马约拉纳
超导电性
配对
物理
凝聚态物理
拓扑(电路)
费米面
铜酸盐
邻近效应(电子束光刻)
望远镜
电子对
半金属
表面状态
电子
费米能级
束缚态
角分辨光电子能谱
假间隙
动量(技术分析)
高温超导
量子力学
曲面(拓扑)
带隙
费米气体
拓扑绝缘体
费米子
位置和动量空间
作者
Susmita Changdar,Oleksandr Suvorov,Andrii Kuibarov,Setti Thirupathaiah,Grigory Shipunov,Saicharan Aswartham,Sabine Wurmehl,Iryna Kovalchuk,Klaus Koepernik,Carsten Timm,Bernd Buchner,Ion Cosma Fulga,Sergey Borisenko,Jeroen van Den Brink,Susmita Changdar,Oleksandr Suvorov,Andrii Kuibarov,Setti Thirupathaiah,Grigory Shipunov,Saicharan Aswartham
出处
期刊:Nature
[Nature Portfolio]
日期:2025-11-19
卷期号:647 (8090): 613-618
标识
DOI:10.1038/s41586-025-09712-6
摘要
Abstract Most superconducting materials are well understood and conventional—that is, the pairs of electrons that cause the superconductivity by their condensation have the highest possible symmetry. Famous exceptions are the enigmatic high-temperature (high- T c ) cuprate superconductors 1 . Nodes in their superconducting gap are the fingerprint of their unconventional character and imply superconducting pairing of d -wave symmetry. Here, by using angle-resolved photoemission spectroscopy, we observe that the Weyl semimetal PtBi 2 harbours nodes in its superconducting gap, implying unconventional i -wave pairing symmetry. At temperatures below 10 K, the superconductivity in PtBi 2 gaps out its topological surface states, the Fermi arcs, whereas its bulk states remain normal 2 . The nodes in the superconducting gap that we observe are located exactly at the centre of the Fermi arcs and imply the presence of topologically protected Majorana cones around this locus in momentum space. From this, we infer theoretically that robust zero-energy Majorana flat bands emerge at surface step edges. This establishes PtBi 2 surfaces not only as unconventional, topological i -wave superconductors but also as a promising material platform in the ongoing effort to generate and manipulate Majorana bound states.
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