TY - JOUR
T1 - Bending of single-layer CrI3 under spatially oscillating electric field
T2 - A first-principles study
AU - Wu, Yu
AU - Li, Ming
AU - Zheng, Fawei
AU - Li, Menglei
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/1
Y1 - 2026/9/1
N2 - Flexoelectricity is the interplay between the strain gradient and the electric field or polarizations, which is ubiquitous in dielectrics and much more important in two-dimensional (2D) materials due to the high flexibility. Here, we employ first-principles calculations to study the flexural deformation of the single-layer CrI3 under a spatially oscillating electric field created by hydrogen fluoride (HF) molecular dipole arrays. It is found that the CrI3 single-layer spontaneously wrinkles and the bending curvature exhibits a nearly quadratic dependence on the maximal electric field with a robust bending direction. This behavior is associated with the inverse flexoelectric effect, which refers to the emergence of strain gradient induced by an external electric field, but the curvature under such space-varying electric field increases faster with the electric field strength than that under a homogeneous field. Our results provides new possibility for the design of electromechanical devices in 2D materials.
AB - Flexoelectricity is the interplay between the strain gradient and the electric field or polarizations, which is ubiquitous in dielectrics and much more important in two-dimensional (2D) materials due to the high flexibility. Here, we employ first-principles calculations to study the flexural deformation of the single-layer CrI3 under a spatially oscillating electric field created by hydrogen fluoride (HF) molecular dipole arrays. It is found that the CrI3 single-layer spontaneously wrinkles and the bending curvature exhibits a nearly quadratic dependence on the maximal electric field with a robust bending direction. This behavior is associated with the inverse flexoelectric effect, which refers to the emergence of strain gradient induced by an external electric field, but the curvature under such space-varying electric field increases faster with the electric field strength than that under a homogeneous field. Our results provides new possibility for the design of electromechanical devices in 2D materials.
KW - CrI single-layer
KW - Electromechanical coupling
KW - First-principles calculations
KW - Inverse flexoelectric effect
UR - https://www.scopus.com/pages/publications/105037826746
U2 - 10.1016/j.physb.2026.418767
DO - 10.1016/j.physb.2026.418767
M3 - Article
AN - SCOPUS:105037826746
SN - 0921-4526
VL - 737
JO - Physica B: Condensed Matter
JF - Physica B: Condensed Matter
M1 - 418767
ER -