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超导薄膜中普遍存在的超导二极管效应。

Ubiquitous Superconducting Diode Effect in Superconductor Thin Films.

作者信息

Hou Yasen, Nichele Fabrizio, Chi Hang, Lodesani Alessandro, Wu Yingying, Ritter Markus F, Haxell Daniel Z, Davydova Margarita, Ilić Stefan, Glezakou-Elbert Ourania, Varambally Amith, Bergeret F Sebastian, Kamra Akashdeep, Fu Liang, Lee Patrick A, Moodera Jagadeesh S

机构信息

Francis Bitter Magnet Laboratory and Plasma Science and Fusion Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

IBM Research Europe - Zurich, Säumerstrasse 4, 8803 Rüschlikon, Switzerland.

出版信息

Phys Rev Lett. 2023 Jul 14;131(2):027001. doi: 10.1103/PhysRevLett.131.027001.

Abstract

The macroscopic coherence in superconductors supports dissipationless supercurrents that could play a central role in emerging quantum technologies. Accomplishing unequal supercurrents in the forward and backward directions would enable unprecedented functionalities. This nonreciprocity of critical supercurrents is called the superconducting (SC) diode effect. We demonstrate the strong SC diode effect in conventional SC thin films, such as niobium and vanadium, employing external magnetic fields as small as 1 Oe. Interfacing the SC layer with a ferromagnetic semiconductor EuS, we further accomplish the nonvolatile SC diode effect reaching a giant efficiency of 65%. By careful control experiments and theoretical modeling, we demonstrate that the critical supercurrent nonreciprocity in SC thin films could be easily accomplished with asymmetrical vortex edge and surface barriers and the universal Meissner screening current governing the critical currents. Our engineering of the SC diode effect in simple systems opens the door for novel technologies while revealing the ubiquity of the Meissner screening effect induced SC diode effect in superconducting films, and it should be eliminated with great care in the search for exotic superconducting states harboring finite-momentum Cooper pairing.

摘要

超导体中的宏观相干性支持无耗散的超电流,这在新兴量子技术中可能发挥核心作用。实现正向和反向的不等超电流将带来前所未有的功能。临界超电流的这种非互易性被称为超导(SC)二极管效应。我们在常规的超导薄膜(如铌和钒)中展示了强超导二极管效应,所施加的外部磁场小至1奥斯特。通过将超导层与铁磁半导体EuS相连接,我们进一步实现了非易失性超导二极管效应,效率高达65%。通过仔细的对照实验和理论建模,我们证明超导薄膜中的临界超电流非互易性可以通过不对称的涡旋边缘和表面势垒以及控制临界电流的普遍迈斯纳屏蔽电流轻松实现。我们在简单系统中对超导二极管效应的设计为新技术打开了大门,同时揭示了迈斯纳屏蔽效应诱导的超导二极管效应在超导薄膜中的普遍性,并且在寻找具有有限动量库珀对的奇异超导态时应格外小心地消除这种效应。

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