Dynamic Homogenization of Internal Strain in Multi‐Principal Element Alloy via High‐Concentration Doping of Oxygen with Large Mobility

Author:

Song Yajing1,Zhang Bozhao2,Li Tianxin3,Fu Xiaoqian1,Zou Jiawei1,Chen Yujie1,Fang Yan1,Zhang Qinghua4,Gu Lin5,Lu Yiping3,Yang Guang6,Liu Suya6,Wang Haifeng6,Ding Jun2,Yu Qian1ORCID

Affiliation:

1. Center of Electron Microscopy and State Key Laboratory of Silicon Materials Department of Materials Science and Engineering Zhejiang University Hangzhou 310027 China

2. Center for Alloy Innovation and Design State Key Laboratory for Mechanical Xi'an Jiaotong University Xi'an 710049 China

3. Key Laboratory of Solidification Control and Digital Preparation Technology (Liaoning Province) School of Materials Science and Engineering Dalian University of Technology Dalian 116024 China

4. Beijing National Laboratory for Condensed Matter Physics Collaborative Innovation Center of Quantum Matter Institute of Physics Chinese Academy of Sciences Beijing 100190 China

5. School of Material Science and Engineering Tsinghua University Beijing 100084 China

6. Thermo Fisher Scientific Inc. Shanghai 201210 China

Abstract

AbstractInternal strain and its distribution within the crystal lattice play crucial roles in modulating dislocation activities, thereby affecting mechanical properties of materials. Through the synergistic application of integrated differential phase contrast, in situ transmission electron microscopy characterizations, and computational simulations, a method is unveiled for homogenizing dislocation pinning in NiCoCr multi‐principal element alloy (MPEA) through the introduction of a high concentration of oxygen atoms with high diffusion mobility. The doping of massive oxygen atoms creates a high density of strong local pinning points for dislocation motion. Notably, oxygen interstitials exhibit remarkable diffusion and mobility across different octahedral and tetrahedral sites within the distorted crystal lattice of NiCoCrO alloy, even at room temperature. The capability allows for the release of severe stress concentrations arising from dislocation entanglement and the establishment of new strong local pinning points at alternative locations in a uniform way, enabling the material with high strength and outstanding deformability. These findings suggest that interstitial atoms can exhibit significant mobility, even at ambient temperature, in complex MPEAs with spreading lattice distortion, opening new possibilities for dislocation engineering.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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