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Ultra-Coarse-Grained Models Allow for an Accurate and Transferable Treatment of Interfacial Systems

机译:超粗粒模型允许准确可转移的界面系统处理

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Interfacial systems are fundamentally important in many processes. However, constructing coarse-grained (CG) models for such systems is a significant challenge due to their inhomogeneous nature. This problem is made worse due to the generally nontransferable nature of the interactions in CG models across different phases. In this paper, we address these challenges by systematically constructing ultra-coarse-grained (UCG) models for interfaces, in which the CG sites are allowed to have internal states. We find that a multiscale coarse-grained (MS-CG) representation of a single CG site model fails to identify the directionality of a molecule and is unable to reproduce the correct phase coexistence for aspherical molecules. In contrast with conventional MS-CG models, the UCG methodology allows chemical and environmental changes to be captured by modulating the interactions between internal states. In this work, we design the internal states to depend on local particle density to distinguish different phases in liquid/vapor or liquid/liquid interfaces. These UCG models are able to capture phase coexistence and recapitulate structures, notably at state points in which the MS-CG method yields poor results. Interestingly, effective pairwise forces and potentials from the UCG models are almost identical to those of the bulk liquids that correspond to each phase, indicating that the UCG approach can provide transferable interactions. This approach is expected to be applicable to other systems that exhibit phase coexistence and also to complex macromolecular systems by modulating interactions based on local density or other order parameters to unravel the complex nature underlying heterogeneous system boundaries.
机译:界面系统在许多过程中都很重要。然而,构建用于这种系统的粗粒(CG)模型是由于其不均匀性的重要挑战。由于不同阶段的CG模型中的相互作用的一般不可转换性质,因此此问题更糟糕。在本文中,我们通过系统地构建用于界面的超粗粒(UCG)模型来解决这些挑战,其中允许CG站点具有内部状态。我们发现单个CG站点模型的多尺度粗粒(MS-CG)表示未能识别分子的方向性,并且不能再现非球面分子的正确相位共存。与传统的MS-CG模型相比,UCG方法允许通过调制内部状态之间的相互作用来捕获化学和环境变化。在这项工作中,我们设计内部态度依赖于局部粒子密度,以区分液体/蒸气或液体/液体界面中的不同阶段。这些UCG模型能够捕获相位共存和综合结构,特别是在MS-CG方法产生不良结果的状态点。有趣的是,来自UCG模型的有效成对力和电位几乎与对应于每个阶段的散装液体的液体,表明UCG方法可以提供可转移的相互作用。该方法预计将适用于其他系统,该系统通过调制基于局部密度或其他订单参数的相互作用来揭示相互作用以解开复杂性质的异构系统边界的相互作用。

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