Intrinsic first- and higher-order topological superconductivity in a doped topological insulator

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Standard

Intrinsic first- and higher-order topological superconductivity in a doped topological insulator. / Scammell, Harley D.; Ingham, Julian; Geier, Max; Li, Tommy.

I: Physical Review B, Bind 105, Nr. 19, 195149, 31.05.2022.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Scammell, HD, Ingham, J, Geier, M & Li, T 2022, 'Intrinsic first- and higher-order topological superconductivity in a doped topological insulator', Physical Review B, bind 105, nr. 19, 195149. https://doi.org/10.1103/PhysRevB.105.195149

APA

Scammell, H. D., Ingham, J., Geier, M., & Li, T. (2022). Intrinsic first- and higher-order topological superconductivity in a doped topological insulator. Physical Review B, 105(19), [195149]. https://doi.org/10.1103/PhysRevB.105.195149

Vancouver

Scammell HD, Ingham J, Geier M, Li T. Intrinsic first- and higher-order topological superconductivity in a doped topological insulator. Physical Review B. 2022 maj 31;105(19). 195149. https://doi.org/10.1103/PhysRevB.105.195149

Author

Scammell, Harley D. ; Ingham, Julian ; Geier, Max ; Li, Tommy. / Intrinsic first- and higher-order topological superconductivity in a doped topological insulator. I: Physical Review B. 2022 ; Bind 105, Nr. 19.

Bibtex

@article{7bd6a2e44b0341f99699fde6c64ef2b9,
title = "Intrinsic first- and higher-order topological superconductivity in a doped topological insulator",
abstract = "We explore higher-order topological superconductivity in an artificial Dirac material with intrinsic spin-orbit coupling, which is a doped Z(2) topological insulator in the normal state. A mechanism for superconductivity due to repulsive interactions, pseudospin pairing, has recently been shown to naturally result in higher-order topology in Dirac systems past a minimum chemical potential [T. Li et al., 2D Mater. 9, 015031 (2022)]. Here we apply this theory through microscopic modeling of a superlattice potential imposed on an inversion-symmetric hole-doped semiconductor heterostructure, known as hole-based semiconductor artificial graphene, and extend previous work to include the effects of spin-orbit coupling. We find that spin-orbit coupling enhances interaction effects, providing an experimental handle to increase the efficiency of the superconducting mechanism. We show that the phase diagram of these systems, as a function of chemical potential and interaction strength, contains three superconducting states: a first-order topological p + ip state, a second-order topological spatially modulated p + i tau p state, and a second-order topological extended s-wave state s(tau). We calculate the symmetry-based indicators for the p + i tau p and s(tau) states, which prove these states possess second-order topology. Exact diagonalization results are presented which illustrate the interplay between the boundary physics and spin-orbit interaction. We argue that this class of systems offers an experimental platform to engineer and explore first- and higher-order topological superconducting states.",
keywords = "2-DIMENSIONAL ELECTRON, GRAPHENE",
author = "Scammell, {Harley D.} and Julian Ingham and Max Geier and Tommy Li",
year = "2022",
month = may,
day = "31",
doi = "10.1103/PhysRevB.105.195149",
language = "English",
volume = "105",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "19",

}

RIS

TY - JOUR

T1 - Intrinsic first- and higher-order topological superconductivity in a doped topological insulator

AU - Scammell, Harley D.

AU - Ingham, Julian

AU - Geier, Max

AU - Li, Tommy

PY - 2022/5/31

Y1 - 2022/5/31

N2 - We explore higher-order topological superconductivity in an artificial Dirac material with intrinsic spin-orbit coupling, which is a doped Z(2) topological insulator in the normal state. A mechanism for superconductivity due to repulsive interactions, pseudospin pairing, has recently been shown to naturally result in higher-order topology in Dirac systems past a minimum chemical potential [T. Li et al., 2D Mater. 9, 015031 (2022)]. Here we apply this theory through microscopic modeling of a superlattice potential imposed on an inversion-symmetric hole-doped semiconductor heterostructure, known as hole-based semiconductor artificial graphene, and extend previous work to include the effects of spin-orbit coupling. We find that spin-orbit coupling enhances interaction effects, providing an experimental handle to increase the efficiency of the superconducting mechanism. We show that the phase diagram of these systems, as a function of chemical potential and interaction strength, contains three superconducting states: a first-order topological p + ip state, a second-order topological spatially modulated p + i tau p state, and a second-order topological extended s-wave state s(tau). We calculate the symmetry-based indicators for the p + i tau p and s(tau) states, which prove these states possess second-order topology. Exact diagonalization results are presented which illustrate the interplay between the boundary physics and spin-orbit interaction. We argue that this class of systems offers an experimental platform to engineer and explore first- and higher-order topological superconducting states.

AB - We explore higher-order topological superconductivity in an artificial Dirac material with intrinsic spin-orbit coupling, which is a doped Z(2) topological insulator in the normal state. A mechanism for superconductivity due to repulsive interactions, pseudospin pairing, has recently been shown to naturally result in higher-order topology in Dirac systems past a minimum chemical potential [T. Li et al., 2D Mater. 9, 015031 (2022)]. Here we apply this theory through microscopic modeling of a superlattice potential imposed on an inversion-symmetric hole-doped semiconductor heterostructure, known as hole-based semiconductor artificial graphene, and extend previous work to include the effects of spin-orbit coupling. We find that spin-orbit coupling enhances interaction effects, providing an experimental handle to increase the efficiency of the superconducting mechanism. We show that the phase diagram of these systems, as a function of chemical potential and interaction strength, contains three superconducting states: a first-order topological p + ip state, a second-order topological spatially modulated p + i tau p state, and a second-order topological extended s-wave state s(tau). We calculate the symmetry-based indicators for the p + i tau p and s(tau) states, which prove these states possess second-order topology. Exact diagonalization results are presented which illustrate the interplay between the boundary physics and spin-orbit interaction. We argue that this class of systems offers an experimental platform to engineer and explore first- and higher-order topological superconducting states.

KW - 2-DIMENSIONAL ELECTRON

KW - GRAPHENE

U2 - 10.1103/PhysRevB.105.195149

DO - 10.1103/PhysRevB.105.195149

M3 - Journal article

VL - 105

JO - Physical Review B

JF - Physical Review B

SN - 2469-9950

IS - 19

M1 - 195149

ER -

ID: 315529868