One-dimensional ballistic transport with FLAPW Wannier functions
Bj\"orn Hardrat, Nengping Wang, Frank Freimuth, Yuriy, Mokrousov, Stefan Heinze

TL;DR
This paper introduces a high-accuracy DFT-based method using FLAPW and Wannier functions to study spin-dependent ballistic transport in one-dimensional nanostructures, revealing significant magnetoresistance effects.
Contribution
The authors develop a novel implementation combining FLAPW and Wannier functions for ballistic transport calculations, enabling detailed analysis of spin-orbit effects and magnetoresistance in 1D systems.
Findings
Spin-orbit coupling causes conductance changes with magnetization orientation.
Ballistic anisotropic magnetoresistance reaches up to 7% for spin-scattering.
Gigantic magnetoresistance of around 100% observed with Pt impurity in Co wire.
Abstract
We present an implementation of the ballistic Landauer-B\"uttiker transport scheme in one-dimensional systems based on density functional theory (DFT) calculations within the full-potential linearized augmented plane-wave (FLAPW) method. In order to calculate the conductance within the Green's function method we map the electronic structure from the extended states of the FLAPW calculation to Wannier functions which constitute a minimal localized basis set. Our approach benefits from the high accuracy of the underlying FLAPW calculations allowing us to address the complex interplay of structure, magnetism, and spin-orbit coupling and is ideally suited to study spin-dependent electronic transport in one-dimensional magnetic nanostructures. To illustrate our approach we study ballistic electron transport in non-magnetic Pt monowires with a single stretched bond including spin-orbit…
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