Ising superconductivity in bulk materials

ORAL

Abstract

Low-dimensional materials can display exceptional characteristics that diverge significantly from their larger-scale counterparts. For example, a single layer of NbSe2 demonstrates Ising superconductivity, with its in-plane upper critical field surpassing the Pauli limit, a phenomenon absent in the bulk NbSe2. However, it's worth noting that low-dimensional materials often suffer from instability and limited practicality in real-world applications. Through a series of experiments utilizing various techniques, we have discovered that bulk layered heterostructures composed of NbSe2 mono- and bilayers sandwiched in-between spacer monolayers exhibit a two-dimensional band structure akin to a heavily doped NbSe2 monolayer [1]. Notably, their in-plane upper critical fields exceed the Pauli limit by a factor of up to ten [2]. By combining first-principles calculations with experimental evidence, we have successfully derived precise band structure parameters, including the values for reduced interlayer coupling and significant spin-orbit splitting [3]. This quantitative analysis has provided us with insight into the fundamental underpinnings of Ising spin-orbit coupling in bulk superconductors.

* This work was supported by the projects APVV-20-0425, VEGA 2/0058/20, EMP-H2020 Project No. 824109, COST action CA21144 (SUPERQUMAP), EU ERDF (European regional development fund) Grant No. VA SR ITMS2014+ 313011W856.

Publication: [1] R. T. Leriche, A. Palacio‐Morales, M. Campetella, C. Tresca, S. Sasaki, C. Brun, F. Debontridder, P. David, I. Arfaoui, O. Šofranko, T. Samuely, G. Kremer, C. Monney, T. Jaouen, L. Cario, M. Calandra, and T. Cren, Misfit Layer Compounds: A Platform for Heavily Doped 2D Transition Metal Dichalcogenides, Adv. Funct. Mater. 2007706 (2020).
[2] P. Samuely, P. Szabó, J. Kačmarčík, A. Meerschaut, L. Cario, A. G. M. Jansen, T. Cren, M. Kuzmiak, O. Šofranko, and T. Samuely, Extreme in-plane upper critical magnetic fields of heavily doped quasi-two-dimensional transition metal dichalcogenides, Phys. Rev. B 104, 224507 (2021).
[3] arXiv:2304.03074

Presenters

  • Tomas Samuely

    Centre of Low Temperature Physics, P. J. Safarik University

Authors

  • Tomas Samuely

    Centre of Low Temperature Physics, P. J. Safarik University

  • Ondrej Šofranko

    Centre of Low Temperature Physics, P. J. Safarik University

  • Martin Gmitra

    Centre of Low Temperature Physics, P. J. Safarik University and SAV, University of Regensburg

  • Jozef Haniš

    Centre of Low Temperature Physics, P. J. Safarik University and SAS

  • Marek Kuzmiak

    Centre of Low Temperature Physics, SAS

  • Jozef Kacmarcík

    Centre of Low Temperature Physics, SAS

  • Pavol Szabó

    Centre of Low Temperature Physics, SAS

  • Tristan Cren

    Sorbonne Universtiy

  • Dominik Volavka

    Centre of Low Temperature Physics, P. J. Safarik University

  • Laurent Cario

    Université de Nantes

  • Shunsuke Sasaki

    Université de Nantes

  • Darshana Wickramaratne

    United States Naval Research Laboratory

  • Igor I Mazin

    George Mason University, Department of Physics and Astronomy, George Mason University; Quantum Science and Engineering Centre, George Mason University

  • Peter Samuely

    Centre of Low Temperature Physics, SAS