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Solute segregation and deviation from bulk thermodynamics at nanoscale crystalline defects

机译:纳米级晶体缺陷处的溶质偏析和整体热力学偏差

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It has long been known that solute segregation at crystalline defects can have profound effects on material properties. Nevertheless, quantifying the extent of solute segregation at nanoscale defects has proven challenging due to experimental limitations. A combined experimental and first-principles approach has been used to study solute segregation at extended intermetallic phases ranging from 4 to 35 atomic layers in thickness. Chemical mapping by both atom probe tomography and high-resolution scanning transmission electron microscopy demonstrates a markedly different composition for the 4–atomic-layer–thick phase, where segregation has occurred, compared to the approximately 35–atomic-layer–thick bulk phase of the same crystal structure. First-principles predictions of bulk free energies in conjunction with direct atomistic simulations of the intermetallic structure and chemistry demonstrate the breakdown of bulk thermodynamics at nanometer dimensions and highlight the importance of symmetry breaking due to the proximity of interfaces in determining equilibrium properties.
机译:早就知道,晶体缺陷处的溶质偏析会对材料性能产生深远的影响。然而,由于实验的局限性,量化纳米级缺陷处溶质的偏析程度已被证明具有挑战性。实验和第一性原理相结合的方法已用于研究在扩展的金属间相中的溶质偏析,该相在厚度范围为4到35个原子层之间。通过原子探针层析成像和高分辨率扫描透射电子显微镜进行的化学作图表明,发生了分离的4原子层厚的相的组成明显不同,相比之下,4原子层厚的相已经发生了分离。相同的晶体结构。第一性原理对体积自由能的预测与金属间结构和化学的直接原子模拟相结合,证明了纳米尺度下本体热力学的破裂,并强调了由于界面的接近性导致对称性破坏的重要性,从而决定了平衡性能。

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