Ultra-strong tungsten refractory high-entropy alloy via stepwise controllable coherent nanoprecipitations

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作者
Tong Li
Tianwei Liu
Shiteng Zhao
Yan Chen
Junhua Luan
Zengbao Jiao
Robert O. Ritchie
Lanhong Dai
机构
[1] Chinese Academy of Sciences,State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics
[2] University of Chinese Academy of Sciences,School of Engineering Science
[3] Beihang University,School of Materials Science and Engineering
[4] City University of Hong Kong,Department of Materials Science and Engineering
[5] Hong Kong Polytechnic University,Department of Mechanical Engineering
[6] Lawrence Berkeley National Laboratory,Materials Sciences Division
[7] University of California,Department of Materials Science and Engineering
[8] Berkeley,undefined
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摘要
High-performance refractory alloys with ultrahigh strength and ductility are in demand for a wide range of critical applications, such as plasma-facing components. However, it remains challenging to increase the strength of these alloys without seriously compromising their tensile ductility. Here, we put forward a strategy to “defeat” this trade-off in tungsten refractory high-entropy alloys by stepwise controllable coherent nanoprecipitations (SCCPs). The coherent interfaces of SCCPs facilitate the dislocation transmission and relieve the stress concentrations that can lead to premature crack initiation. As a consequence, our alloy displays an ultrahigh strength of 2.15 GPa with a tensile ductility of 15% at ambient temperature, with a high yield strength of 1.05 GPa at 800 °C. The SCCPs design concept may afford a means to develop a wide range of ultrahigh-strength metallic materials by providing a pathway for alloy design.
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