Size Dependent Surface Energy and Surface Tension

H.M. Lu, Q. Jiang
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引用次数: 2

Abstract

A model for size-dependent surface energy of nanocrystals, γsv(D), has been established based on previous models for bulk surface energy γsv0and the size-dependent cohesive energy E(D). Since the structure and energy differences between solid and liquid are small in comparison with those between solid and gas or between liquid and gas, this model can be extended to describe the size dependence of surface tension γ1v(D). It is found that γsv(D) and γ1v(D) drop monotonically with size in the nanometer region while the surface energy ratio between different facets is size-independent and equals the corresponding bulk one. Moreover, size dependence of Tolman length is also discussed. Modeling predictions agree with the experimental and theoretical results of γsv(D) for beryllium, magnesium, sodium, aluminum and gold, and the computer simulations of γ1v(D) for sodium, and aluminum droplets.
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尺寸相关的表面能和表面张力
在前人的体积表面能γsv0和内聚能E(D)模型的基础上,建立了纳米晶体尺寸相关表面能γsv(D)模型。由于固液之间的结构和能量差异相对于固气之间或液气之间的结构和能量差异较小,因此可以将该模型推广到描述表面张力γ1v(D)的尺寸依赖性。结果表明,γsv(D)和γ1v(D)在纳米区域随尺寸的增大而单调下降,而不同面间的表面能比与尺寸无关,等于相应的体能比。此外,还讨论了托尔曼长度的尺寸依赖性。模型预测与铍、镁、钠、铝和金的γsv(D)的实验和理论结果以及钠和铝液滴的γ1v(D)的计算机模拟结果一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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