Hong Qizhen, Sun Quanhua, Pirani Fernando, Valentín-Rodríguez Mónica A, Hernández-Lamoneda Ramón, Coletti Cecilia, Hernández Marta I, Bartolomei Massimiliano
State Key Laboratory of High Temperature Gas Dynamics, Institute of Mechanics, Chinese Academy of Sciences, 100190 Beijing, China.
Dipartimento di Chimica, Biologia e Biotecnologie, Università di Perugia, via Elce di Sotto, 8 - 06183 Perugia, Italy.
J Chem Phys. 2021 Feb 14;154(6):064304. doi: 10.1063/5.0041244.
A new spin-averaged potential energy surface (PES) for non-reactive O(Σg-3) + O(Σg-3) collisions is presented. The potential is formulated analytically according to the nature of the principal interaction components, with the main van der Waals contribution described through the improved Lennard-Jones model. All the parameters involved in the formulation, having a physical meaning, have been modulated in restricted variation ranges, exploiting a combined analysis of experimental and ab initio reference data. The new PES is shown to be able to reproduce a wealth of different physical properties, ranging from the second virial coefficients to transport properties (shear viscosity and thermal conductivity) and rate coefficients for inelastic scattering collisions. Rate coefficients for the vibrational inelastic processes of O, including both vibration-to-vibration (V-V) and vibration-to-translation/rotation (V-T/R) energy exchanges, were then calculated on this PES using a mixed quantum-classical method. The effective formulation of the potential and its combination with an efficient, yet accurate, nuclear dynamics treatment allowed for the determination of a large database of V-V and V-T/R energy transfer rate coefficients in a wide temperature range.
提出了一种用于非反应性O(Σg-3)+O(Σg-3)碰撞的新的自旋平均势能面(PES)。该势能根据主要相互作用成分的性质进行解析表述,主要的范德华贡献通过改进的 Lennard-Jones 模型来描述。通过对实验数据和从头算参考数据的综合分析,对表述中涉及的所有具有物理意义的参数在受限的变化范围内进行了调制。新的PES能够重现大量不同的物理性质,从第二维里系数到输运性质(剪切粘度和热导率)以及非弹性散射碰撞的速率系数。然后,使用混合量子经典方法在该PES上计算了O的振动非弹性过程的速率系数,包括振动-振动(V-V)和振动-平动/转动(V-T/R)能量交换。势能的有效表述及其与高效且精确的核动力学处理方法的结合,使得能够在很宽的温度范围内确定一个关于V-V和V-T/R能量转移速率系数的大型数据库。