Dislocation behavior and slip plane preferences in refractory multi-principal element alloys: Insights into strength-ductility trade-offs

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zhiwen Li, Baoxian Su, Chen Liu, Zhe Li, Qingda Zhang, Zhaoqi Jiang, Binbin Wang, Ruirun Chen, Liang Wang, Yanqing Su
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Abstract

The intricate balance between strength and ductility in refractory multi-principal element alloys (MPEAs) represents a pivotal research challenge. This study delves into the room-temperature tensile deformation mechanisms in TiZrNbMox MPEAs, focusing on dislocation behavior and slip plane preference. Our findings reveal that an augmentation in Mo content significantly enhances strength while concurrently diminishing plasticity. Through an integrative approach, encompassing experimental observations, theoretical analyses, and computational modeling, we discern a pronounced transition in deformation mechanisms prompted by Mo incorporation. TiZrNb primarily exhibits stochastic activation of slip systems across diverse crystallographic planes, with mixed dislocations assuming a pivotal role. However, in the TiZrNbMo0.3 alloy, the deformation mechanism transitions towards a predominant {110} slip plane, governed by the lower generalized stacking fault energy relative to other slip planes. Concurrently, the dislocation nature undergoes a transition from mixed to screw dislocations, which significantly impedes glide due to their compact core structures, thereby ultimately diminishing ductility. We ascribe the observed alterations in dislocation characteristics and slip plane preferences to variations in valence electron concentration (VEC), thus offering a mechanistic explanation for the VEC-based ductility criterion in refractory MPEAs. These findings underscore the critical role of high-VEC Mo in modulating the delicate balance between strength and ductility in these alloys. Our results furnish pivotal insights into the strategic design of MPEAs with bespoke mechanical properties, achieved through the deliberate manipulation of dislocation behavior and slip system activation.

Abstract Image

难熔多主元素合金中的位错行为和滑移面偏好:对强度-延性权衡的见解
耐火多主元素合金(mpea)的强度和延性之间的复杂平衡是一个关键的研究挑战。本研究深入研究了TiZrNbMox MPEAs的室温拉伸变形机制,重点研究了位错行为和滑移面偏好。我们的研究结果表明,Mo含量的增加显著提高了强度,同时降低了塑性。通过综合的方法,包括实验观察、理论分析和计算建模,我们发现Mo掺入引起的变形机制发生了明显的转变。TiZrNb主要表现为滑移系统在不同晶体平面上的随机激活,其中混合位错起着关键作用。而在TiZrNbMo0.3合金中,变形机制转变为主要的{110}滑移面,受相对于其他滑移面较低的广义层错能控制。同时,位错的性质经历了从混合位错到螺旋位错的转变,由于其致密的核心结构,严重阻碍了滑动,从而最终降低了延展性。我们将观察到的位错特征和滑移面偏好的变化归因于价电子浓度(VEC)的变化,从而为基于VEC的耐火m豌豆延性标准提供了机制解释。这些发现强调了高vec Mo在调节这些合金的强度和延展性之间的微妙平衡中的关键作用。我们的研究结果为mpea的战略设计提供了关键的见解,这些mpea通过故意操纵位错行为和滑移系统激活来实现定制的力学性能。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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