Large magneto-Seebeck effect in magnetic tunnel junctions with half-metallic Heusler electrodes.

Boehnke, Alexander; Martens, Ulrike; Sterwerf, Christian; Niesen, Alessia; Huebner, Torsten; von der Ehe, Marvin; Meinert, Markus; Kuschel, Timo et al. · Nat Commun · 2017

basic_science · Level V

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Abstract

Spin caloritronics studies the interplay between charge-, heat- and spin-currents, which are initiated by temperature gradients in magnetic nanostructures. A plethora of new phenomena has been discovered that promises, e.g., to make wasted heat in electronic devices useable or to provide new read-out mechanisms for information. However, only few materials have been studied so far with Seebeck voltages of only some microvolt, which hampers applications. Here, we demonstrate that half-metallic Heusler compounds are hot candidates for enhancing spin-dependent thermoelectric effects. This becomes evident when considering the asymmetry of the spin-split density of electronic states around the Fermi level that determines the spin-dependent thermoelectric transport in magnetic tunnel junctions. We identify Co<sub>2</sub>FeAl and Co<sub>2</sub>FeSi Heusler compounds as ideal due to their energy gaps in the minority density of states, and demonstrate devices with substantially larger Seebeck voltages and tunnel magneto-Seebeck effect ratios than the commonly used Co-Fe-B-based junctions.