Spin–orbit torque magnetization switching in a perpendicularly magnetized full Heusler alloy Co2FeSi

凝聚态物理 磁化 材料科学 自旋霍尔效应 电流密度 旋转阀 铁磁性 自旋(空气动力学) 磁场 自旋极化 物理 电子 量子力学 热力学
作者
Miao Jiang,Eisuke Matsushita,Yota Takamura,Lê Đức Anh,Shigeki Nakagawa,Shinobu Ohya,Masaaki Tanaka
出处
期刊:AIP Advances [American Institute of Physics]
卷期号:11 (11) 被引量:3
标识
DOI:10.1063/5.0062666
摘要

To optimize the writing and reading performance of magnetic random-access memory (MRAM) devices, achieving current-induced spin–orbit torque (SOT) magnetization switching in perpendicularly magnetized full Heusler alloys is vitally important. For conventional SOT-metal bilayer systems, heavy metals (HMs) with a large spin Hall angle (θSH) are generally used for generating a spin current, which is injected into the adjacent ferromagnet (FM) layer and exerts a torque on the magnetization to switch it. However, the large resistivity of generally used HMs such as β-Ta and β-W can increase the Ohmic loss. In this article, we achieve full SOT switching in Heusler alloy Co2FeSi using low-resistivity Pd as a spin current generation source. The critical switching current density is found to be 3.7 × 107 A cm−2, which is in the same order of magnitude as that required for conventional HM/FM systems even though Pd has a smaller θSH than that of generally used HMs. Using harmonic Hall measurements, the damping-like and field-like effective fields per unit current density are estimated to be 56.9 (10−7 Oe A−1 cm2) and 39.8 (10−7 Oe A−1 cm2), respectively. This high efficiency can be attributed to the excellent lattice matching between Co2FeSi and Pd (only 2% mismatch), to a slight Pd diffusion, and possibly to the additional SOTs induced by the in-plane spin component generated in the Co2FeSi layer. Our finding will advance the development of SOT-MRAM devices with both better reading and writing performance.
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