Enhancing the Superconducting Transition Temperature due to Strong-Coupling Effect under Antiferromagnetic Spin Fluctuations in CeRh1-xIrxIn5 : 115In-NQR Study
arXiv:cond-mat/0603247 · doi:10.1103/PhysRevLett.96.147001
Abstract
We report on systematic evolutions of antiferromagnetic (AFM) spin fluctuations and unconventional superconductivity (SC) in heavy-fermion (HF) compounds CeRhIrIn via In nuclear-quadrupole-resonance (NQR) experiment. The measurements of nuclear spin-lattice relaxation rate have revealed the marked development of AFM spin fluctuations as a consequence of approaching an AFM ordered state with increasing Rh content. Concomitantly the superconducting transition temperature and the energy gap increase drastically from K and in CeIrIn up to K and in CeRhIrIn, respectively. The present work suggests that the AFM spin fluctuations in close proximity to the AFM quantum critical point are indeed responsible for the onset of strong-coupling unconventional SC with the line node in the gap function in HF compounds.
4pages,5figures,to appear in Phys. Rev. Lett
Cited by in corpus (7)
- (pi,pi)-electronic order in iron arsenide superconductors
- Thermal conductivity evidence for d_{x^2-y^2} pairing symmetry in the heavy-fermion CeIrIn5 superconductor
- Pressure-induced unconventional superconductivity in the heavy-fermion antiferromagnet CeIn3: An 115In-NQR study under pressure
- Competition between unconventional superconductivity and incommensurate antiferromagnetic order in CeRh1-xCoxIn5
- Magneto-transport properties governed by the antiferromagnetic fluctuations in heavy fermion superconductor CeIrIn
- New Magnetic State in Incommensurate Magnetic Phase of Heavy-Fermion Superconductor CeRh0.6Co0.4In5
- Anisotropic Dependence of Superconductivity on Uniaxial Pressure in CeIrIn5