Theory of Magnetic Excitations in the Heavy-Fermion Spin-Triplet Superconductor UTe
arXiv:2608.16350
Abstract
We study the dynamical spin response of UTe by using a mixed-dimensional periodic Anderson model. Within the BCS-RPA formalism, we examine how the -orbital character of the quasiparticles affects magnetic excitations in both the normal and superconducting (SC) states. In the normal state, finite mixing between localized electrons and conduction electrons produces a hybridization gap and enhances the spin response at , indicating that the magnetic excitation originates from particle--hole scattering across the hybridization gap. In the SC state, we compare four odd-parity irreducible representations, , , , and , for the spin-triplet order parameter. We find that, for the component of the spin susceptibility parallel to the vector, a pronounced superconductivity-induced spin resonance appears at only in the state. This behavior arises because the order parameter remains finite and changes its sign between the relevant -electron-dominated Fermi-surface regions connected by near . The sign-change criterion is applicable to multiband superconductors in three-dimensional heavy-fermion systems, in the presence of (i) low-dimensional portions of the Fermi surface connected by a nesting vector, (ii) the dominance of the -electron character, and (iii) the finite amplitude of SC gap on the portions.
16 pages, 13 figures, and 2 tables