Current-induced control of magnetization in ferromagnets using spin-orbit torque (SOT) has drawn attention as a new mechanism for fast and energy efficient magnetic memory devices. Energy-efficient spintronic devices require a spin-current source with a large SOT efficiency (ξ) and electrical conductivity (σ), and an efficient spin injection across a transparent interface. Herein, we use single crystals of the van der Waals (vdW) topological semimetal WTe2 and vdW ferromagnet Fe3GeTe2 to satisfy the requirements in their all-vdW-heterostructure with an atomically sharp interface. The results exhibit values of ξ≈4.6 and σ≈2.25×105Ω−1m−1 for WTe2. Moreover, we obtain the significantly reduced switching current density of 3.90×106A/cm2 at 150 K, which is an order of magnitude smaller than those of conventional heavy-metal/ ferromagnet thin films. These findings highlight that engineering vdW-type topological materials and magnets offers a promising route to energy-efficient magnetization control in SOT-based spintronics.
@article{arxiv.2102.09300,
title = {Spin-orbit Torque Switching in an All-Van der Waals Heterostructure},
author = {Inseob Shin and Won Joon Cho and Eun-Su An and Sungyu Park and Hyeon-Woo Jeong and Seong Jang and Woon Joong Baek and Seong Yong Park and Dong-Hwan Yang and Jun Ho Seo and Gi-Yeop Kim and Mazhar N. Ali and Si-Young Choi and Hyun-Woo Lee and Jun Sung Kim and Sungdug Kim and Gil-Ho Lee},
journal= {arXiv preprint arXiv:2102.09300},
year = {2021}
}