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由近邻磁化铂势垒实现的零场极性可逆约瑟夫森超电流二极管。

Zero-field polarity-reversible Josephson supercurrent diodes enabled by a proximity-magnetized Pt barrier.

作者信息

Jeon Kun-Rok, Kim Jae-Keun, Yoon Jiho, Jeon Jae-Chun, Han Hyeon, Cottet Audrey, Kontos Takis, Parkin Stuart S P

机构信息

Max Planck Institute of Microstructure Physics, Halle (Saale), Germany.

Department of Physics, Chung-Ang University (CAU), Seoul, Republic of Korea.

出版信息

Nat Mater. 2022 Sep;21(9):1008-1013. doi: 10.1038/s41563-022-01300-7. Epub 2022 Jul 7.

Abstract

Simultaneous breaking of inversion and time-reversal symmetries in a conductor yields a non-reciprocal electronic transport, known as the diode or rectification effect, that is, low (ideally zero) conductance in one direction and high (ideally infinite) conductance in the other. So far, most of the diode effects observed in non-centrosymmetric polar/superconducting conductors and Josephson junctions require external magnetic fields to break the time-reversal symmetry. Here we report zero-field polarity-switchable Josephson supercurrent diodes, in which a proximity-magnetized Pt layer by ferrimagnetic insulating YFeO serves as the Rashba(-type) Josephson barrier. The zero-field diode efficiency of our proximity-engineered device reaches up to ±35% at 2 K, with a clear square-root dependence on temperature. Measuring in-plane field-strength/angle dependences and comparing with Cu-inserted control junctions, we demonstrate that exchange spin-splitting and Rashba(-type) spin-orbit coupling at the Pt/YFeO interface are key for the zero-field giant rectification efficiency. Our achievement advances the development of field-free absolute Josephson diodes.

摘要

导体中同时打破反演对称性和时间反演对称性会产生一种非互易电子输运,即所谓的二极管或整流效应,也就是说,在一个方向上具有低(理想情况下为零)电导,而在另一个方向上具有高(理想情况下为无穷大)电导。到目前为止,在非中心对称极性/超导导体和约瑟夫森结中观察到的大多数二极管效应都需要外部磁场来打破时间反演对称性。在此,我们报道了零场极性可切换的约瑟夫森超流二极管,其中由亚铁磁绝缘体YFeO产生近邻磁化的Pt层用作Rashba(型)约瑟夫森势垒。我们这种近邻工程器件的零场二极管效率在2K时高达±35%,且对温度有明显的平方根依赖关系。通过测量面内场强/角度依赖性并与插入Cu的对照结进行比较,我们证明了Pt/YFeO界面处的交换自旋分裂和Rashba(型)自旋 - 轨道耦合是实现零场巨大整流效率的关键。我们的成果推动了无场绝对约瑟夫森二极管的发展。

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