论文标题

Janus过渡金属二盐元中的高柔韧性常数

High flexoelectric constants in Janus transition-metal dichalcogenides

论文作者

Javvaji, Brahmanandam, He, Bo, Zhuang, Xiaoying, Park, Harold S

论文摘要

由于机械刚度和柔韧性的结合,二维(2D)材料已引起了潜在机电材料的重大兴趣。柔韧性是应变梯度和极化之间的机电耦合。与仅在非中心对称材料中存在的压电电性不同,理论上在所有介电材料中都存在挠性电位。但是,大多数关于2D材料机电能量转化电位的工作都集中在其压电上,而不是柔韧性行为和特性。在目前的工作中,我们证明了单层Janus过渡金属二核苷(TMDC)中存在的内在结构不对称性具有显着的挠性性能。我们使用最近开发的电荷 - 偶极模型报告了这些挠性特性,该模型将经典的分子动力学模拟融合在一起。通过采用规定的弯曲变形,我们直接计算了挠性常数,同时消除了对极化的压电贡献。我们发现,Janus TMDC的挠性响应与其初始不对称程度呈正相关,这会导致更强的$σ-σ$相互作用,因为不对称的初始程度上升。此外,由于$π-σ$耦合,Janus TMDC中跨原子的高电荷转移导致更大的电场。发现这些增强的$σ-σ$和$π-σ$交互作用会导致Janus TMDC的挠性系数比传统TMDC(例如MOS $ _ {2} $)高几倍,其挠性常数已经比Graphene大十倍。

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 dynamics simulations. By employing a prescribed bending deformation, we directly calculate the flexoelectric constants while eliminating the piezoelectric contribution to the polarization. We find that the flexoelectric response of a Janus TMDC is positively correlated to its initial degree of asymmetry, which contributes to stronger $σ-σ$ interactions as the initial degree of asymmetry rises. In addition, the high transfer of charge across atoms in Janus TMDCs leads to larger electric fields due to $π-σ$ coupling. These enhanced $σ-σ$ and $π-σ$ interactions are found to cause the flexoelectric coefficients of the Janus TMDCs to be several times higher than traditional TMDCs such as MoS$_{2}$, whose flexoelectric constant is already ten times larger than graphene.

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