论文标题

高温下Yttrium Iron石榴石/铂异质结构中的非本地磁化的运输

Non-local magnon-based transport in yttrium iron garnet/platinum heterostructures at high temperatures

论文作者

Schlitz, Richard, Granovsky, Sergey, Goennenwein, Sebastian T. B.

论文摘要

重金属薄膜中的自旋大厅效应使通过磁转运测量值探测相邻磁绝缘子的磁性。在这里,我们研究了Yttrium铁石榴石/铂异质结构从室温到超过居里温度以上的磁化反应,$ t_ \ mathrm {c,yig} \大约560 \,\ Mathrm {k} $。我们发现(本地)自旋大厅磁场的幅度从单调降低了$ 300 \,\ mathrm {k} $,降低到$ t_ \ mathrm {c} $,模仿Yttrium Iron Garnet的饱和元化的演变。有趣的是,旋转大厅的磁场消失在$ 500 \,\ mathrm {k} $左右,远低于$ t_ \ mathrm {c} $,我们将其归因于通过InterDiffusion形成寄生界面层的形成。正如已经报道的那样,在室温附近,非本地磁化介导的磁磁性表现出功率定律缩放$ t^α$,$α= 3/2 $,正如已经报道的。在非局部磁场迅速在类似于自旋霍尔磁场的温度下迅速消失之前,该指数逐渐降低到$ 420 \,\ mathrm {k} $,在$ 420 \,\ mathrm {k} $上逐渐降低到$α\ sim 1/2 $。我们将降低的$α$在高温归因于增加的热镁种群,从而导致非平衡镁种群的散射增强和降低的磁化扩散长度。最后,我们在非本地信号中找到了一个磁场独立的偏移电压,$ t> 470 \,\ mathrm {k} $通过通常绝缘的yttrium yttrium铁石榴石膜与电子泄漏电流相关联。实际上,这种非本地偏移电压通过接近带隙的能量热激活。

The spin Hall effect in a heavy metal thin film allows to probe the magnetic properties of an adjacent magnetic insulator via magnetotransport measurements. Here, we investigate the magnetoresistive response of yttrium iron garnet/platinum heterostructures from room temperature to beyond the Curie temperature $T_\mathrm{C, YIG} \approx 560\,\mathrm{K}$ of the ferrimagnetic insulator. We find that the amplitude of the (local) spin Hall magnetoresistance decreases monotonically from $300\,\mathrm{K}$ towards $T_\mathrm{C}$, mimicking the evolution of the saturation magnetization of yttrium iron garnet. Interestingly, the spin Hall magnetoresistance vanishes around $500\,\mathrm{K}$, well below $T_\mathrm{C}$, which we attribute to the formation of a parasitic interface layer by interdiffusion. Around room temperature the non-local magnon-mediated magnetoresistance exhibits a power law scaling $T^α$ with $α= 3/2$, as already reported. The exponent decreases gradually to $α\sim 1/2$ at around $420\,\mathrm{K}$, before the non-local magnetoresistance vanishes rapidly at a similar temperature as the spin Hall magnetoresistance. We attribute the reduced $α$ at high temperatures to the increasing thermal magnon population which leads to enhanced scattering of the non-equilibrium magnon population and a reduced magnon diffusion length. Finally, we find a magnetic field independent offset voltage in the non-local signal for $T > 470\,\mathrm{K}$ which we associate with electronic leakage currents through the normally insulating yttrium iron garnet film. Indeed, this non-local offset voltage is thermally activated with an energy close to the band gap.

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