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The temperature dependence of FeRh's transport properties

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arxiv 1606.02072 v1 pith:3OK5V4UP submitted 2016-06-07 cond-mat.mtrl-sci

The temperature dependence of FeRh's transport properties

classification cond-mat.mtrl-sci
keywords temperaturedependenceresistivitydifferentelectronicferhinducedinvestigated
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The finite-temperature transport properties of FeRh compounds are investigated by first-principles Density Functional Theory-based calculations. The focus is on the behavior of the longitudinal resistivity with rising temperature, which exhibits an abrupt decrease at the metamagnetic transition point, $T = T_m$ between ferro- and antiferromagnetic phases. A detailed electronic structure investigation for $T \geq 0$ K explains this feature and demonstrates the important role of (i) the difference of the electronic structure at the Fermi level between the two magnetically ordered states and (ii) the different degree of thermally induced magnetic disorder in the vicinity of $T_m$, giving different contributions to the resistivity. To support these conclusions, we also describe the temperature dependence of the spin-orbit induced anomalous Hall resistivity and Gilbert damping parameter. For the various response quantities considered the impact of thermal lattice vibrations and spin fluctuations on their temperature dependence is investigated in detail. Comparison with corresponding experimental data finds in general a very good agreement.

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