Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions

We study the topological properties of superconductors with paired j=3/2 quasiparticles. Higher spin Fermi surfaces can arise, for instance, in strongly spin-orbit coupled band-inverted semimetals. Examples include the Bi-based half-Heusler materials, which have recently been established as low-temp...

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Main Authors: Jörn W. F. Venderbos, Lucile Savary, Jonathan Ruhman, Patrick A. Lee, Liang Fu
Format: Article
Language:English
Published: American Physical Society 2018-02-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.8.011029
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spelling doaj-c4e16eea02484c31a9c5a3d1a9629ced2020-11-25T00:06:59ZengAmerican Physical SocietyPhysical Review X2160-33082018-02-018101102910.1103/PhysRevX.8.011029Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap FunctionsJörn W. F. VenderbosLucile SavaryJonathan RuhmanPatrick A. LeeLiang FuWe study the topological properties of superconductors with paired j=3/2 quasiparticles. Higher spin Fermi surfaces can arise, for instance, in strongly spin-orbit coupled band-inverted semimetals. Examples include the Bi-based half-Heusler materials, which have recently been established as low-temperature and low-carrier density superconductors. Motivated by this experimental observation, we obtain a comprehensive symmetry-based classification of topological pairing states in systems with higher angular momentum Cooper pairing. Our study consists of two main parts. First, we develop the phenomenological theory of multicomponent (i.e., higher angular momentum) pairing by classifying the stationary points of the free energy within a Ginzburg-Landau framework. Based on the symmetry classification of stationary pairing states, we then derive the symmetry-imposed constraints on their gap structures. We find that, depending on the symmetry quantum numbers of the Cooper pairs, different types of topological pairing states can occur: fully gapped topological superconductors in class DIII, Dirac superconductors, and superconductors hosting Majorana fermions. Notably, we find a series of nematic fully gapped topological superconductors, as well as double- and triple-Dirac superconductors, with quadratic and cubic dispersion, respectively. Our approach, applied here to the case of j=3/2 Cooper pairing, is rooted in the symmetry properties of pairing states, and can therefore also be applied to other systems with higher angular momentum and high-spin pairing. We conclude by relating our results to experimentally accessible signatures in thermodynamic and dynamic probes.http://doi.org/10.1103/PhysRevX.8.011029
collection DOAJ
language English
format Article
sources DOAJ
author Jörn W. F. Venderbos
Lucile Savary
Jonathan Ruhman
Patrick A. Lee
Liang Fu
spellingShingle Jörn W. F. Venderbos
Lucile Savary
Jonathan Ruhman
Patrick A. Lee
Liang Fu
Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
Physical Review X
author_facet Jörn W. F. Venderbos
Lucile Savary
Jonathan Ruhman
Patrick A. Lee
Liang Fu
author_sort Jörn W. F. Venderbos
title Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
title_short Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
title_full Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
title_fullStr Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
title_full_unstemmed Pairing States of Spin-3/2 Fermions: Symmetry-Enforced Topological Gap Functions
title_sort pairing states of spin-3/2 fermions: symmetry-enforced topological gap functions
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2018-02-01
description We study the topological properties of superconductors with paired j=3/2 quasiparticles. Higher spin Fermi surfaces can arise, for instance, in strongly spin-orbit coupled band-inverted semimetals. Examples include the Bi-based half-Heusler materials, which have recently been established as low-temperature and low-carrier density superconductors. Motivated by this experimental observation, we obtain a comprehensive symmetry-based classification of topological pairing states in systems with higher angular momentum Cooper pairing. Our study consists of two main parts. First, we develop the phenomenological theory of multicomponent (i.e., higher angular momentum) pairing by classifying the stationary points of the free energy within a Ginzburg-Landau framework. Based on the symmetry classification of stationary pairing states, we then derive the symmetry-imposed constraints on their gap structures. We find that, depending on the symmetry quantum numbers of the Cooper pairs, different types of topological pairing states can occur: fully gapped topological superconductors in class DIII, Dirac superconductors, and superconductors hosting Majorana fermions. Notably, we find a series of nematic fully gapped topological superconductors, as well as double- and triple-Dirac superconductors, with quadratic and cubic dispersion, respectively. Our approach, applied here to the case of j=3/2 Cooper pairing, is rooted in the symmetry properties of pairing states, and can therefore also be applied to other systems with higher angular momentum and high-spin pairing. We conclude by relating our results to experimentally accessible signatures in thermodynamic and dynamic probes.
url http://doi.org/10.1103/PhysRevX.8.011029
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