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通过氧调控增强自旋塞贝克效应。

Enhanced spin Seebeck effect via oxygen manipulation.

作者信息

Kim Jeong-Mok, Kim Seok-Jong, Kang Min-Gu, Choi Jong-Guk, Lee Soogil, Park Jaehyeon, Van Phuoc Cao, Kim Kyoung-Whan, Kim Kab-Jin, Jeong Jong-Ryul, Lee Kyung-Jin, Park Byong-Guk

机构信息

Department of Materials Science and Engineering, KAIST, Daejeon, 34141, Korea.

Department of Physics, KAIST, Daejeon, 34141, Korea.

出版信息

Nat Commun. 2023 Jun 8;14(1):3365. doi: 10.1038/s41467-023-39116-x.

Abstract

Spin Seebeck effect (SSE) refers to the generation of an electric voltage transverse to a temperature gradient via a magnon current. SSE offers the potential for efficient thermoelectric devices because the transverse geometry of SSE enables to utilize waste heat from a large-area source by greatly simplifying the device structure. However, SSE suffers from a low thermoelectric conversion efficiency that must be improved for widespread application. Here we show that the SSE substantially enhances by oxidizing a ferromagnet in normal metal/ferromagnet/oxide structures. In W/CoFeB/AlO structures, voltage-induced interfacial oxidation of CoFeB modifies the SSE, resulting in the enhancement of thermoelectric signal by an order of magnitude. We describe a mechanism for the enhancement that results from a reduced exchange interaction of the oxidized region of ferromagnet, which in turn increases a temperature difference between magnons in the ferromagnet and electrons in the normal metal and/or a gradient of magnon chemical potential in the ferromagnet. Our result will invigorate research for thermoelectric conversion by suggesting a promising way of improving the SSE efficiency.

摘要

自旋塞贝克效应(SSE)是指通过磁振子电流产生与温度梯度垂直的电压。SSE为高效热电器件提供了潜力,因为SSE的横向几何结构能够通过极大地简化器件结构来利用大面积热源的废热。然而,SSE存在热电转换效率低的问题,要实现广泛应用必须加以改进。在此我们表明,在正常金属/铁磁体/氧化物结构中氧化铁磁体可大幅增强SSE。在W/CoFeB/AlO结构中,电压诱导的CoFeB界面氧化改变了SSE,使热电信号增强了一个数量级。我们描述了一种增强机制,该机制源于铁磁体氧化区域交换相互作用的降低,这反过来又增加了铁磁体中磁振子与正常金属中电子之间的温差和/或铁磁体中磁振子化学势的梯度。我们的结果通过提出一种提高SSE效率的有前景的方法,将激发热电转换的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/879b/10250387/297e2061e454/41467_2023_39116_Fig1_HTML.jpg

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