Atomistic Modeling of Martensitic Phase Transition in Hexamethylbenzene

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Fahim, Zarif, Santos-Florez, Pedro A., Zhu, Qiang
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866918051728850944
author Fahim, Zarif
Santos-Florez, Pedro A.
Zhu, Qiang
author_facet Fahim, Zarif
Santos-Florez, Pedro A.
Zhu, Qiang
contents Materials exhibiting a martensitic phase transition are essential for applications in shape memory alloys, actuators and sensors. Hexamethylbenzene (HMB) has long been considered as a classical example of ferroelastic organic crystals since Mnyukh's pioneering work in 1970s. However, the atomistic mechanism underlying this phase transition has never been clarified. In this work, we present a direct molecular dynamics simulation to investigate the phase transition mechanism in HMB. For the first time, we report a simulation results that can accurately reproduce both the transition temperature and hysteresis loop observed in previous experimental studies. By analyzing the MD trajectories, the potential energy surface, we identified that a low-barrier atomic sliding mode along the close-packed (11$\overline{1}$) plane of the low-temperature phase is the key to trigger the phase transition at the critical temperature window. This is further confirmed by the observed continuous softening of shear modulus around the transition window. Our results demonstrate that the integration of various atomistic modeling techniques can provide invaluable insight into the martensitic phase transition mechanisms in organic crystals and guide the development of new organic martensites.
format Preprint
id arxiv_https___arxiv_org_abs_2501_11719
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atomistic Modeling of Martensitic Phase Transition in Hexamethylbenzene
Fahim, Zarif
Santos-Florez, Pedro A.
Zhu, Qiang
Materials Science
Materials exhibiting a martensitic phase transition are essential for applications in shape memory alloys, actuators and sensors. Hexamethylbenzene (HMB) has long been considered as a classical example of ferroelastic organic crystals since Mnyukh's pioneering work in 1970s. However, the atomistic mechanism underlying this phase transition has never been clarified. In this work, we present a direct molecular dynamics simulation to investigate the phase transition mechanism in HMB. For the first time, we report a simulation results that can accurately reproduce both the transition temperature and hysteresis loop observed in previous experimental studies. By analyzing the MD trajectories, the potential energy surface, we identified that a low-barrier atomic sliding mode along the close-packed (11$\overline{1}$) plane of the low-temperature phase is the key to trigger the phase transition at the critical temperature window. This is further confirmed by the observed continuous softening of shear modulus around the transition window. Our results demonstrate that the integration of various atomistic modeling techniques can provide invaluable insight into the martensitic phase transition mechanisms in organic crystals and guide the development of new organic martensites.
title Atomistic Modeling of Martensitic Phase Transition in Hexamethylbenzene
topic Materials Science
url https://arxiv.org/abs/2501.11719