Litcius/Paper detail

Exceptional sign changes of the nonlocal spin Seebeck effect in antiferromagnetic hematite

Andrew Ross, Romain Lebrun, Martin Evers, András Deák, L. Szunyogh, U. Nowak, Mathias Kläui

2021Physical review. B./Physical review. B27 citationsDOIOpen Access PDF

Abstract

Low-power spintronic devices based on the propagation of pure magnonic spin currents in antiferromagnetic insulator materials offer several distinct advantages over ferromagnetic components including higher-frequency magnons and a stability against disturbing external magnetic fields. In this work, we make use of the insulating antiferromagnetic phase of iron oxide, the mineral hematite $\ensuremath{\alpha}\text{\ensuremath{-}}{\mathrm{Fe}}_{2}{\mathrm{O}}_{3}$ to investigate the long-distance transport of thermally generated magnonic spin currents. We report on the excitation of magnons generated by the spin Seebeck effect, transported both parallel and perpendicular to the antiferromagnetic easy-axis under an applied magnetic field. Making use of an atomistic hematite toy model, we calculate the transport characteristics from the deviation of the antiferromagnetic ordering from equilibrium under an applied field. We resolve the role of the magnetic order parameters in the transport, and experimentally we find significant thermal spin transport without the need for a net magnetization.

Topics & Concepts

AntiferromagnetismCondensed matter physicsMagnonFerromagnetismSpintronicsHematiteMaterials scienceMagnetizationSeebeck coefficientSpin (aerodynamics)Thermoelectric effectMagnetic fieldPhysicsQuantum mechanicsThermodynamicsMetallurgyMagnetic properties of thin filmsIron oxide chemistry and applicationsCharacterization and Applications of Magnetic Nanoparticles