Maldonado Alex M, Basdogan Yasemin, Berryman Joshua T, Rempe Susan B, Keith John A
Department of Chemical and Petroleum Engineering, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, USA.
Department of Physics and Materials Science, University of Luxembourg, L-1511 Luxembourg City, Luxembourg.
J Chem Phys. 2020 Apr 7;152(13):130902. doi: 10.1063/1.5143207.
Mixed solvents (i.e., binary or higher order mixtures of ionic or nonionic liquids) play crucial roles in chemical syntheses, separations, and electrochemical devices because they can be tuned for specific reactions and applications. Apart from fully explicit solvation treatments that can be difficult to parameterize or computationally expensive, there is currently no well-established first-principles regimen for reliably modeling atomic-scale chemistry in mixed solvent environments. We offer our perspective on how this process could be achieved in the near future as mixed solvent systems become more explored using theoretical and computational chemistry. We first outline what makes mixed solvent systems far more complex compared to single-component solvents. An overview of current and promising techniques for modeling mixed solvent environments is provided. We focus on so-called hybrid solvation treatments such as the conductor-like screening model for real solvents and the reference interaction site model, which are far less computationally demanding than explicit simulations. We also propose that cluster-continuum approaches rooted in physically rigorous quasi-chemical theory provide a robust, yet practical, route for studying chemical processes in mixed solvents.
混合溶剂(即离子液体或非离子液体的二元或更高阶混合物)在化学合成、分离及电化学装置中发挥着关键作用,因为它们可针对特定反应和应用进行调整。除了难以进行参数化或计算成本高昂的完全显式溶剂化处理外,目前还没有成熟的第一性原理方法来可靠地模拟混合溶剂环境中的原子尺度化学。随着混合溶剂系统通过理论和计算化学得到更多探索,我们就如何在不久的将来实现这一过程给出了自己的观点。我们首先概述了与单组分溶剂相比,混合溶剂系统更为复杂的原因。提供了当前用于模拟混合溶剂环境的以及有前景的技术概述。我们重点关注所谓的混合溶剂化处理,如真实溶剂的类导体屏蔽模型和参考相互作用位点模型,它们的计算需求远低于显式模拟。我们还提出,基于物理严格的准化学理论的簇-连续介质方法为研究混合溶剂中的化学过程提供了一条稳健且实用的途径。