TY - JOUR
T1 - Robust Ferroelasticity and Carrier Dynamics Across the Domain Wall in Perovskite-Like van der Waals WO2I2
AU - Fu, Jierui
AU - Deng, Zunyi
AU - Tan, Ruoxi
AU - Fang, Yuqiang
AU - Peng, Yanting
AU - Liang, Yuexing
AU - Sun, Zhaoyuan
AU - Tang, Gang
AU - Li, Xingji
AU - Xu, Chengyan
AU - Huang, Fuqiang
AU - Zhen, Liang
AU - Gao, Bo
AU - Hong, Jiawang
AU - Li, Yang
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/7/10
Y1 - 2024/7/10
N2 - As a new group of van der Waals (vdWs) ferroic materials, transition metal dioxydihalides MO2X2 (M: Mo, W; X: halogen) with a perovskite-like structure are theoretically predicted to exhibit intriguing physics and versatile ferroic characteristics, which is not achieved experimentally as far as it is known. In this work, the robust ferroelasticity in vdWs WO2I2 with the switching strain as low as ≈0.3%, accompanied with the striped optical contrast between adjacent domains, spot splitting of selected area electron diffraction (SAED) patterns at domain wall, and 90° domain wall is demonstrated. With the aid of ab-initio calculations, the origin of ferroelasticity in WO2I2 is unveiled, where the imaginary phonon mode in the high-symmetry paraelastic phase leads to the spontaneous displacement of W atom away from the center of the [WO4I2] octahedron, resulting in the switchable spontaneous strain under an external strain field. Moreover, transient absorption microscopy (TAM) measurements demonstrate that the diffusion of photogenerated carriers is significantly hindered by the ferroelastic domain walls. This study provides deep insights into the ferroic order and domain wall in perovskite-like vdWs MO2X2 for new physics and functionalities.
AB - As a new group of van der Waals (vdWs) ferroic materials, transition metal dioxydihalides MO2X2 (M: Mo, W; X: halogen) with a perovskite-like structure are theoretically predicted to exhibit intriguing physics and versatile ferroic characteristics, which is not achieved experimentally as far as it is known. In this work, the robust ferroelasticity in vdWs WO2I2 with the switching strain as low as ≈0.3%, accompanied with the striped optical contrast between adjacent domains, spot splitting of selected area electron diffraction (SAED) patterns at domain wall, and 90° domain wall is demonstrated. With the aid of ab-initio calculations, the origin of ferroelasticity in WO2I2 is unveiled, where the imaginary phonon mode in the high-symmetry paraelastic phase leads to the spontaneous displacement of W atom away from the center of the [WO4I2] octahedron, resulting in the switchable spontaneous strain under an external strain field. Moreover, transient absorption microscopy (TAM) measurements demonstrate that the diffusion of photogenerated carriers is significantly hindered by the ferroelastic domain walls. This study provides deep insights into the ferroic order and domain wall in perovskite-like vdWs MO2X2 for new physics and functionalities.
KW - carrier dynamics
KW - domain orientations
KW - ferroelasticity
KW - perovskite-like structures
KW - vdWs materials
UR - http://www.scopus.com/inward/record.url?scp=85184735021&partnerID=8YFLogxK
U2 - 10.1002/adfm.202400218
DO - 10.1002/adfm.202400218
M3 - Article
AN - SCOPUS:85184735021
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 28
M1 - 2400218
ER -