Kinetics of the bct–bcc phase transformation in tin revealed by ultrafast x-ray diffraction

J Jiangtao Li L Liang Xu S Sota Takagi (Department of Earth and Environmental Sciences, Korea University 3 , Seoul 02841,) Q Qiannan Wang (Institutes of Physical Science and Information Technology) J Jing Yang M Mengyang Zhou (Laboratory for Shock Wave and Detonation Physics Research, Institute of Fluid Physics, China Academy of Engineering Physics 1 , Mianyang 621900,) S Sen Chen K Kohei Miyanishi K Keiichi Sueda T Toshinori Yabuuchi K Kouhei Ichiyanagi (SPring-8/JASRI) H Hirotaka Nakamura (Graduate School of Engineering, Osaka University 6 , Osaka 565-0871,) A Alexis Amouretti N Norimasa Ozaki Q Qiang Wu (Jiangsu Cancer Hospital Nanjing China) J Jianbo Hu

Abstract

Understanding structural phase transitions is crucial for predicting the macroscopic behaviors of materials under shock compression. In this study, we employed in situ x-ray diffraction to investigate the crystal structures of tin along the Hugoniot. Our results demonstrate that the bct–bcc phase boundary shifts to a higher pressure under shock compression compared to static compression. This shift addresses the observed discontinuity in the relationship between shear strength and shock pressure, anchoring the dynamic bct–bcc phase boundary at 34.7 ± 2.5 GPa. To elucidate the mechanisms behind the shift, we propose a nucleation model that emphasizes the roles of surface free energy and chemical potential difference in determining the energy barrier for nucleation and the kinetics of phase transformation. This straightforward yet generalized model accounts for hysteresis effects during compression and decompression, particularly when the chemical potential differences approach zero. Additionally, it explains how phase boundaries shift under shock compression, considering competition among various phase transformation pathways. These results underscore the critical role of phase transformation kinetics in interpreting the dynamic properties of materials under shock compression, providing insights that go beyond traditional static phase diagrams.

Article Details

Volume / Issue Vol. 126, Issue 26
Published June 30, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (16)

J

Jiangtao Li

L

Liang Xu

S

Sota Takagi

Department of Earth and Environmental Sciences, Korea University 3 , Seoul 02841,

Q

Qiannan Wang

Institutes of Physical Science and Information Technology

J

Jing Yang

M

Mengyang Zhou

Laboratory for Shock Wave and Detonation Physics Research, Institute of Fluid Physics, China Academy of Engineering Physics 1 , Mianyang 621900,

S

Sen Chen

K

Kohei Miyanishi

K

Keiichi Sueda

T

Toshinori Yabuuchi

K

Kouhei Ichiyanagi

SPring-8/JASRI

H

Hirotaka Nakamura

Graduate School of Engineering, Osaka University 6 , Osaka 565-0871,

A

Alexis Amouretti

N

Norimasa Ozaki

Q

Qiang Wu

Jiangsu Cancer Hospital Nanjing China

J

Jianbo Hu