Department of Physics and Astronomy, University of Manchester, Manchester, UK.
National Graphene Institute, University of Manchester, Manchester, UK.
Nature. 2024 Apr;628(8009):741-745. doi: 10.1038/s41586-024-07271-w. Epub 2024 Apr 24.
Extensive efforts have been undertaken to combine superconductivity and the quantum Hall effect so that Cooper-pair transport between superconducting electrodes in Josephson junctions is mediated by one-dimensional edge states. This interest has been motivated by prospects of finding new physics, including topologically protected quasiparticles, but also extends into metrology and device applications. So far it has proven challenging to achieve detectable supercurrents through quantum Hall conductors. Here we show that domain walls in minimally twisted bilayer graphene support exceptionally robust proximity superconductivity in the quantum Hall regime, allowing Josephson junctions to operate in fields close to the upper critical field of superconducting electrodes. The critical current is found to be non-oscillatory and practically unchanging over the entire range of quantizing fields, with its value being limited by the quantum conductance of ballistic, strictly one-dimensional, electronic channels residing within the domain walls. The system described is unique in its ability to support Andreev bound states at quantizing fields and offers many interesting directions for further exploration.
人们已经做出了大量努力,试图将超导性和量子霍尔效应结合起来,以便通过约瑟夫森结中的超导电极之间的一维边缘态来介导库珀对输运。这种兴趣的动机是为了寻找新的物理现象,包括拓扑保护的准粒子,但也扩展到计量学和器件应用。到目前为止,通过量子霍尔导体实现可检测的超导电流一直具有挑战性。在这里,我们表明最小扭曲双层石墨烯中的畴壁在量子霍尔区支持异常稳健的近邻超导性,允许约瑟夫森结在接近超导电极的上临界场的磁场中工作。发现临界电流是非振荡的,在整个量子化场范围内几乎不变,其值受到位于畴壁内的弹道、严格一维的电子通道的量子电导的限制。所描述的系统在量子化场中支持安德烈夫束缚态的能力是独一无二的,并为进一步探索提供了许多有趣的方向。