能量转移,这归因于NaCl二聚体更长的寿命。这项研究不仅提供了对NaCl + NaCl碰撞动力学准确而广泛的理解,还揭示了诸如超碰撞和反应轨迹中增强的能量转移等有趣现象,为分子相互作用的复杂细节提供了线索。