Nematic Superconductivity and Its Critical Vestigial Phases in the Quasicrystal

Немацентричность сверхпроводимости и её критические вестигиальные фазы в квазикристалле
Jing Zhou, Yubo Liu, Fan Yang
2024-09-24

Berezinskii-Kosterlitz-Thouless transitionPenrose-Hubbard modelnematic superconductivityquasicrystalvestigial phases
We propose a general mechanism to realize nematic superconductivity (SC) and reveal its exotic vestigial phases in the quasicrystal (QC). Starting from a Penrose-Hubbard model, our microscopic studies suggest that the Kohn-Luttinger mechanism driven SC in the QC is usually gapless due to violation of Anderson's theorem, rendering that both chiral and nematic SCs are common. The nematic SC in the QC can support novel vestigial phases driven by pairing phase fluctuations above its T_{c}. Our combined renormalization group and Monte Carlo studies provide a phase diagram in which, besides the conventional charge-4e SC, two critical vestigial phases emerge, i.e., the quasinematic (QN) SC and QN metal. In the two QN phases, discrete lattice rotation symmetry is counterintuitively "quasibroken" with power-law decaying orientation correlation. They separate the phase diagram into various phases connected via Berezinskii-Kosterlitz-Thouless (BKT) transitions. These remarkable critical vestigial phases, which resemble the intermediate BKT phase in the q state (q≥5) clock model, are a consequence of the fivefold (or higher) anisotropy field brought about by the unique QC symmetry, which are absent in conventional crystalline materials.
1
A general mechanism is proposed for realizing nematic superconductivity in quasicrystals, based on a Penrose-Hubbard model.
2
In the QN phases, discrete lattice rotation symmetry is 'quasibroken' with power-law decaying orientation correlations, producing critical intermediate phases connected by BKT transitions.
3
Kohn-Luttinger mechanism driven superconductivity in the quasicrystal is usually gapless due to violation of Anderson's theorem, making both chiral and nematic superconducting states common.
4
Nematic superconductivity in the quasicrystal can support novel vestigial phases driven by pairing phase fluctuations above Tc.
5
Renormalization group and Monte Carlo studies yield a phase diagram showing, besides charge-4e superconductivity, two critical vestigial phases: quasinematic (QN) superconductor and QN metal.
6
The emergence of these critical vestigial phases is attributed to fivefold (or higher) anisotropy unique to quasicrystal symmetry, absent in conventional crystals.

Nematic superconductivity and its vestigial phases in a Penrose quasicrystal (Penrose-Hubbard model)

Emergence, phase diagram, and critical properties of nematic superconductivity and its novel vestigial phases (quasinematic SC and quasinematic metal), including gap structure, pairing-phase-fluctuation–driven transitions, and BKT-like criticality induced by fivefold quasicrystalline anisotropy

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2024-09-24
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Authors
Jing Zhou
Yubo Liu
Fan Yang
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