材料科学
旋节分解
层状结构
微观结构
韧性
可塑性
位错
纳米压痕
极限抗拉强度
断裂韧性
旋节
合金
纳米尺度
复合材料
相(物质)
Twip公司
亚稳态
化学物理
铌
断裂(地质)
冶金
长度刻度
正交晶系
分子动力学
结构材料
三元运算
固溶体
张力(地质)
多尺度建模
损伤容限
材料的强化机理
纳米技术
蠕动
结晶学
渗碳体
作者
Ravit Silverstein,Florent Mignerot,Nicolò Maria della Ventura,Julia T. Pürstl,Klemens Schmuck,Jeremiah Thomas,Glenn H. Balbus,Fulin Wang,Jungho Shin,Anton Van der Ven,Daniel Kiener,Tresa M. Pollock,Daniel S. Gianola
出处
期刊:Acta Materialia
[Elsevier BV]
日期:2025-11-20
卷期号:304: 121741-121741
被引量:1
标识
DOI:10.1016/j.actamat.2025.121741
摘要
Materials engineered to endure extreme environmental conditions face a challenging balance between temperature resistance and vexing strength-toughness trade-offs. Body-centered cubic refractory alloys are attractive for their exceptional strength at elevated temperatures, yet at ambient conditions, they tend to exhibit ceramic-like behavior characterized by low toughness and ductility. In this work, we demonstrate a metastability alloy design approach using oxygen interstitials to generate a nanoscale hierarchical microstructure in equiatomic TiNb with a strength exceeding 2 GPa in tension while retaining moderate initiation fracture toughness. These exceptional properties, measured site-specifically using nanoindentation and micro-tensile tests, are linked to phase decomposition pathways arising from oxygen-induced immiscibility, including spinodal decomposition with nanoscale compositional undulations and the simultaneous emergence of a dual-phase lamellar structure. These microstructures feature very fine scale domains that can be described via a structural evolution along the Burgers pathway, including intermediate orthorhombic structures, which act in concert to provide obstacles to dislocation glide at multiple length scales. In situ tensile experiments demonstrate that dislocation-mediated plasticity is difficult in the spinodal-like regions, whereas dislocation glide can occur readily within the Nb-rich BCC lamellae, facilitating more uniform plasticity. The interstitial engineering approach shown here integrates nanostructured architectures, strength, and toughness reminiscent of advanced steels with the potential for high-temperature structural applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI