Acoustic shock wave impact on stability aspects of crystal structure–functional properties—A case study of corundum-type structure of α-Cr2O3 nanoparticles

S Sivakumar Aswathappa (School of Physics and Electronic Science, Guizhou Normal University 1 , Guiyang 550025,) L Lidong Dai (School of Physics and Electronic Science, Guizhou Normal University 1 , Guiyang 550025,) S Sahaya Jude Dhas Sathiyadhas (Department of Physics, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences (SIMATS), Saveetha University 2 , Chennai, Tamil Nadu 602105,) R Raju Suresh Kumar C Cathrin Lims Selvakumar (4 Centre for Applied Nanomaterials, Chennai Institute of Technology, Chennai 600 069, Tamil Nadu, India) H Haiying Hu (Department of Neurology, First Affiliated Hospital of USTC, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, China) B Bing Lv (Department of Physics, The University of Texas at Dallas) X Xuefei Liu (School of Physics and Electronic Science) Z Ziqiang Xu A Abdulrahman I. Almansour

Abstract

Subjecting solid-state materials to shock conditions is one of the most familiar subjects in condensed matter research, helping to understand the usual and unusual behaviors of materials through their phase transitions and functional property changes. Highly stable materials under extreme conditions are typically considered for technological applications, and high-pressure researchers always try to find such materials to build a world of strong and stable materials science. In this context, we are inclined to investigate the corundum-type structure of α-Cr2O3 NPs under dynamic acoustic shock conditions and compare it with previously reported α-Fe2O3 NPs. From the structural point of view, under acoustic shock conditions, α-Cr2O3 NPs remain the same with the R3-c space group even at the 200-shocked condition, whereas in α-Fe2O3, the α-Fe2O3 (R3-c)-to-Fe3O4 (Fd-3m) transition is observed. For both these oxides, supporting evidence for the results is also presented via vibrational, optical, magnetic, thermal, electrical, and electrochemical properties. In addition, a possible mechanism is proposed, implementing a thermal conductivity-driven superheating approach to justify the stability order for both oxides. According to the observed static compression results and the current acoustic shock wave-induced results of these two oxides, the structural stability order is α-Cr2O3>α-Fe2O3. Due to the impressive results of structural stability under static and dynamic shock conditions, α-Cr2O3 is a more suitable candidate for extreme conditions such as aerospace and defense applications.

Article Details

Volume / Issue Vol. 164, Issue 20
Published May 28, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (10)

S

Sivakumar Aswathappa

School of Physics and Electronic Science, Guizhou Normal University 1 , Guiyang 550025,

L

Lidong Dai

School of Physics and Electronic Science, Guizhou Normal University 1 , Guiyang 550025,

S

Sahaya Jude Dhas Sathiyadhas

Department of Physics, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences (SIMATS), Saveetha University 2 , Chennai, Tamil Nadu 602105,

R

Raju Suresh Kumar

C

Cathrin Lims Selvakumar

4 Centre for Applied Nanomaterials, Chennai Institute of Technology, Chennai 600 069, Tamil Nadu, India

H

Haiying Hu

Department of Neurology, First Affiliated Hospital of USTC, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, China

B

Bing Lv

Department of Physics, The University of Texas at Dallas

X

Xuefei Liu

School of Physics and Electronic Science

Z

Ziqiang Xu

A

Abdulrahman I. Almansour