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Anisotropic interfacial stress at solid–liquid boundaries under uniaxial strain

  • Song Tai Lv
  • , Wen Liang Lu
  • , Sheng Qian
  • , Zi Feng Yuan
  • , Zun Liang
  • , Zhi Yong Yu
  • , Yang Yang*
  • *此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

We present a systematic atomistic investigation of solid–liquid interfacial excess stress in a model face-centered cubic metal under uniaxial strain. Molecular dynamics simulations with embedded-atom method potentials are used to quantify the orientation-dependent interfacial stress tensor and its Cartesian components for the (100), (110), and (111) interfaces. Even without applied strain, flat solid–liquid interfaces exhibit non-zero, orientation-specific excess stress, confirming the intrinsic mechanical character of equilibrium interfaces. Under uniaxial loading, the total interfacial stress exhibits pronounced orientation-dependent anisotropy, with variations exceeding 200 mJ/m2, including sign reversals and non-monotonic trends. Decomposition into components reveals three distinct coupling modes: synchronized evolution of the in-plane excess stress components τxx and τyy for (100), a strain-dominated transverse in-plane response primarily reflected in τyy for (110), and compensating trends between τxx and τyy for (111). In contrast, the normal excess component τzz remains negligible across all cases, indicating that the mechanical response is confined to the lateral directions. These features arise despite the strain being strictly uniaxial and the liquid remaining hydrostatic, underscoring the interfacial origin of the stress anisotropy. Our results demonstrate that interfacial stress is more sensitive to orientation and strain than interfacial free energy, and must be treated as a tensorial, strain-dependent thermodynamic quantity. These findings provide quantitative benchmark data for materials-scale continuum and mesoscale modeling, including Ginzburg–Landau and phase-field crystal theories, that incorporate elastic and capillary effects. They also offer mechanistic insight for modeling microstructure evolution and interface morphology during solidification under mechanical loading.

源语言英语
文章编号122140
期刊Acta Materialia
309
DOI
出版状态已出版 - 1 5月 2026

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