Strength softening in copper upon compression: Competition between Hall–Petch and dislocation density effect

Q Qiumin Jing (National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, CAEP , Mianyang 621900, Sichuan,) L Lei Liu Y Yi Zhang F Feng Xi H Hao Wang (Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA) H HuaYun Geng (National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, China Academy of Engineering Physics 1 , Mianyang, Sichuan 621900,) S Shourui Li (National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, China Academy of Engineering Physics 2 , Mianyang 621900,) J Junjie Gao X Xiaohui Chen (School of Chemical Engineering and Materials, Changzhou Institute of Technology, No. 666 Liaohe Road, Changzhou 213032, China) J Jun Li Y Yuying Yu (National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, CAEP , Mianyang 621900, Sichuan,) K Ke Jin (National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures and School of Physics, Nanjing University , Nanjing 210093,) Q Qiang Wu (Jiangsu Cancer Hospital Nanjing China)

Abstract

The strength enhancement of materials under modest loading was first documented by Bridgman, nearly a century ago. However, specific materials present anomalous strength softening at high pressures, including copper, which is a prototype fcc metal. To reveal the underlying mechanism of this anomalous phenomenon, we employed a combined Modified Williamson–Hall and Modified Warren–Averbach analytical approach to conduct a systematic and comprehensive analysis on the macroscopic to microscopic scales. The in situ crystallite size evolution, dislocation density variation, and flow stress dependence on pressure in copper is reported for the first time. Our results demonstrate an unconventional strength softening regime in copper between 3.6 and 9.5 GPa. This anomalous weakening originates from the competition between the pressure-induced reduction in dislocation density and the decrease in grain size (Hall–Petch effect). This work elucidates universal mechanisms governing strength evolution in materials under extreme loading conditions, as well as offers a protocol to determine the crystallite size evolution, dislocation density variation, and flow stress of materials as a function of pressure.

Article Details

Volume / Issue Vol. 138, Issue 13
Published October 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (13)

Q

Qiumin Jing

National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, CAEP , Mianyang 621900, Sichuan,

L

Lei Liu

Y

Yi Zhang

F

Feng Xi

H

Hao Wang

Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA

H

HuaYun Geng

National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, China Academy of Engineering Physics 1 , Mianyang, Sichuan 621900,

S

Shourui Li

National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, China Academy of Engineering Physics 2 , Mianyang 621900,

J

Junjie Gao

X

Xiaohui Chen

School of Chemical Engineering and Materials, Changzhou Institute of Technology, No. 666 Liaohe Road, Changzhou 213032, China

J

Jun Li

Y

Yuying Yu

National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics, CAEP , Mianyang 621900, Sichuan,

K

Ke Jin

National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures and School of Physics, Nanjing University , Nanjing 210093,

Q

Qiang Wu

Jiangsu Cancer Hospital Nanjing China