Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
Nanoscale. 2018 Mar 29;10(13):5990-5996. doi: 10.1039/c7nr09588k.
We propose through first-principles investigation that the GaTeCl monolayer is an excellent two-dimensional (2D) multiferroic with giant mechanical anisotropy. The calculated phonon spectrum, molecular dynamic simulations, and elastic moduli confirm its dynamic and mechanical stability, and our cleavage energy analysis shows that exfoliating one GaTeCl monolayer from the existing GaTeCl bulk is feasible. The calculated in-plane ferroelectric polarization reaches 578 pC m-1. The energy barriers per formula unit of the ferroelastic 90° rotational and ferroelectric reversal transitions are 476 meV and 754 meV, respectively, being the greatest in the 2D multiferroics family so far. Importantly, on the other hand, a tensile stress of 4.7 N m-1 perpendicular to the polarization can drive the polarization to rotate by 90°. These can make the GaTeCl monolayer have not only robust ferroelasticity and ferroelectricity but also easy mechanical controllability. Furthermore, the GaTeCl monolayer has giant piezoelectricity and optical second harmonic generation, especially in the range of visible light, and a tensile stress of 0.3 N m-1 along the polarization can make the indirect gap transit to the direct gap. These interesting mechanical, electronic, and optical properties of the GaTeCl monolayer show its great potential in high-performance multi-functional applications.
我们通过第一性原理研究提出,GaTeCl 单层是一种具有巨大机械各向异性的优秀二维(2D)多铁体。计算得到的声子谱、分子动力学模拟和弹性模量证实了其动力学和机械稳定性,我们的剥离能分析表明,从现有的 GaTeCl 体相中剥离出一层 GaTeCl 是可行的。计算得到的面内铁电极化强度达到 578 pC m-1。铁弹性 90°旋转和铁电反转跃迁的每个单元能量势垒分别为 476 meV 和 754 meV,是迄今为止 2D 多铁体家族中最大的。重要的是,另一方面,垂直于极化方向的 4.7 N m-1 的拉伸应力可以使极化旋转 90°。这使得 GaTeCl 单层不仅具有稳定的铁弹性和铁电性,而且具有易于机械控制的特性。此外,GaTeCl 单层具有巨大的压电性和光学二次谐波产生,特别是在可见光范围内,沿极化方向施加 0.3 N m-1 的拉伸应力可以使间接带隙转变为直接带隙。GaTeCl 单层具有这些有趣的力学、电子和光学性能,表明其在高性能多功能应用中有很大的潜力。