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Efficient spin transport in a paramagnetic insulator

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arxiv 1811.11972 v1 pith:LIPO7Y4Y submitted 2018-11-29 cond-mat.mtrl-sci cond-mat.mes-hall

classification cond-mat.mtrl-scicond-mat.mes-hall
keywords mathrmspintransportbeencurrentsefficientinsulatormagnetic
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abstract

The discovery of new materials that efficiently transmit spin currents has been important for spintronics and material science. The electric insulator $\mathrm{Gd}_3\mathrm{Ga}_5\mathrm{O}_{12}$ (GGG) is a superior substrate for growing magnetic films, but has never been considered as a conduit for spin currents. Here we report spin current propagation in paramagnetic GGG over several microns. Surprisingly, the spin transport persists up to temperatures of 100 K $\gg$ $T_{\mathrm{g}} = 180$ mK, GGG's magnetic glass-like transition temperature. At 5 K we find a spin diffusion length ${\lambda_{\mathrm{GGG}}} = 1.8 \pm 0.2 {\mu}$m and a spin conductivity ${\sigma}_{\mathrm{GGG}} = (7.3 \pm 0.3) \times10^4$ $\mathrm{Sm}^{-1}$ that is larger than that of the record quality magnet $\mathrm{Y}_3\mathrm{Fe}_5\mathrm{O}_{12}$ (YIG). We conclude that exchange coupling is not required for efficient spin transport, which challenges conventional models and provides new material-design strategies for spintronic devices.

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Cited by 1 Pith paper

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  1. Spin Seebeck effect in the layered ferromagnetic insulators CrSiTe$_3$ and CrGeTe$_3$

    cond-mat.mtrl-sci 2019-08 conditional novelty 6.0 of 10

    In CrSiTe3/Pt and CrGeTe3/Pt, the longitudinal spin Seebeck signal persists above the Curie temperature, attributed to exchange-driven interlayer spin transport.

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