TY - JOUR
T1 - Epitaxial growth of gold films on the elemental superconductors V(100), Nb(100), and Nb(110)
AU - Wang, Dongfei
AU - Vaxevani, Katerina
AU - Longo, Danilo
AU - Kerschbaumer, Samuel
AU - Ortuzar, Jon
AU - Trivini, Stefano
AU - Li, Jingcheng
AU - Ilyn, Maxim
AU - Rogero, Celia
AU - Pascual, Jose Ignacio
N1 - Publisher Copyright:
© 2025 American Physical Society.
PY - 2025/6
Y1 - 2025/6
N2 - Quantum technologies require a new generation of superconducting electronic devices and circuitry. However, the superconducting materials used to construct them are restricted to a class of bulk superconductors. Gold films grown in contact with superconducting materials can exhibit superconducting correlations through the proximity effect, with various possible implementations in quantum technology. Here we study the growth of flat Au films on various surfaces of the elemental superconductors vanadium and niobium through a combination of low-Temperature scanning tunneling microscopy and x-ray photoelectron spectroscopy. In particular, we investigate the growth morphology and composition as a function of temperature and coverage. We find that gold films can grow flat and oxygen-free when annealed to sufficiently high temperatures; however, they are also susceptible to partial intermixing with the substrate elements. Low-Temperature scanning tunneling spectroscopy measurements elucidate the emergence of a proximitized superconducting gap at the gold surface. Additionally, we demonstrate the survival of the magnetic state of FeTPP-Cl molecules on the surface of these gold films, proving that they behave as a good support for probing molecular magnetism. We found that the exchange interaction between the molecular spin and the superconducting condensate can be inferred by the measurement of subgap Yu-Shiva-Rusinov states. Our paper shows that proximitized Au films constitute a promising platform to explore on-superconducting-surface synthesis and the interaction between superconductivity and magnetism in a large spin-orbit coupling environment.
AB - Quantum technologies require a new generation of superconducting electronic devices and circuitry. However, the superconducting materials used to construct them are restricted to a class of bulk superconductors. Gold films grown in contact with superconducting materials can exhibit superconducting correlations through the proximity effect, with various possible implementations in quantum technology. Here we study the growth of flat Au films on various surfaces of the elemental superconductors vanadium and niobium through a combination of low-Temperature scanning tunneling microscopy and x-ray photoelectron spectroscopy. In particular, we investigate the growth morphology and composition as a function of temperature and coverage. We find that gold films can grow flat and oxygen-free when annealed to sufficiently high temperatures; however, they are also susceptible to partial intermixing with the substrate elements. Low-Temperature scanning tunneling spectroscopy measurements elucidate the emergence of a proximitized superconducting gap at the gold surface. Additionally, we demonstrate the survival of the magnetic state of FeTPP-Cl molecules on the surface of these gold films, proving that they behave as a good support for probing molecular magnetism. We found that the exchange interaction between the molecular spin and the superconducting condensate can be inferred by the measurement of subgap Yu-Shiva-Rusinov states. Our paper shows that proximitized Au films constitute a promising platform to explore on-superconducting-surface synthesis and the interaction between superconductivity and magnetism in a large spin-orbit coupling environment.
UR - https://www.scopus.com/pages/publications/105007735416
U2 - 10.1103/PhysRevMaterials.9.066201
DO - 10.1103/PhysRevMaterials.9.066201
M3 - Article
AN - SCOPUS:105007735416
SN - 2475-9953
VL - 9
JO - Physical Review Materials
JF - Physical Review Materials
IS - 6
M1 - 066201
ER -