论文标题
紧张的高渗透合金中可塑性的结构起源
Structural origin of plasticity in strained high-entropy alloy
论文作者
论文摘要
高渗透合金(HEAS)是具有相等原子比的多个元素的实心溶液,为从头合金工程提供了创新的途径。尽管存在广泛的研究,以确定管理其机械行为的重要结构方面,但阐明潜在的变形机制仍然是一个挑战。使用原子模拟,我们探测了屈服模型中的粒子重排以了解其可塑性的结构起源。我们发现,塑性变形是由不可逆的拓扑波动引发的,这些波动倾向于在空间上定位在被称为软斑的区域,这些区域由颗粒组成,这些颗粒由积极参与慢速振动运动的颗粒组成,这令人惊讶地让人联想到非线性玻璃流变学。由于由于组成周期性的丧失而导致的局部弹性模量有所不同,因此这些塑料反应表现出显着的空间异质性,并被发现与局部电负性分布成反比。进一步的机械载荷促进了这些本地塑料事件之间的合作性,并触发了位错环的形成。与紧张的结晶固体一样,不同的脱位环可以进一步合并并传播为大规模塑性变形的主要载体。然而,位于局部电负性较高的空间区域的能量屏障严重阻碍了位错运动。通过描述原子构型的瞬态机械响应,我们的计算结果为了解单相HEA的可塑性的性质提供了新的启示。
High-entropy alloys (HEAs) are solid solutions of multiple elements with equal atomic ratios which present an innovative pathway for de novo alloy engineering. While there exist extensive studies to ascertain the important structural aspects governing their mechanical behaviors, elucidating the underlying deformation mechanisms still remains a challenge. Using atomistic simulations, we probe the particle rearrangements in a yielding, model HEA system to understand the structural origin of its plasticity. We find the plastic deformation is initiated by irreversible topological fluctuations which tend to spatially localize in regions termed as soft spots which consist of particles actively participating in slow vibrational motions, an observation strikingly reminiscent of nonlinear glassy rheology. Due to the varying local elastic moduli resulting from the loss of compositional periodicity, these plastic responses exhibit significant spatial heterogeneity and are found to be inversely correlated with the distribution of local electronegativity. Further mechanical loading promotes the cooperativity among these local plastic events and triggers the formation of dislocation loops. As in strained crystalline solids, different dislocation loops can further merge together and propagate as the main carrier of large-scale plastic deformation. However, the energy barriers located at the spatial regions with higher local electronegativity severely hinders the motion of dislocations. By delineating the transient mechanical response in terms of atomic configuration, our computational findings shed new light on understanding the nature of plasticity of single-phase HEA.