论文标题

带有天然自旋阀结构的散装分层材料中的自旋超导体

Spintronic superconductor in a bulk layered material with natural spin-valve structure

论文作者

Sakuragi, Shunsuke, Sasaki, S., Akashi, R., Sakagami, R., Kuroda, K., Bareille, C., Hashimoto, T., Nagashima, T., Kinoshita, Y., Hirata, Y., Shimozawa, M., Asai, S., Yajima, T., Doi, S., Tsujimoto, N., Kunisada, S., Noguchi, R., Kurokawa, K., Azuma, N., Hirata, K., Yamasaki, Y., Nakao, H., Kim, T. K., Cacho, C., Masuda, T., Tokunaga, M., Wadati, H., Okazaki, K., Shin, S., Kamihara, Y., Yamashita, Minoru, Kondo, Takeshi

论文摘要

多层材料提供了引人入胜的平台,以实现各种功能性能,可能导致未来的电子设备由外部磁场控制。特别是,最近对结合导电层的分层磁体进行了广泛的研究,以通过自旋结构控制其运输特性。据报道,在具有抗铁磁(AFM)层的材料中,成功控制了量子 - 传输特性,即所谓的自然自旋阀结构,用于狄拉克费米亚和拓扑/斧头材料。然而,直到现在,尚未实现磁性和超导层交替堆叠的巨大晶体,在材料科学中,搜索其功能性能是一个有趣但未开发的领域。在这里,我们发现超导性在EUSN2AS2中提供了如此理想的平台,而van der waals磁性欧盟层和超导层的层层堆积,并首次展示了对超导电流的自然自旋录音效应的首次演示。在超导过渡温度(TC)下方,在平面方向上的电阻率变为零。相比之下,令人惊讶的是,它在平面外方向上保持有限,直至最低温度,这主要是由于EUSN2AS2中固有的磁性约瑟夫森连接的结构。观察到欧盟层(或自然自旋阀)的磁性非常柔软,从而可以轻松控制平面外电阻率比从1到无穷大的外部外部磁场。具有堆叠磁性磁性层的多功能材料的概念将打开一种新的途径,以开发具有磁性可控超导性的新型Spintronic设备。

Multi-layered materials provide fascinating platforms to realize various functional properties, possibly leading to future electronic devices controlled by external fields. In particular, layered magnets coupled with conducting layers have been extensively studied recently for possible control of their transport properties via the spin structure. Successful control of quantum-transport properties in the materials with antiferromagnetic (AFM) layers, so-called natural spin-valve structure, has been reported for the Dirac Fermion and topological/axion materials. However, a bulk crystal in which magnetic and superconducting layers are alternately stacked has not been realized until now, and the search for functional properties in it is an interesting yet unexplored field in material science. Here, we discover superconductivity providing such an ideal platform in EuSn2As2 with the van der Waals stacking of magnetic Eu layers and superconducting Sn-As layers, and present the first demonstration of a natural spin-valve effect on the superconducting current. Below the superconducting transition temperature (Tc), the electrical resistivity becomes zero in the in-plane direction. In contrast, it, surprisingly, remains finite down to the lowest temperature in the out-of-plane direction, mostly due to the structure of intrinsic magnetic Josephson junctions in EuSn2As2. The magnetic order of the Eu layers (or natural spin-valve) is observed to be extremely soft, allowing one to easy control of the out-of-plane to in-plane resistivities ratio from 1 to infinity by weak external magnetic fields. The concept of multi-functional materials with stacked magnetic-superconducting layers will open a new pathway to develop novel spintronic devices with magnetically controllable superconductivity.

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