材料科学
各向同性
弹性模量
弹性(物理)
各向异性
无定形固体
无定形二氧化硅
线弹性
非线性系统
硅
长度刻度
软化
凝聚态物理
复合材料
机械
热力学
光学
物理
结晶学
有限元法
化学
冶金
工程类
量子力学
化学工程
作者
Umesh C. Roy,Angelo Bongiorno
标识
DOI:10.1021/acs.jpcc.4c06550
摘要
Density functional theory calculations and a finite deformation method are used to calculate second- and, most notably, third-order elastic constants of amorphous silicon and amorphous silicon dioxide, as represented by model structures generated via melt-quench force-field molecular dynamics simulations. Linear and nonlinear elastic constants are used to deduce macroscopic elastic moduli, such as the bulk and shear moduli, their pressure derivatives, and the elastic Grüneisen parameter. Our calculations show that the elastic properties of amorphous silicon reach the isotropic elastic limit within the nanometer length scale, attaining characteristics, both linear and nonlinear, comparable to those of crystalline silicon. In contrast, the nonlinear elastic properties of silica retain an anisotropic character over the nanometer length scales, yielding nonetheless the expected pressure-induced softening of the elastic moduli. This atypical elastic behavior is correlated to the occurrence of long-wavelength acoustic modes with negative Grüneisen parameters.
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