paper

Spin Seebeck Effect in Normal-Metal--Chiral-Insulator Heterostructure

arXiv:2604.23111

Abstract

Phonons can carry angular momentum and exhibit chirality through the circular polarization of atomic motion. This enables a phonon-mediated spin Seebeck effect (SSE) via the conversion of phonon angular momentum into electron spin angular momentum. In this Letter, we develop a theoretical framework for calculating the spin current in a normal-metal--chiral-insulator (NM--CI) heterostructure within the nonequilibrium Green's function formalism. We discuss the influence of (i) the thermal bias across the NM--CI interface, (ii) the chemical potential of the NM, and (iii) the modification of the interfacial on-site potential on the spin transport properties. We identify two characteristic nonlinear spin-transport phenomena: negative differential SSE and spin-current rectification. The negative differential SSE arises from the competition between the thermal bias and the density of thermally excited electrons. Spin-current rectification suggests the possibility of realizing a thermally controlled spin diode. We also find that the spin-transport behavior is closely associated with an effective interfacial spectral density. This work suggests a novel route toward thermally controlled spintronic devices using chiral phonons.