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Combinatorial investigation of spin-orbit materials using spin Peltier effect

机译:利用自旋珀尔帖效应对自旋轨道材料进行组合研究

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Conversion between spin and charge currents is essential in spintronics, since it enables spin-orbit-torque magnetization switching, spin-current-driven thermoelectric generation, and nano-scale thermal energy control. To realize efficient spin-charge conversion, a variety of mechanisms, including spin Hall effects, Rashba-Edelstein effects, and spin-momentum locking in topological insulators, have been investigated and more comprehensive material exploration is necessary. Here we demonstrate high-throughput screening of spin-charge conversion materials by means of the spin Peltier effect (SPE). This is enabled by combining recently-developed SPE-imaging techniques with combinatorial materials science; using a composition-spread alloy film formed on a magnetic insulator, we observe the SPE-induced temperature change due to the spin Hall effect and obtain a continuous mapping of its composition dependence from the single sample. The distribution of the SPE signals reflects local spin-charge conversion capability in the alloy owing to unique heat-generation nature of the SPE. This combinatorial approach will accelerate materials research towards high-performance spintronic devices.
机译:在自旋电子学中,自旋电流和充电电流之间的转换是必不可少的,因为它可以实现自旋轨道转矩磁化切换,自旋电流驱动的热电发电和纳米级热能控制。为了实现有效的自旋电荷转换,已经研究了多种机制,包括自旋霍尔效应,Rashba-Edelstein效应以及拓扑绝缘体中的自旋动量锁定,因此有必要进行更全面的材料探索。在这里,我们展示了通过自旋珀耳帖效应(SPE)对自旋电荷转化材料进行高通量筛选。这是通过将最近开发的SPE成像技术与组合材料科学相结合而实现的。使用在磁绝缘体上形成的成分扩散合金膜,我们观察到由于自旋霍尔效应而引起的SPE诱导的温度变化,并从单个样品获得了其成分依赖性的连续映射。由于SPE具有独特的生热特性,SPE信号的分布反映了合金中的局部自旋电荷转换能力。这种组合方法将加快材料对高性能自旋电子器件的研究。

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