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Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal

In all known fermionic superfluids, Cooper pairs are composed of spin-1/2 quasi-particles that pair to form either spin-singlet or spin-triplet bound states. The “spin” of a Bloch electron, however, is fixed by the symmetries of the crystal and the atomic orbitals from which it is derived and, in so...

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Autores principales: Kim, Hyunsoo, Wang, Kefeng, Nakajima, Yasuyuki, Hu, Rongwei, Ziemak, Steven, Syers, Paul, Wang, Limin, Hodovanets, Halyna, Denlinger, Jonathan D., Brydon, Philip M. R., Agterberg, Daniel F., Tanatar, Makariy A., Prozorov, Ruslan, Paglione, Johnpierre
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5938259/
https://www.ncbi.nlm.nih.gov/pubmed/29740606
http://dx.doi.org/10.1126/sciadv.aao4513
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author Kim, Hyunsoo
Wang, Kefeng
Nakajima, Yasuyuki
Hu, Rongwei
Ziemak, Steven
Syers, Paul
Wang, Limin
Hodovanets, Halyna
Denlinger, Jonathan D.
Brydon, Philip M. R.
Agterberg, Daniel F.
Tanatar, Makariy A.
Prozorov, Ruslan
Paglione, Johnpierre
author_facet Kim, Hyunsoo
Wang, Kefeng
Nakajima, Yasuyuki
Hu, Rongwei
Ziemak, Steven
Syers, Paul
Wang, Limin
Hodovanets, Halyna
Denlinger, Jonathan D.
Brydon, Philip M. R.
Agterberg, Daniel F.
Tanatar, Makariy A.
Prozorov, Ruslan
Paglione, Johnpierre
author_sort Kim, Hyunsoo
collection PubMed
description In all known fermionic superfluids, Cooper pairs are composed of spin-1/2 quasi-particles that pair to form either spin-singlet or spin-triplet bound states. The “spin” of a Bloch electron, however, is fixed by the symmetries of the crystal and the atomic orbitals from which it is derived and, in some cases, can behave as if it were a spin-3/2 particle. The superconducting state of such a system allows pairing beyond spin-triplet, with higher spin quasi-particles combining to form quintet or septet pairs. We report evidence of unconventional superconductivity emerging from a spin-3/2 quasi-particle electronic structure in the half-Heusler semimetal YPtBi, a low-carrier density noncentrosymmetric cubic material with a high symmetry that preserves the p-like j = 3/2 manifold in the Bi-based Γ(8) band in the presence of strong spin-orbit coupling. With a striking linear temperature dependence of the London penetration depth, the existence of line nodes in the superconducting order parameter Δ is directly explained by a mixed-parity Cooper pairing model with high total angular momentum, consistent with a high-spin fermionic superfluid state. We propose a k ⋅ p model of the j = 3/2 fermions to explain how a dominant J = 3 septet pairing state is the simplest solution that naturally produces nodes in the mixed even-odd parity gap. Together with the underlying topologically nontrivial band structure, the unconventional pairing in this system represents a truly novel form of superfluidity that has strong potential for leading the development of a new series of topological superconductors.
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spelling pubmed-59382592018-05-08 Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal Kim, Hyunsoo Wang, Kefeng Nakajima, Yasuyuki Hu, Rongwei Ziemak, Steven Syers, Paul Wang, Limin Hodovanets, Halyna Denlinger, Jonathan D. Brydon, Philip M. R. Agterberg, Daniel F. Tanatar, Makariy A. Prozorov, Ruslan Paglione, Johnpierre Sci Adv Research Articles In all known fermionic superfluids, Cooper pairs are composed of spin-1/2 quasi-particles that pair to form either spin-singlet or spin-triplet bound states. The “spin” of a Bloch electron, however, is fixed by the symmetries of the crystal and the atomic orbitals from which it is derived and, in some cases, can behave as if it were a spin-3/2 particle. The superconducting state of such a system allows pairing beyond spin-triplet, with higher spin quasi-particles combining to form quintet or septet pairs. We report evidence of unconventional superconductivity emerging from a spin-3/2 quasi-particle electronic structure in the half-Heusler semimetal YPtBi, a low-carrier density noncentrosymmetric cubic material with a high symmetry that preserves the p-like j = 3/2 manifold in the Bi-based Γ(8) band in the presence of strong spin-orbit coupling. With a striking linear temperature dependence of the London penetration depth, the existence of line nodes in the superconducting order parameter Δ is directly explained by a mixed-parity Cooper pairing model with high total angular momentum, consistent with a high-spin fermionic superfluid state. We propose a k ⋅ p model of the j = 3/2 fermions to explain how a dominant J = 3 septet pairing state is the simplest solution that naturally produces nodes in the mixed even-odd parity gap. Together with the underlying topologically nontrivial band structure, the unconventional pairing in this system represents a truly novel form of superfluidity that has strong potential for leading the development of a new series of topological superconductors. American Association for the Advancement of Science 2018-04-06 /pmc/articles/PMC5938259/ /pubmed/29740606 http://dx.doi.org/10.1126/sciadv.aao4513 Text en Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Kim, Hyunsoo
Wang, Kefeng
Nakajima, Yasuyuki
Hu, Rongwei
Ziemak, Steven
Syers, Paul
Wang, Limin
Hodovanets, Halyna
Denlinger, Jonathan D.
Brydon, Philip M. R.
Agterberg, Daniel F.
Tanatar, Makariy A.
Prozorov, Ruslan
Paglione, Johnpierre
Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title_full Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title_fullStr Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title_full_unstemmed Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title_short Beyond triplet: Unconventional superconductivity in a spin-3/2 topological semimetal
title_sort beyond triplet: unconventional superconductivity in a spin-3/2 topological semimetal
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5938259/
https://www.ncbi.nlm.nih.gov/pubmed/29740606
http://dx.doi.org/10.1126/sciadv.aao4513
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