Oxygen isotope effect on the superfluid density within the wave and wave pairing channels of YBaCuO
arXiv:2306.08112 · doi:10.1016/j.physc.2023.1354332
Abstract
We report on measurements of the oxygen isotope (O/O) effect (OIE) on the transition temperature and the zero-temperature in-plane magnetic penetration depth in the stoichiometric cuprate superconductor YBaCuO by means of muon-spin rotation/relaxation. An analysis of the temperature evolution of in terms of coexisting wave order parameters reveals that the OIE on the superfluid density stems predominantly from the wave component while the contribution of the wave one is almost zero. The OIE on the transition temperature is found to be rather small: %, compared to the total OIE on the superfluid density : %. The partial OIE's on the corresponding wave and wave components of are %, and %, respectively. Our results demonstrate that polaron formation in the CuO planes is the origin of the observed OIE in the wave channel. In the much weaker wave channel, fermionic quasiparticles are present, which do not contribute to the OIE on . Our results support the original idea of K. Alex Müller on the polaronic nature of the supercarries in high-temperature cuprate superconductors.
Contribution to a special issue by Physica C: "Oxide superconductors and beyond - In memoriam of Professor Karl Alex Müller"
References in corpus (6)
- Evidence for complex order parameter in La_{1.83}Sr_{0.17}CuO_4
- Muon-spin rotation studies of SmFeAsO_0.85 and NdFeAsO_0.85 superconductors
- Universal observation of multiple order parameters in cuprate superconductors
- Perspective on the muon-spin rotation/relaxation under hydrostatic pressure
- Correlation between oxygen isotope effects on the transition temperature and the magnetic penetration depth in high-temperature superconductors close to optimal doping
- Magnetic field dependence of the oxygen isotope effect on the magnetic penetration depth in hole-doped cuprate superconductors