Deng Yazhou, Wang Mingjie, Xiang Ziji, Zhu Kejia, Hu Tao, Lu Longyu, Wang Yu, Ma Yupeng, Lei Bin, Chen Xianhui
School of Physics and Optoelectronic Engineering, Anhui University, Hefei, Anhui 230601, China.
CAS Key Laboratory of Strongly-coupled Quantum Matter Physics, Department of Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Nano Lett. 2024 Jul 31;24(30):9302-9310. doi: 10.1021/acs.nanolett.4c02227. Epub 2024 Jul 17.
The ability to manipulate magnetic states by a low electric current represents a fundamental desire in spintronics. In recent years, two-dimensional van der Waals (vdW) magnetic materials have attracted an extensive amount of attention due to their appreciable spin-orbit torque effect. However, for most known vdW ferromagnets, their relatively low Curie temperatures () limit their applications. Consequently, low-power vdW spintronic devices that can operate at room temperature are in great demand. In this research, we fabricate nanodevices based on a solitary thin flake of vdW ferromagnet FeGaTe, in which we successfully achieve nonvolatile and highly efficient magnetization switching by small currents at room temperature. Notably, the switching current density and the switching power dissipation are as low as 1.7 × 10 A/cm and 1.6 × 10 W/m, respectively, with an external magnetic field of 80 Oe; both are much reduced compared to those of conventional magnet/heavy metal heterostructure devices and other vdW devices.
利用低电流操纵磁态的能力是自旋电子学的一个基本诉求。近年来,二维范德华(vdW)磁性材料因其可观的自旋轨道转矩效应而受到广泛关注。然而,对于大多数已知的vdW铁磁体而言,其相对较低的居里温度限制了它们的应用。因此,对能够在室温下工作的低功耗vdW自旋电子器件有巨大需求。在本研究中,我们基于一片孤立的vdW铁磁体FeGaTe薄片制造了纳米器件,在其中我们成功在室温下通过小电流实现了非易失性且高效的磁化翻转。值得注意的是,在80奥斯特的外部磁场下,翻转电流密度和翻转功耗分别低至1.7×10 A/cm和1.6×10 W/m,与传统磁体/重金属异质结构器件及其他vdW器件相比均大幅降低。