论文标题

BCC折射金属和合金的非线性变形和弹性

Nonlinear deformation and elasticity of BCC refractory metals and alloys

论文作者

Raghuraman, Vishnu, Widom, Michael, Gao, Michael C.

论文摘要

各向同性压力或单轴应变的应用改变了材料的弹性特性;足够大的菌株可以驱动结构转换。线性弹性描述了针对无限菌株的稳定性,而非线性弹性描述了对有限变形的响应。先前的表明,沿[100]的单轴应变驱动耐火金属和合金朝机械不稳定性驱动。这些包括延伸的不稳定性,以及由Jahn-Teller-Peierls不稳定性引起的对称性的正骨畸变,该失真使立方晶格向量溅起。在这里,我们深入分析了这些过渡。华莱士张量的特征值和特征向量在菌株存在下识别和分类线性不稳定性。我们表明,这两个不稳定性都是不连续的,导致晶格参数的离散跳跃。我们通过分析应用应变时的第一原理,压力,键长和角度的变化来为不稳定性提供物理直觉。电子带结构的计算显示粘结和反键轨道的差异占用,这是由于键长的变化和导致结构转换的驱动。这些不稳定性的应变阈值取决于价电子计数。

Application of isotropic pressure or uniaxial strain alters the elastic properties of materials; sufficiently large strains can drive structural transformations. Linear elasticity describes stability against infinitesimal strains, while nonlinear elasticity describes the response to finite deformations. It was previously shown that uniaxial strain along [100] drives refractory metals and alloys towards mechanical instabilities. These include an extensional instability, and a symmetry-breaking orthorhombic distortion caused by a Jahn-Teller-Peierls instability that splays the cubic lattice vectors. Here, we analyze these transitions in depth. Eigenvalues and eigenvectors of the Wallace tensor identify and classify linear instabilities in the presence of strain. We show that both instabilities are discontinuous, leading to discrete jumps in the lattice parameters. We provide physical intuition for the instabilities by analyzing the changes in first principles energy, stress, bond lengths and angles upon application of strain. Electronic band structure calculations show differential occupation of bonding and anti-bonding orbitals, driven by the changing bond lengths and leading to the structural transformations. Strain thresholds for these instabilities depend on the valence electron count.

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