English

Strong- to weak-coupling superconductivity in high-$T_c$ bismuthates: revisiting the phase diagram via $\mu$SR

Superconductivity 2020-01-16 v2 Strongly Correlated Electrons

Abstract

Several decades after the discovery of superconductivity in bismuthates, the strength of their electron-phonon coupling and its evolution with doping remain puzzling. To clarify these issues, polycrystalline hole-doped Ba1x_{1-x}Kx_{x}BiO3_3 (0.1x0.60.1 \le x \le 0.6) samples were systematically synthesized and their bulk- and microscopic superconducting properties were investigated by means of magnetic susceptibility and muon-spin rotation/relaxation (μ\muSR), respectively. The phase diagram of Ba1x_{1-x}Kx_{x}BiO3_3 was reliably extended up to x=0.6x = 0.6, which is still found to be a bulk superconductor. The lattice parameter aa increases linearly with K-content, implying a homogeneous chemical doping. The low-temperature superfluid density, measured via transverse-field (TF)-μ\muSR, indicates an isotropic fully-gapped superconducting state with zero-temperature gaps Δ0/kBTc\Delta_0/k_\mathrm{B}T_c = 2.15, 2.10, and 1.75, and magnetic penetration depths λ0\lambda_0 = 219, 184, and 279 nm for xx = 0.3, 0.4, and 0.6, respectively. A change in the superconducting gap, from a nearly ideal BCS value (1.76 kBk_\mathrm{B}TcT_c in the weak coupling case) in the overdoped xx = 0.6 region, to much higher values in the optimally-doped case, implies a gradual decrease in electron-phonon coupling with doping.

Keywords

Cite

@article{arxiv.1912.12112,
  title  = {Strong- to weak-coupling superconductivity in high-$T_c$ bismuthates: revisiting the phase diagram via $\mu$SR},
  author = {T. Shang and D. J. Gawryluk and M. Naamneh and Z. Salman and Z. Guguchia and M. Medarde and M. Shi and N. C. Plumb and T. Shiroka},
  journal= {arXiv preprint arXiv:1912.12112},
  year   = {2020}
}

Comments

accepted by Phys. Rev. B, 6 pages, 5 figuures