在NbSe2/CrSBr范德瓦尔斯异构结构中对超导的局部控制
Junhyeon Jo1, Yuan Peisen2, Haozhe Yang2
1CIC nanoGUNE BRTA, Donostia-San Sebastian, Spain. j.jo@nanogune.eu.
Nature communications
|November 9, 2023
概括
研究人员使用NbSe2 / CrSBr.Br开发了新的2D超导旋. 由于独特的磁转换,这些设备显示无限电磁阻和非相互传输,为先进的量子设备铺平了道路.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 材料科学 材料科学 材料科学
- 量子技术 量子技术 量子技术
背景情况:
- 二维 (2D) 磁铁和超导体是量子计算和自旋电子设备的关键组成部分.
- 现有的二维设备,如约瑟夫森交叉点,模仿传统设计.
- 利用独特的二维材料特性的新型设备在很大程度上尚未被证明.
研究的目的:
- 展示使用二维材料独特性质的新型量子设备.
- 调查范德瓦尔斯异构结构在高级功能方面的潜力.
- 探索高性能量子设备的新工作原理.
主要方法:
- 制造NbSe2/CrSBr范德瓦尔斯的异构结构.
- 研究具有CrSBr元磁转换的超导自旋.
- 在多态电阻装置中集成横向异构结构.
主要成果:
- 演示了具有无限磁阻的NbSe2/CrSBr超导旋转.
- 观察到非相互收费的运输.
- 利用 CrSBr 的超磁性转换来控制局部迷路场并抑制超导.
- 通过横向异构结构实现了具有多个稳定的阻力状态的超导自旋.
结论:
- 层级材料的独特物理特性使得量子设备的新功能成为可能.
- 范德瓦尔斯的NbSe2/CrSBr异构结构为高性能量子设备提供了一个平台.
- 可以利用二维磁铁中的超磁性过渡来控制超导率并打破时间逆向对称性.
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