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CaRuO纳米薄膜晶体中超导电性与铁磁性的共存现象。

Co-appearance of superconductivity and ferromagnetism in a CaRuO nanofilm crystal.

作者信息

Nobukane Hiroyoshi, Yanagihara Kosei, Kunisada Yuji, Ogasawara Yunito, Isono Kakeru, Nomura Kazushige, Tanahashi Keita, Nomura Takahiro, Akiyama Tomohiro, Tanda Satoshi

机构信息

Department of Physics, Hokkaido University, Sapporo, 060-0810, Japan.

Center of Education and Research for Topological Science and Technology, Hokkaido University, Sapporo, 060-8628, Japan.

出版信息

Sci Rep. 2020 Feb 26;10(1):3462. doi: 10.1038/s41598-020-60313-x.

Abstract

By tuning the physical and chemical pressures of layered perovskite materials we can realize the quantum states of both superconductors and insulators. By reducing the thickness of a layered crystal to a nanometer level, a nanofilm crystal can provide novel quantum states that have not previously been found in bulk crystals. Here we report the realization of high-temperature superconductivity in CaRuO nanofilm single crystals. CaRuO thin film with the highest transition temperature T (midpoint) of 64 K exhibits zero resistance in electric transport measurements. The superconducting critical current exhibited a logarithmic dependence on temperature and was enhanced by an external magnetic field. Magnetic measurements revealed a ferromagnetic transition at 180 K and diamagnetic magnetization due to superconductivity. Our results suggest the co-appearance of superconductivity and ferromagnetism in CaRuO nanofilm crystals. We also found that the induced bias current and the tuned film thickness caused a superconductor-insulator transition. The fabrication of micro-nanocrystals made of layered material enables us to discuss rich superconducting phenomena in ruthenates.

摘要

通过调节层状钙钛矿材料的物理和化学压力,我们可以实现超导体和绝缘体的量子态。通过将层状晶体的厚度减小到纳米级,纳米薄膜晶体可以提供在块状晶体中以前未发现的新型量子态。在此,我们报告了在CaRuO纳米薄膜单晶中实现高温超导。具有最高转变温度T(中点)为64 K的CaRuO薄膜在电输运测量中表现出零电阻。超导临界电流对温度呈对数依赖性,并被外部磁场增强。磁性测量揭示了在180 K处的铁磁转变和由于超导引起的抗磁磁化。我们的结果表明CaRuO纳米薄膜晶体中超导和铁磁的同时出现。我们还发现,感应偏置电流和调节的薄膜厚度导致了超导体 - 绝缘体转变。由层状材料制成的微纳米晶体的制造使我们能够讨论钌酸盐中丰富的超导现象。

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