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首页> 外文期刊>The Journal of Chemical Physics >van der Waals forces: Accurate calculation and assessment of approximate methods in dielectric nanocolloids up to 16 nm
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van der Waals forces: Accurate calculation and assessment of approximate methods in dielectric nanocolloids up to 16 nm

机译:范德华力:精确计算和评估16 nm以下电介质纳米胶体中的近似方法

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摘要

A microscopic method is used to calculate the van der Waals (VDW) forces between large nanocolloids. We assess the reliability of predictions derived from the most commonly used macroscopic method in practice, the Dzyaloshinskii–Lifshitz–Pitaevskii (DLP) theory combined with the Derjaguin approximation, by calculating the VDW interactions using the “coupled dipole method” (CDM). The CDM, which has demonstrated its ability to calculate VDW interactions for small nanoclusters, accounts for all many-body forces, and it does not assume a continuous,homogeneous dielectric function in each material. It is shown that, out of three explored, one of the routinely assumed properties (“small-separation dominance”) of VDW forces predicted from the macroscopic method is generally applicable for large spherical dielectric nanoclusters of diameter 16 nm allowing much more efficient CDM calculations. The failure of two other routinely assumed properties, “infinite-depth approximation” and “sphere-cube analogy,” demonstrates that the effect of finite-size and shape is important in nanocolloid systems even at the large size of 16 nm.
机译:微观方法用于计算大型纳米胶体之间的范德华力(VDW)。我们通过使用“偶合偶极子方法”(CDM)计算VDW相互作用,评估了实践中最常用的宏观方法Dzyaloshinskii–Lifshitz–Pitaevskii(DLP)理论与Derjaguin逼近相结合得出的预测的可靠性。 CDM展示了计算小型纳米团簇的VDW相互作用的能力,可解决所有多体力,并且在每种材料中均未假定连续,均匀的介电功能。结果表明,在探索的三分之二中,由宏观方法预测的VDW力的常规假设性质(“小间距优势”)通常适用于直径为16 nm的大型球形介电纳米团簇,从而使CDM计算更加有效。其他两个常规假定的属性“无限深度近似”和“球立方模拟”的失败表明,即使在16 nm的大尺寸纳米系统中,有限尺寸和形状的影响也很重要。

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