High flexoelectric constants in Janus transition-metal dichalcogenides
Brahmanandam Javvaji, Bo He, Xiaoying Zhuang, Harold S Park

TL;DR
This paper reveals that Janus transition-metal dichalcogenides exhibit significantly higher flexoelectric constants than traditional 2D materials due to their structural asymmetry and enhanced charge transfer, opening new avenues for electromechanical applications.
Contribution
It demonstrates the intrinsic flexoelectric properties of Janus TMDCs and quantifies their constants using a charge-dipole model combined with molecular dynamics simulations.
Findings
Janus TMDCs have flexoelectric constants several times higher than traditional TMDCs.
Flexoelectric response correlates positively with initial structural asymmetry.
Enhanced charge transfer in Janus TMDCs leads to stronger electromechanical coupling.
Abstract
Due to their combination of mechanical stiffness and flexibility, two-dimensional (2D) materials have received significant interest as potential electromechanical materials. Flexoelectricity is an electromechanical coupling between strain gradient and polarization. Unlike piezoelectricity, which exists only in non-centrosymmetric materials, flexoelectricity theoretically exists in all dielectric materials. However, most work on the electromechanical energy conversion potential of 2D materials has focused on their piezoelectric, and not flexoelectric behavior and properties. In the present work, we demonstrate that the intrinsic structural asymmetry present in monolayer Janus transition metal dichalcogenides (TMDCs) enables significant flexoelectric properties. We report these flexoelectric properties using a recently developed charge-dipole model that couples with classical molecular…
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