Large Enhancement of Spin-Flip Scattering Efficiency at Y<sub>3</sub>Fe<sub>5</sub>O<sub>12</sub>/Pt Interfaces Due to Vertical Confinement.

Madathil, Haripriya; Pradeep, Pranav; Noël, Paul; Vélez, Saül · Nano Lett · 2026

basic_science · Level V

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Abstract

Magnons, the quanta of spin angular momentum, can be excited in magnetic insulators by spin-flip scattering processes induced by currents applied to a heavy-metal overlayer. The efficiency of generating nonequilibrium magnons is characterized by the interface spin current <i>j</i><sub>s</sub><sup>int</sup>, whose magnitude is considered to depend on the thermal magnon population. Here, we investigate nonlinear magnetoresistance phenomena in Pt arising from current-driven nonequilibrium magnons in Y<sub>3</sub>Fe<sub>5</sub>O<sub>12</sub> (YIG). Remarkably, we find that spin-flip scattering processes are dominated by subthermal magnons at room temperature, resulting in a large modulation of <i>j</i><sub>s</sub><sup>int</sup> with the magnetic field and YIG thickness. Concretely, reducing the YIG thickness from 100 to 10 nm increases <i>j</i><sub>s</sub><sup>int</sup> by a factor ∼20, while increasing the magnetic field exponentially suppresses the magnon generation efficiency. These findings challenge the current understanding on <i>j</i><sub>s</sub><sup>int</sup> and indicate that electrically driven magnonic effects such as damping compensation and magnon condensation can be largely boosted through device miniaturization.