Spin transfer torque in Mn$_3$Ga-based ferrimagnetic tunnel junctions from first principles
Maria Stamenova, Plamen Stamenov, Farzad Mahfouzi, Quilong Sun,, Nicholas Kioussis, and Stefano Sanvito

TL;DR
This study uses first-principles calculations to analyze spin-transfer torque in Mn$_3$Ga-based magnetic tunnel junctions, revealing long-range oscillations and effects of structural variations on spin transport properties.
Contribution
It provides the first detailed first-principles analysis of STT in Mn$_3$Ga ferrimagnetic tunnel junctions, highlighting long-range oscillations and the impact of structural and bias variations.
Findings
Long-range spatial oscillations of STT decay over tens of angstroms.
Oscillatory behavior is robust against geometry and bias variations.
Resonant tunneling enhances TMR and STT in Mn$_3$Ga stacks.
Abstract
We report on first-principles calculations of spin-transfer torque (STT) in epitaxial magnetic tunnel junctions (MTJs) based on ferrimagnetic tetragonal MnGa electrodes, both as analyzer in an Fe/MgO stack, and also in an analogous stack with a second MnGa electrode (instead of Fe) as polarizer. Solving the ballistic transport problem (NEGF + DFT) for the nonequilibrium spin density in a scattering region extended to over 7.6 nm into the MnGa electrode, we find long-range spatial oscillations of the STT decaying on a length scale of a few tens of angstroms, both in the linear response regime and for finite bias. The oscillatory behavior of the STT in MnGa is robust against variations in the stack geometry and the applied bias voltage, which may affect the phase and the amplitude of the spatial oscillation, but the wave number is only responsive to variations in the…
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