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Influence of Thickness and Interface on the Low-Temperature Enhancement of the Spin Seebeck Effect in YIG Films

机译:厚度和界面对YIG薄膜纺丝塞贝克效应低温增强的影响

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The temperature-dependent longitudinal spin Seebeck effect (LSSE) in heavy metal ( HM ) / Y 3 Fe 5 O 12 (YIG) hybrid structures is investigated as a function of YIG film thickness, magnetic field strength, and different HM detection materials. The LSSE signal shows a large enhancement with reductions in temperature, leading to a pronounced peak at low temperatures. We find that the LSSE peak temperature strongly depends on the film thickness as well as on the magnetic field. Our result can be well explained in the framework of magnon-driven LSSE by taking into account the temperature-dependent effective propagation length of thermally excited magnons in the bulk of the material. We further demonstrate that the LSSE peak is significantly shifted by changing the interface coupling to an adjacent detection layer, revealing a more complex behavior beyond the currently discussed bulk effect. By direct microscopic imaging of the interface, we correlate the observed temperature dependence with the interface structure between the YIG and the adjacent metal layer. Our results highlight the role of interface effects on the temperature-dependent LSSE in HM/YIG system, suggesting that the temperature-dependent spin current transparency strikingly relies on the interface conditions.
机译:作为YIG膜厚度,磁场强度和不同的HM检测材料,研究了重金属(HM)/ Y 3 Fe 5 O 12(YIG)杂化结构中的温度依赖性纵向旋扎效应(LSSE)。 LSSE信号显示出大量增强,在温度下减少,导致低温下的明显峰值。我们发现LSSE峰值温度强烈地取决于薄膜厚度以及磁场。我们的结果可以通过考虑到大部分材料中的热激发振荡的温度依赖性有效的传播长度来说很好地解释了Magnon驱动的LSSE框架中。我们进一步证明通过将界面耦合改变为相邻的检测层的界面,揭示超出当前讨论的散装效应的更复杂的行为来显着地移位LSSE峰值。通过界面的直接显微镜成像,我们将观察到的温度依赖性与YIG和相邻金属层之间的界面结构相关联。我们的结果突出了界面影响对HM / YIG系统中温度依赖的LSSE的作用,这表明温度依赖性旋转电流透明度引起依赖于界面条件。

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