论文标题

分层抗铁磁绝缘子NIPS $ _3 $/Ferromagnet双层中的大型界面自旋轨道

Large interfacial spin-orbit torques in layered antiferromagnetic insulator NiPS$_3$/ferromagnet bilayers

论文作者

Schippers, Casper F., Swagten, Henk J. M., Guimarães, Marcos H. D.

论文摘要

寻找有效的操纵磁钻的方法是Spintronic研究的核心目标之一。电气生成的自旋轨道扭矩(SOT)是对此的良好候选者,并且在近年来寻找能够产生高效的SOT的材料已经获得了很大的吸引力。尽管已广泛用于被动应用,例如通过使用Exchange偏差字段,其主动属性尚未广泛使用。在这里,我们显示了铁磁体的双层中存在大型界面SOT,以及二维层次的抗磁管绝缘子NIPS $ _3 $。我们观察到一个大型的平面阻尼状界面扭矩,显示$σ_\ mathrm {dl} \大约1 \ times 10^{5} \ Mathrm {(\ frac {\ frac {\ frac {\ hbar} {2e} {2e} {2e}) /(ωmmm)$什至是在房间温度下,forter的备用量的扭矩电导率为10^{5} \ Mathrm {(\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {\ frac {5})和基于拓扑绝缘体的设备。此外,我们的设备还显示了由NIPS $ _3 $/Ferromagnet界面产生的平面外场扭矩,进一步表明我们的结构中存在界面旋转轨道耦合。与温度有关的测量结果显示,SOT的增加,温度降低了NIPS的NIPS $ _3 $($ T_N \大约170 \ Mathrm {K} $),这表明磁性顺序可能对我们测得的SOTS产生影响。我们的发现表明了抗铁磁绝缘子的潜力和二维材料,用于未来的旋转器应用。

Finding efficient ways of manipulating magnetic bits is one of the core goals in spintronic research. Electrically-generated spin-orbit torques (SOTs) are good candidates for this and the search for materials capable of generating highly-efficient SOTs has gained a lot of traction in the recent years. While antiferromagnet/ferromagnet bilayer structures have been employed extensively for passive applications, e.g. by using exchange bias fields, their active properties are not yet widely employed. Here we show the presence of large interfacial SOTs in bilayer of a ferromagnet and the two-dimensional layered antiferromagnetic insulator NiPS$_3$. We observe a large in-plane damping-like interfacial torque, showing a torque conductivity of $σ_\mathrm{DL} \approx 1 \times 10^{5} \mathrm{(\frac{\hbar}{2e}) /(Ωm)}$ even at room temperature, comparable to the best devices reported in the literature for standard heavy-metal-based and topological insulators-based devices. Additionally, our devices also show an out-of-plane field-like torque arising from the NiPS$_3$/ferromagnet interface, further indicating the presence of an interfacial spin-orbit coupling in our structures. Temperature-dependent measurements reveal an increase of the SOTs with a decreasing temperature below the Néel temperature of NiPS$_3$ ($T_N \approx 170 \mathrm{K}$), pointing to a possible effect of the magnetic ordering on our measured SOTs. Our findings show the potential of antiferromagnetic insulators and two-dimensional materials for future spintronic applications.

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