Topological superconductivity driven by correlations and linear defects in multiband superconductors

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Topological superconductivity driven by correlations and linear defects in multiband superconductors. / Pal, Mainak; Kreisel, Andreas; Hirschfeld, P. J.

I: Physical Review B, Bind 107, Nr. 13, 134503, 04.04.2023.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Pal, M, Kreisel, A & Hirschfeld, PJ 2023, 'Topological superconductivity driven by correlations and linear defects in multiband superconductors', Physical Review B, bind 107, nr. 13, 134503. https://doi.org/10.1103/PhysRevB.107.134503

APA

Pal, M., Kreisel, A., & Hirschfeld, P. J. (2023). Topological superconductivity driven by correlations and linear defects in multiband superconductors. Physical Review B, 107(13), [134503]. https://doi.org/10.1103/PhysRevB.107.134503

Vancouver

Pal M, Kreisel A, Hirschfeld PJ. Topological superconductivity driven by correlations and linear defects in multiband superconductors. Physical Review B. 2023 apr. 4;107(13). 134503. https://doi.org/10.1103/PhysRevB.107.134503

Author

Pal, Mainak ; Kreisel, Andreas ; Hirschfeld, P. J. / Topological superconductivity driven by correlations and linear defects in multiband superconductors. I: Physical Review B. 2023 ; Bind 107, Nr. 13.

Bibtex

@article{089a9552a1984510897802415c49e06f,
title = "Topological superconductivity driven by correlations and linear defects in multiband superconductors",
abstract = "There have been several proposals for platforms supporting topological superconductivity in high-temperature superconductors, in order to make use of the larger superconducting gap and the expected robustness of Majorana zero modes towards perturbations. In particular, the iron-based materials offer relatively large Tc and nodeless energy gaps. In addition, atomically flat surfaces enable the engineering of defect structures and the subsequent measurement of spectroscopic properties to reveal topological aspects. From a theory perspective, a materialsspecific description is challenging due to the correlated nature of the materials and complications arising from the multiband nature of the electronic structure. Here we include both aspects in realistic interacting models, and find that the correlations themselves can lead to local magnetic order close to linear potential scattering defects at the surface of the superconductor. Using a self-consistent Bogoliubov-de Gennes framework in a real-space setup using a prototype electronic structure, we allow for arbitrary magnetic orders and show how a topological superconducting state emerges. The calculation of the topological invariant and the topological gap allows us to map out the phase diagram for the case of a linear chain of potential scatterers. While intrinsic spin-orbit coupling is not needed to enter the topological state in the presence of spin-spiral states, it enlarges the topological phase. We discuss the interplay of a triplet component of the superconducting order parameter and the spin spiral leading effectively to extended spin-orbit coupling terms, and connect our results to experimental efforts on the Fe(Se,Te) system.",
keywords = "MAJORANA FERMIONS",
author = "Mainak Pal and Andreas Kreisel and Hirschfeld, {P. J.}",
year = "2023",
month = apr,
day = "4",
doi = "10.1103/PhysRevB.107.134503",
language = "English",
volume = "107",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "13",

}

RIS

TY - JOUR

T1 - Topological superconductivity driven by correlations and linear defects in multiband superconductors

AU - Pal, Mainak

AU - Kreisel, Andreas

AU - Hirschfeld, P. J.

PY - 2023/4/4

Y1 - 2023/4/4

N2 - There have been several proposals for platforms supporting topological superconductivity in high-temperature superconductors, in order to make use of the larger superconducting gap and the expected robustness of Majorana zero modes towards perturbations. In particular, the iron-based materials offer relatively large Tc and nodeless energy gaps. In addition, atomically flat surfaces enable the engineering of defect structures and the subsequent measurement of spectroscopic properties to reveal topological aspects. From a theory perspective, a materialsspecific description is challenging due to the correlated nature of the materials and complications arising from the multiband nature of the electronic structure. Here we include both aspects in realistic interacting models, and find that the correlations themselves can lead to local magnetic order close to linear potential scattering defects at the surface of the superconductor. Using a self-consistent Bogoliubov-de Gennes framework in a real-space setup using a prototype electronic structure, we allow for arbitrary magnetic orders and show how a topological superconducting state emerges. The calculation of the topological invariant and the topological gap allows us to map out the phase diagram for the case of a linear chain of potential scatterers. While intrinsic spin-orbit coupling is not needed to enter the topological state in the presence of spin-spiral states, it enlarges the topological phase. We discuss the interplay of a triplet component of the superconducting order parameter and the spin spiral leading effectively to extended spin-orbit coupling terms, and connect our results to experimental efforts on the Fe(Se,Te) system.

AB - There have been several proposals for platforms supporting topological superconductivity in high-temperature superconductors, in order to make use of the larger superconducting gap and the expected robustness of Majorana zero modes towards perturbations. In particular, the iron-based materials offer relatively large Tc and nodeless energy gaps. In addition, atomically flat surfaces enable the engineering of defect structures and the subsequent measurement of spectroscopic properties to reveal topological aspects. From a theory perspective, a materialsspecific description is challenging due to the correlated nature of the materials and complications arising from the multiband nature of the electronic structure. Here we include both aspects in realistic interacting models, and find that the correlations themselves can lead to local magnetic order close to linear potential scattering defects at the surface of the superconductor. Using a self-consistent Bogoliubov-de Gennes framework in a real-space setup using a prototype electronic structure, we allow for arbitrary magnetic orders and show how a topological superconducting state emerges. The calculation of the topological invariant and the topological gap allows us to map out the phase diagram for the case of a linear chain of potential scatterers. While intrinsic spin-orbit coupling is not needed to enter the topological state in the presence of spin-spiral states, it enlarges the topological phase. We discuss the interplay of a triplet component of the superconducting order parameter and the spin spiral leading effectively to extended spin-orbit coupling terms, and connect our results to experimental efforts on the Fe(Se,Te) system.

KW - MAJORANA FERMIONS

U2 - 10.1103/PhysRevB.107.134503

DO - 10.1103/PhysRevB.107.134503

M3 - Journal article

VL - 107

JO - Physical Review B

JF - Physical Review B

SN - 2469-9950

IS - 13

M1 - 134503

ER -

ID: 355088621