Probe-based Spin Torque Transfer Device for Writing Hard Disks

J. Hong, O. Lee, K. Dong, S. Khizroev, L. You, J. Bokor
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Abstract

In magnetic hard disk technology, continued scaling of bit density requires higher coercivity and anisotropy media in order to maintain data retention time. This creates a major challenge for scaling the electromagnet-based write head, which is currently being addressed by heat-assisted magnetic recording (HAMR) technology. In this work, we investigate the use of spin transfer torque point contacts induced by spin-polarized current injected from a nanoscale probe tip across a very narrow gap into magnetic media to change magnetization direction. We present our recent experiment using a functional nanoprobe to substitute the disk writer structure. State-ofthe-art He-ion focused ion beam (FIB) trimming was used to develop a nanoscale magnetic structure on top of a tip as shown in Fig 1(A). The standard Ta(5nm)/CoFeB(1nm)/MgO(0.9nm) on tip side and another Ta(5nm)/CoFeB(1nm)/MgO(0.9nm) stack on media side were deposited via sputter deposition and milled. The IV characteristics are shown in Fig 1(B) and show magnetization switching of the media through MTJ-type probing. The magnetization change of practical medial structures which consist of sub-10-nm L1(0) ordered FePt structures was observed using the fixed layer of the tip as shown in Fig 1(C). This result suggests a completely new approach for hard disk writing and could pave the way to the field of magnetic recording with ultra-small, ultra-high density, and ultra-fast data rate further.
基于探针的硬盘写入转矩传递装置
在磁硬盘技术中,为了保持数据保留时间,比特密度的持续缩放需要更高的矫顽力和各向异性介质。这给基于电磁体的写入磁头的扩展带来了重大挑战,目前正在通过热辅助磁记录(HAMR)技术解决这一问题。在这项工作中,我们研究了利用自旋极化电流从纳米级探针尖端注入一个非常窄的间隙到磁性介质中引起的自旋传递转矩点接触来改变磁化方向。我们介绍了最近使用功能性纳米探针代替磁盘写入器结构的实验。采用最先进的氦离子聚焦离子束(FIB)修剪技术,在尖端顶部形成纳米级磁性结构,如图1(a)所示。通过溅射沉积和铣削,在尖端侧沉积了标准的Ta(5nm)/CoFeB(1nm)/MgO(0.9nm)层,在介质侧沉积了Ta(5nm)/CoFeB(1nm)/MgO(0.9nm)层。IV特性如图1(B)所示,显示了通过mtj型探测介质的磁化切换。利用尖端的固定层,观察了由亚10nm L1(0)有序FePt结构组成的实际中间结构的磁化变化,如图1(C)所示。这一结果为硬盘写入提供了一种全新的方法,并为进一步实现超小型、超高密度、超高速数据速率的磁记录领域铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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