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遗传算法优化的深共晶溶剂模拟的部分电荷。

Partial Charges Optimized by Genetic Algorithms for Deep Eutectic Solvent Simulations.

机构信息

Department of Chemistry, University of Miami Coral Gables, Florida 33146, United States.

出版信息

J Chem Theory Comput. 2021 May 11;17(5):3078-3087. doi: 10.1021/acs.jctc.1c00047. Epub 2021 Apr 22.

Abstract

Deep eutectic solvents (DESs) are a class of solvents often composed of ammonium-based chloride salts and a neutral hydrogen bond donor (HBD) at specific ratios. These cost-effective and environmentally friendly solvents have seen significant growth in multiple fields, including organic synthesis, and in materials and extractions because of their desirable properties. In the present work, a new software called genetic algorithm machine learning (GAML) was developed that utilizes a genetic algorithm (GA) approach to facilitate the development of optimized potentials for liquid simulation (OPLS)-based force field (FF) parameters for eight unique DESs based on three ammonium-based salts and five HBDs at multiple salt:HBD ratios. As an initial test of GAML, partial charges were created for 86 conventional solvents based on neutral organic molecules that yielded excellent overall mean absolute deviations (MADs) of 0.021 g/cm, 0.63 kcal/mol, and 0.20 kcal/mol compared to experimental densities, heats of vaporization (Δ), and free energies of hydration (Δ), respectively. FFs for DESs constructed from ethylammonium, -diethylethanolammonium, and -ethyl-,-dimethylethanolammonium chloride salts were then parameterized using GAML with exceptional agreement achieved at multiple temperatures for experimental densities, surface tensions, and viscosities with MADs of 0.024 g/cm, 4.2 mN/m, and 5.3 cP, respectively.

摘要

深共熔溶剂 (DESs) 是一类溶剂,通常由基于铵的氯化物盐和特定比例的中性氢键供体 (HBD) 组成。由于其理想的性质,这些具有成本效益和环境友好的溶剂在多个领域(包括有机合成、材料和提取)都得到了广泛的应用。在本工作中,开发了一种称为遗传算法机器学习 (GAML) 的新软件,该软件利用遗传算法 (GA) 方法来促进基于优化势能液体模拟 (OPLS) 的力场 (FF) 参数的开发,用于基于三种铵盐和五种 HBD 的 8 种独特 DES,在多个盐:HBD 比下。作为 GAML 的初步测试,根据中性有机分子创建了 86 种常规溶剂的部分电荷,与实验密度、汽化热 (Δ) 和水合自由能 (Δ) 的总体平均绝对偏差 (MAD) 分别为 0.021 g/cm、0.63 kcal/mol 和 0.20 kcal/mol 相比,结果非常出色。然后使用 GAML 对由乙基铵、-二乙乙醇铵和 -乙基-,-二甲乙醇铵氯化物盐构建的 DESs 的 FF 进行参数化,在多个温度下实现了实验密度、表面张力和粘度的优异一致性,MAD 分别为 0.024 g/cm、4.2 mN/m 和 5.3 cP。

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