Heavy electrons and the symplectic symmetry of spin
Rebecca Flint, M. Dzero, P. Coleman

TL;DR
This paper introduces a novel large N expansion method employing symplectic symmetry to describe the coexistence of spin quenching and superconductivity in heavy fermion materials, predicting a unique anisotropic paired state.
Contribution
It develops a new large N expansion approach using symplectic symmetry to accurately model heavy fermion superconductors with local moment quenching.
Findings
Predicts a unique g-wave anisotropic paired state.
Shows enhanced T_c in Pu-doped NpPd_{5}Al_{2}.
Anticipates a large NMR relaxation rate upturn above T_c.
Abstract
The recent discovery of two heavy fermion materials PuCoGa_{5} and NpPd_{5}Al_{2} which transform directly from Curie paramagnets into superconductors, reveals a new class of superconductor where local moments quench directly into a superconducting condensate. A powerful tool in the description of heavy fermion metals is the large N expansion, which expands the physics in powers of 1/N about a solvable limit where particles carry a large number (N) of spin components. As it stands, this method is unable to jointly describe the spin quenching and superconductivity which develop in PuCoGa_{5} and NpPd_{5}Al_{2}. Here, we solve this problem with a new class of large N expansion that employs the symplectic symmetry of spin to protect the odd time-reversal parity of spin and sustain Cooper pairs as well-defined singlets. With this method we show that when a lattice of magnetic ions exchange…
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