论文标题

均依赖层的机械性能和增强的范德华瓦尔德铬磁体的可塑性

Layer-dependent mechanical properties and enhanced plasticity in the van der Waals chromium trihalide magnets

论文作者

Cantos-Prieto, Fernando, Falin, Alexey, Alliati, Martin, Qian, Dong, Zhang, Rui, Tao, Tao, Barnett, Matthew R., Santos, Elton J. G., Li, Lu Hua, Navarro-Moratalla, Efren

论文摘要

磁性材料的机械性能对磁弹性理论的发展和应变调节磁性设备的优化具有重要作用。特别是,二维(2D)磁铁有望将这些概念扩大到低维物理和超薄设备的领域。但是,迄今为止,尚未对Trhalides的原型2D磁铁家族的固有机械性能进行实验研究。在这里,我们报告了原子薄的CRI3和CRCL3的室温层依赖性机械性能,发现CRI3和CRCL3的双层具有Young的模量为62.1 GPA和43.4 GPA,持续性最高的菌株为6.09%和6.49%和6.49%,而破裂的强度为3.6 GPA和2.2 GPA,均具有3.6 GPA和2.2 GPA。两种材料的弹性和强度都随着厚度的增加而降低,这归因于弱的层间相互作用,该相互作用可以使层间滑动在低水平的施加载荷下滑动。在几层三核晶体晶体中观察到的机械性能为这些材料提供了出色可塑性的证据,这些材料在其大体对应物中进行了质量证明。这项研究将有助于Van Waals磁性材料的各种应用,尤其是用于磁刻度和柔性设备的应用。

The mechanical properties of magnetic materials are instrumental for the development of the magnetoelastic theory and the optimization of strain-modulated magnetic devices. In particular, two-dimensional (2D) magnets hold promise to enlarge these concepts into the realm of low-dimensional physics and ultrathin devices. However, no experimental study on the intrinsic mechanical properties of the archetypal 2D magnet family of the chromium trihalides has thus far been performed. Here, we report the room temperature layer-dependent mechanical properties of atomically thin CrI3 and CrCl3, finding that bilayers of CrI3 and CrCl3 have Young's moduli of 62.1 GPa and 43.4 GPa, with the highest sustained strain of 6.09% and 6.49% and breaking strengths of 3.6 GPa and 2.2 GPa, respectively. Both the elasticity and strength of the two materials decrease with increased thickness, which is attributed to a weak interlayer interaction that enables interlayer sliding under low levels of applied load. The mechanical properties observed in the few-layer chromium trihalide crystals provide evidence of outstanding plasticity in these materials, which is qualitatively demonstrated in their bulk counterparts. This study will contribute to various applications of the van der Waals magnetic materials, especially for their use in magnetostrictive and flexible devices.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源