Non-local magnon transconductance in extended magnetic insulating films.\\ Part I: spin diode effect
Ryuhei Kohno, Kyongmo An, Eric Clot, Vladimir V. Naletov, Nicolas, Thiery, Laurent Vila, Richard Schlitz, Nathan Beaulieu, Jamal Ben Youssef,, Madjid Anane, Vincent Cros, Hugo Merbouche, Thomas Hauet, Vladislav E., Demidov, Sergej O. Demokritov, Gregoire de Loubens

TL;DR
This review explores the nonlinear magnon transport in extended YIG films, revealing three regimes of spin transfer effects and an electrical diode-like asymmetry in magnon transconductance.
Contribution
It provides a detailed experimental analysis of magnon transconductance regimes and their relation to spin transfer effects in YIG films, highlighting the diode effect.
Findings
Identification of three distinct magnon transport regimes
Observation of diode-like asymmetry in magnon transconductance
Correlation between temperature, magnon density, and transport behavior
Abstract
This review provides a comprehensive study of the nonlinear transport properties of magnons, which are electrically emitted or absorbed inside extended YIG films by spin transfer effects via a YIGPt interface. Our purpose is to experimentally elucidate the pertinent picture behind the asymmetric electrical variation of the magnon transconductance analogous to an electric diode. The feature is rooted in the variation of the density of low-lying spin excitations via an electrical shift of the magnon chemical potential. As the intensity of the spin transfer increases in the forward direction (regime of magnon emission), the transport properties of low-energy magnon go through 3 distinct regimes: \textit{i)} at low currents, where the spin current is a linear function of the electrical current, the spin transport is ballistic and set by the film thickness; \textit{ii)} for amplitudes…
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