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Chiral p-wave superconductors have complex coherence and magnetic field penetration lengths

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arxiv 1905.07296 v2 pith:KDUJL32R submitted 2019-05-17 cond-mat.supr-con

classification cond-mat.supr-con
keywords magneticfieldorderparametercoherencedecayfieldspenetration
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We show that in superconductors that break time reversal symmetry and have anisotropy, such as p+ip materials, all order parameters and magnetic modes are mixed. Excitation of the gap fields produces an excitation of the magnetic field and vice versa. Correspondingly the long-range decay of the magnetic field and order parameter are in general given by the same exponent. Thus one cannot characterize p+ip superconductors by the usual coherence and magnetic field penetration lengths. Instead the system has normal modes that are associated with linear combinations of magnetic fields, moduli of and phases of the order parameter components. Each such normal mode has its own decay length that plays the role of a hybridized coherence/magnetic field penetration length. On a large part of the parameter space these exponents are complex. Therefore the system in general has damped oscillatory decay of the magnetic field accompanied by damped oscillatory variation of the order parameter fields.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Magnetic signatures of domain walls in $s+is$ and $s+id$ superconductors: observability and what that can tell us about the superconducting order parameter

    cond-mat.supr-con 2019-08 conditional novelty 6.0 of 10

    In anisotropic multiband superconductors, s+id and s+is domain walls produce distinct orientation-dependent spontaneous magnetic fields, enabling a proposed experimental test of pairing symmetry.

  2. Comment on the paper by D. Efremov and Yu.N. Ovchinnikov "Singular ground state of multiband inhomogeneous superconductors", Phys. Rev. B 99, 224508 (2019)

    cond-mat.supr-con 2019-08 accept novelty 5.0 of 10

    Silaev, Winyard and Babaev show that the zero-current state proposed by Efremov and Ovchinnikov is not a solution of the full Ginzburg-Landau equations, so its no-spontaneous-field conclusion is invalid.

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