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Renormalizations in unconventional superconducting states of Ce_(1-x)Yb_(x)CoIn₅

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arxiv 1808.10606 v2 pith:WLWV4GVC submitted 2018-08-31 cond-mat.str-el cond-mat.supr-con

Renormalizations in unconventional superconducting states of Ce_(1-x)Yb_(x)CoIn₅

classification cond-mat.str-el cond-mat.supr-con
keywords superconductingheavy-fermionintermediaterenormalizationtemperature-dependentvalencecoindensity
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We have measured the superconducting penetration depth~$\Lambda(T)$ in the heavy-fermion/intermediate-valent superconducting alloy series~Ce$_{1-x}$Yb$_x$CoIn$_5$ using transverse-field muon spin relaxation, to study the effect of intermediate-valent Yb doping on Fermi-liquid renormalization. From $\Lambda(T)$ we determine the superfluid density $\rho_s(T)$, and find that it decreases continuously with increasing nominal Yb concentration~$x$, i.e., with increasing intermediate valence. The temperature-dependent renormalization of the "normal" fluid density~$\rho_N(T) = \rho_s(0) - \rho_s(T)$ in both the heavy-fermion and intermediate valence limits is proportional to the temperature-dependent renormalization of the specific heat. This indicates that the temperature-dependent Fermi-liquid Landau parameters of the superconducting quasiparticles entering the two different physical quantities are the same. These results represent an important advance in understanding of both intermediate valence and heavy-fermion phenomena in superconductors.

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