An experimentally driven high-throughput approach to design refractory high-entropy alloys

被引:13
作者
Lee C. [1 ]
Xie D. [2 ]
Kyle Derby B. [2 ]
Kevin Baldwin J. [2 ]
Tandoc C. [3 ]
Ei Atwani O. [2 ]
Hu Y.-J. [3 ]
Valdez J.A. [1 ]
Li N. [2 ]
Fensin S.J. [1 ]
机构
[1] Materials Science and Technology Division, Los Alamos National Laboratory, Los Alamos, 87545, NM
[2] Center for Integrated Nanotechnologies, MPA Division, Los Alamos National Laboratory, Los Alamos, 87545, NM
[3] Department of Materials Science and Engineering, Drexel University, Philadelphia, 19104, PA
关键词
High-entropy Alloys; High-throughput experiments; Physical vapor deposition;
D O I
10.1016/j.matdes.2022.111259
中图分类号
学科分类号
摘要
High-entropy alloy (HEA) design strategies have been limited to theoretical/computational approaches due to their compositional complexity and extremely large compositional parameter space. In this work, we developed an experimentally driven, high-throughput, HEA design approach using a physical vapor deposition (PVD) technique and coupled it with nanomechanical testing to accelerate material design for structural applications. The PVD technique enabled the formation of a compositional gradient across a thin-film sample. Specifically, a 10 cm wafer was used to manufacture a continuous set of 80 HEA compositions within the Nb-Ti-V-Zr family using a single deposition cycle. By using the solid-solution strengthening theory and estimated parameter properties, the strength and ductility of these HEA compositions were quantitatively determined/predicted and then experimentally verified by nano-indentation hardness test. Consequently, 7 refractory HEA compositions were successfully down-selected, which has a high propensity to have a balanced mechanical property. © 2022
引用
收藏
相关论文
共 50 条
[41]   Phase Engineering of High-Entropy Alloys [J].
Chang, Xuejiao ;
Zeng, Mengqi ;
Liu, Keli ;
Fu, Lei .
ADVANCED MATERIALS, 2020, 32 (14)
[42]   Phase, microstructure and compressive properties of refractory high-entropy alloys CrHfNbTaTi and CrHfMoTaTi [J].
Yi, Jiaojiao ;
Cao, Fuyang ;
Xu, Mingqin ;
Yang, Lin ;
Wang, Lu ;
Zeng, Long .
INTERNATIONAL JOURNAL OF MINERALS METALLURGY AND MATERIALS, 2022, 29 (06) :1231-1236
[43]   Design of (TiHfZr)(NiCoCu) High-Entropy Shape Memory Alloys: From Firstov's Experiments to Data-Driven Approach [J].
Peltier, L. ;
Thiercelin, L. ;
Meraghni, F. .
SHAPE MEMORY AND SUPERELASTICITY, 2025, 11 (02) :255-266
[44]   Formation ability descriptors for high-entropy diborides established through high-throughput experiments and machine learning [J].
Meng, Hong ;
Yu, Renwang ;
Tang, Zhongyu ;
Wen, Zihao ;
Yu, Hulei ;
Chu, Yanhui .
ACTA MATERIALIA, 2023, 256
[45]   Refractory high-entropy alloys fabricated using laser technologies: a concrete review [J].
Cheng, Wei ;
Ji, Lingfei ;
Zhang, Litian ;
Wang, Hao ;
Sun, Weigao .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2023, 24 :7497-7524
[46]   Strength of Disordered and Ordered Al-Containing Refractory High-Entropy Alloys [J].
Laube, Stephan ;
Winkens, Georg ;
Kauffmann, Alexander ;
Li, Juan ;
Kirchlechner, Christoph ;
Heilmaier, Martin .
ADVANCED ENGINEERING MATERIALS, 2024, 26 (17)
[47]   Microstructural Verification, Mechanical and Wear Analysis of MoTaNbVxTi Refractory High-Entropy Alloys [J].
Poulia, A. ;
Mathiou, C. ;
Georgatis, E. ;
Karantzalis, A. E. .
STRENGTH OF MATERIALS, 2021, 53 (06) :1011-1022
[48]   NbTaV-(Ti,W) refractory high-entropy alloys: Experiments and modeling [J].
Yao, H. W. ;
Qiao, J. W. ;
Gao, M. C. ;
Hawk, J. A. ;
Ma, S. G. ;
Zhou, H. F. ;
Zhang, Y. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2016, 674 :203-211
[49]   Science and technology in high-entropy alloys [J].
Zhang, Weiran ;
Liaw, Peter K. ;
Zhang, Yong .
SCIENCE CHINA-MATERIALS, 2018, 61 (01) :2-22
[50]   An Overview of High-Entropy Alloys as Biomaterials [J].
Castro, Diogo ;
Jaeger, Pedro ;
Baptista, Ana Catarina ;
Oliveira, Joao Pedro .
METALS, 2021, 11 (04)