paper

Strong-coupling theory of magnetic-exciton-mediated superconductivity in UPdAl

arXiv:cond-mat/0401520 · doi:10.1103/PhysRevB.70.014513

Abstract

There is compelling evidence from inelastic-neutron-scattering and tunneling experiments that the heavy-fermion superconductor UPdAl can be understood as a dual system consisting of magnetic excitons, arising from crystal-field-split U levels, coupled to delocalised f-electrons. We have computed the superconducting transition temperature and the mass renormalisation arising from a dual model with maximal spin anisotropy using a strong-coupling approach. We find an instability to two possible opposite-spin-pairing states with even- or odd-parity gap functions. Each has a line node perpendicular to the c-direction, in agreement with NMR relaxation-rate, specific-heat and thermal-conductivity measurements. In addition, both have total spin component =0, compatible with the observation of a pronounced Knight shift and Pauli limiting. For parameter values appropriate to UPdAl, we determine the dependence of the superconducting transition temperature on a phenomenological coupling constant and we investigate the associated mass enhancement and its anisotropy.

11 pages, 2 figures, 1 table

Strong-coupling theory of magnetic-exciton-mediated superconductivity in UPd$_2$Al$_3$ · wovepaper