论文标题
固定型高渗透合金中螺钉脱位运动的分层势能景观
The Hierarchical Potential Energy Landscape of Screw Dislocation Motion in Refractory High-entropy Alloys
论文作者
论文摘要
具有浓缩固体溶液的高渗透合金(HEAS)具有坚固的原子和能量景观,其中脱位运动必然会用于适应机械变形。关于能源景观的粗糙程度以及其组成元素的当地秩序影响,它的基本问题仍然存在。在这里,我们在难治性HEAS中构建和报告螺钉脱位运动的势能景观(PEL),该螺钉位错运动揭示了一个分层和多层结构,其中包含嵌套在大型metabasin中的小盆地。与HEAS有关的这一引人注目的特征在鞍点激活上施加了诱捕力和背部应力,从而使脱位运动延伸。通过引入化学短距离顺序,可以使能量景观平滑,但偏向不同的程度,使速率限制过程从扭结 - 基因到扭结成核。类似于金属玻璃中引起的结构障碍的化学障碍在HEAS中的pEL骨折,表示两种不同材料群体的非凡机械行为的各种障碍物过程的作用。
High-entropy alloys (HEAs) with concentrated solid solutions are conceived to possess a rugged atomic and energy landscape in which dislocation motion necessarily proceeds to accommodate mechanical deformation. Fundamental questions remain as to how rough the energy landscape is and to what extent it can be influenced by the local ordering of their constituent elements. Here, we construct and report the potential energy landscape (PEL) governing screw dislocation motion in refractory HEAs that reveals a hierarchical and multilevel structure with a collection of small basins nested in large metabasin. This striking feature pertaining to HEAs exerts a trapping force and back stress on saddle point activations, retarding dislocation movement. By introducing chemical short-range order, the energy landscape is smoothed but skewed to different degrees that shifts the rate-liming process from kink-glide to kink-pair nucleation. The chemical disorder-roughened PEL in HEAs, analogous to structural disorder induced in metallic glasses, signifies the role of various barrier-hopping processes underlying the extraordinary mechanical behaviors of the two distinct groups of materials.