Department of Chemistry, University of Wisconsin─Madison, 1101 University Avenue, Madison, Wisconsin 53706, United States.
Department of Chemistry and Biochemistry, Spelman College, 350 Spelman Ln SW, Atlanta, Georgia 30314, United States.
J Phys Chem A. 2023 Feb 23;127(7):1736-1749. doi: 10.1021/acs.jpca.2c07244. Epub 2023 Feb 13.
π-interactions are an important motif in chemical and biochemical systems. However, due to their anisotropic electron densities and complex balance of intermolecular interactions, aromatic molecules represent an ongoing challenge for accurate and transferable force field development. Historically, force fields for aromatics have not exhibited good accuracy with respect to bulk properties or have only been used to study gas-phase dimers. Using benzene as a proof of concept, herein we show how our own MASTIFF force field incorporates an atomically anisotropic description of intermolecular interactions to yield an accurate and robust model for aromatic interactions irrespective of phase. Compared to existing models, the MASTIFF benzene force field not only is accurate for liquid phase properties but also offers transferability to the gas and solid phases. Additionally, we introduce a computationally efficient OpenMM plugin which enables customizable anisotropic intermolecular functional forms and which can be generically used in any MD simulation where a model for nonspherical atomic features is required. Overall, our results demonstrate the importance of atomic-level anisotropy in enabling next-generation force field development.
π 相互作用是化学和生化系统中的一个重要主题。然而,由于其各向异性的电子密度和复杂的分子间相互作用平衡,芳香族分子代表了准确和可转移力场开发的持续挑战。历史上,芳香族的力场在关于体相性质方面没有表现出很好的准确性,或者仅用于研究气相二聚体。本文以苯作为概念验证,展示了我们自己的 MASTIFF 力场如何将分子间相互作用的原子各向异性描述结合起来,从而生成一个无论相态如何都能准确而稳健地描述芳香族相互作用的模型。与现有模型相比,MASTIFF 苯力场不仅对液相性质准确,而且还可转移到气相和固相。此外,我们引入了一个计算效率高的 OpenMM 插件,该插件支持可定制的各向异性分子间相互作用形式,并可在任何需要非球形原子特征模型的 MD 模拟中通用使用。总体而言,我们的结果表明,原子级各向异性在实现下一代力场开发方面的重要性。