Artículo
Surface superconductivity in the topological Weyl semimetal t-PtBi2
Schimmel, Sebastian; Fasano, Yanina
; Hoffmann, Sven; Besproswanny, Julia; Corredor Bohorquez, Laura Teresa; Puig, Joaquin Roberto
; Elshalem, Bat-Chen; Kalisky, Beena; Shipunov, Grigory; Baumann, Danny; Aswartham, Saicharan; Büchner, Bernd; Hess, Christian
; Hoffmann, Sven; Besproswanny, Julia; Corredor Bohorquez, Laura Teresa; Puig, Joaquin Roberto
; Elshalem, Bat-Chen; Kalisky, Beena; Shipunov, Grigory; Baumann, Danny; Aswartham, Saicharan; Büchner, Bernd; Hess, Christian
Fecha de publicación:
11/2024
Editorial:
Nature
Revista:
Nature Communications
ISSN:
2041-1723
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
Topological superconductivity is a promising concept for generating faulttolerant qubits. Early experimental studies looked at hybrid systems and doped intrinsic topological or superconducting materials at very low temperatures. However, higher critical temperatures are indispensable for technological exploitation. Recent angle-resolved photoemission spectroscopy results have revealed that superconductivity in the type-I Weyl semimetal— trigonal PtBi2 (t-PtBi2)—is located at the Fermi-arc surface states, which renders the material a potential candidate for intrinsic topological superconductivity. Here we show, using scanning tunnelling microscopy and spectroscopy, that t-PtBi2 presents surface superconductivity at elevated temperatures (5 K). The gap magnitude is elusive: it is spatially inhomogeneous and spans from 0 to 20 meV. In particular, the large gap value and the shape of the quasiparticle excitation spectrum resemble the phenomenology of high-Tc superconductors. To our knowledge, this is the largest superconducting gap so far measured in a topological material. Moreover, we show that the superconducting state at 5 K persists in magnetic fields up to 12 T.
Palabras clave:
Superconductivity
,
Topological superconductivity
,
Weyl semimetal
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Identificadores
Colecciones
Articulos (UE-INN - NODO BARILOCHE)
Articulos de UNIDAD EJECUTORA INSTITUTO DE NANOCIENCIA Y NANOTECNOLOGIA - NODO BARILOCHE
Articulos de UNIDAD EJECUTORA INSTITUTO DE NANOCIENCIA Y NANOTECNOLOGIA - NODO BARILOCHE
Citación
Schimmel, Sebastian; Fasano, Yanina; Hoffmann, Sven; Besproswanny, Julia; Corredor Bohorquez, Laura Teresa; et al.; Surface superconductivity in the topological Weyl semimetal t-PtBi2; Nature; Nature Communications; 15; 1; 11-2024; 1-6
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