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通过先进的恒温策略在气态系统的分子动力学模拟中实现分子自由度的均分

Equipartitioning of Molecular Degrees of Freedom in MD Simulations of Gaseous Systems via an Advanced Thermostatization Strategy.

作者信息

Gamper Jakob, Gallmetzer Josef M, Listyarini Risnita Vicky, Weiss Alexander K H, Hofer Thomas S

机构信息

Theoretical Chemistry Division, Institute of General, Inorganic and Theoretical Chemistry, Center for Chemistry and Biomedicine, University of Innsbruck, Innrain 80-82, A-6020 Innsbruck, Austria.

Research Institute for Biomedical Aging Research, University of Innsbruck, Rennweg 10, A-6020 Innsbruck, Austria.

出版信息

J Chem Theory Comput. 2025 Jan 14;21(1):102-113. doi: 10.1021/acs.jctc.4c01580. Epub 2024 Dec 19.

Abstract

This work introduces a dedicated thermostatization strategy for molecular dynamics simulations of gaseous systems. The proposed thermostat is based on the stochastic canonical velocity rescaling approach by Bussi and co-workers and is capable of ensuring an equal distribution of the kinetic energy among the translational, rotational, and vibrational degrees of freedom. The outlined framework ensures the correct treatment of the kinetic energy in gaseous systems, which is typically not the case in standard approaches due to the limited number of collisions between particles associated with a large free mean path. Additionally, an efficient strategy to effectively correct for intramolecular contributions to the virial in quantum mechanical simulations is presented. The equipartitioning thermostat was successfully tested by the determination of pV diagrams for carbon dioxide and methane at the density functional tight binding level of theory. The results unequivocally demonstrate that the equipartitioning thermostat can effectively achieve an equal distribution of the kinetic energy among the different degrees of freedom, thereby ensuring correct pressure in gaseous systems. Furthermore, RDF calculations show the capability of the proposed method to accurately depict the structure of gaseous systems, as well as enable an adequate treatment of gas molecules under confinement, as exemplified by an MD simulation of (CO)@MOF-5.

摘要

这项工作介绍了一种用于气态系统分子动力学模拟的专用恒温策略。所提出的恒温器基于布西及其同事的随机正则速度重标方法,能够确保动能在平动、转动和振动自由度之间均匀分布。所概述的框架确保了气态系统中动能的正确处理,而在标准方法中,由于与大自由程相关的粒子间碰撞次数有限,通常并非如此。此外,还提出了一种在量子力学模拟中有效校正分子内对维里系数贡献的有效策略。通过在密度泛函紧束缚理论水平下测定二氧化碳和甲烷的pV图,对等分恒温器进行了成功测试。结果明确表明,等分恒温器能够有效地实现动能在不同自由度之间的均匀分布,从而确保气态系统中的压力正确。此外,径向分布函数计算表明,所提出的方法能够准确描述气态系统的结构,并且能够在受限条件下对气体分子进行适当处理,以(CO)@MOF-5的分子动力学模拟为例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2547/11736790/4dc9b86cf977/ct4c01580_0001.jpg

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