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Spin waves and high-frequency response in layered superconductors with helical magnetic structure

A. E. Koshelev

DOI 10.1103/PhysRevB.103.214503 · Physical Review B

T1

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Abstract

We evaluate the spin-wave spectrum and dynamic susceptibility in a layered superconductor with helical interlayer magnetic structure. We especially focus on the structure in which the moments rotate 90∘ from layer to layer realized in the iron pnictide RbEuFe4As4. While in nonmagnetic superconductors low-frequency magnetic field decays on the distance of the order of the London penetration depth, spin waves mediate its propagation to much larger distances limited by external dissipation mechanisms. The spin-wave spectrum in superconductors is strongly renormalized due to the long-range electromagnetic interactions between the oscillating magnetic moments. This leads to strong enhancement of the frequency of the mode coupled with uniform field and this enhancement exists only within a narrow range of the c-axis wave vectors of the order of the inverse London penetration depth. The key feature of materials like RbEuFe4As4 is that this uniform mode corresponds to the maximum frequency of the spin-wave spectrum with respect to the c-axis wave vector. As a consequence, the high-frequency surface resistance acquires a very distinct asymmetric feature spreading between the bare and renormalized frequencies. We also consider excitation of spin waves with the Josephson effect in a tunneling contact between helical-magnetic and conventional superconductors and study the interplay between the spin-wave features and geometrical cavity resonances in the current-voltage characteristics.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
RbEuFe4As4

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36.5Pressure not reportedunknown
CsEuFe4As4

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36.5Pressure not reportedunknown
HoMo6S8

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1.2Pressure not reportedunknown
ErRh4B4

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8.5Pressure not reportedunknown
ErNi2B2C

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10.5Pressure not reportedunknown
HoNi2B2C

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8Pressure not reportedunknown
EuFe2As2

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302.6 GPaunknown
EuFe(As1-xPx)2

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

26Pressure not reportedunknown

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