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Structure and Dynamics of Water at the Water–AirInterface Using First-Principles Molecular Dynamics Simulations. II.NonLocal vs Empirical van der Waals Corrections

机译:水-空气中水的结构和动力学使用第一性原理分子动力学模拟的界面。二。非本地与经验范德华校正

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摘要

van der Waals (vdW) correction schemes have been recognized to be essential for an accurate description of liquid water in first-principles molecular dynamics simulation. The description of the structure and dynamics of water is governed by the type of the vdW corrections. So far, two vdW correction schemes have been often used: empirical vdW corrections and nonlocal vdW corrections. In this paper, we assess the influence of the empirical vs nonlocal vdW correction schemes on the structure and dynamics of water at the water–air interface. Since the structure of water at the water–air interface is established by a delicate balance of hydrogen bond formation and breaking, the simulation at the water–air interface provides a unique platform to testify as to the heterogeneous interaction of water. We used the metrics [Ohto et al. J. Chem. Theory Comput., 2019, 15, 595−602 [] []] which are directly connected with the sum-frequency generation spectroscopic measurement. We find that the overall performance of nonlocal vdW methods is either similar or worse compared to the empirical vdW methods.We also investigated the performance of the optB88-DRSLL functional,which showed slightly less accuracy than the revPBE-D3 method. Weconclude that the revPBE-D3 method shows the best performance fordescribing the interfacial water.
机译:范德华(vdW)校正方案已被认为对于第一原理分子动力学模拟中准确描述液态水至关重要。水的结构和动力学的描述受vdW校正的类型支配。迄今为止,经常使用两种vdW校正方案:经验vdW校正和非局部vdW校正。在本文中,我们评估了经验与非局部vdW校正方案对水-空气界面处水的结构和动力学的影响。由于水-空气界面处的水结构是通过氢键形成和断裂的微妙平衡建立的,因此,水-空气界面处的模拟提供了一个独特的平台来证明水的异质相互作用。我们使用了指标[Ohto等。 J.化学理论计算,2019,15,595−602 [] []与和频产生光谱测量直接相关。我们发现,非本地vdW方法的整体性能与经验vdW方法相比相似或较差。我们还研究了optB88-DRSLL功能的性能,与revPBE-D3方法相比,其准确性略低。我们结论是revPBE-D3方法显示出最佳的性能描述界面水。

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