| Literature DB >> 31896711 |
Morteza Kayyalha1, Di Xiao1, Ruoxi Zhang1, Jaeho Shin1, Jue Jiang1, Fei Wang1, Yi-Fan Zhao1, Run Xiao1, Ling Zhang1, Kajetan M Fijalkowski2,3, Pankaj Mandal2,3, Martin Winnerlein2,3, Charles Gould2,3, Qi Li1, Laurens W Molenkamp2,3, Moses H W Chan4, Nitin Samarth4, Cui-Zu Chang4.
Abstract
A quantum anomalous Hall (QAH) insulator coupled to an s-wave superconductor is predicted to harbor chiral Majorana modes. A recent experiment interprets the half-quantized two-terminal conductance plateau as evidence for these modes in a millimeter-size QAH-niobium hybrid device. However, non-Majorana mechanisms can also generate similar signatures, especially in disordered samples. Here, we studied similar hybrid devices with a well-controlled and transparent interface between the superconductor and the QAH insulator. When the devices are in the QAH state with well-aligned magnetization, the two-terminal conductance is always half-quantized. Our experiment provides a comprehensive understanding of the superconducting proximity effect observed in QAH-superconductor hybrid devices and shows that the half-quantized conductance plateau is unlikely to be induced by chiral Majorana fermions in samples with a highly transparent interface.Year: 2020 PMID: 31896711 DOI: 10.1126/science.aax6361
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728