Spin-Polarized Electron Transport at Ferromagnet/Semiconductor Schottky Contacts
J. D. Albrecht, D. L. Smith

TL;DR
This paper presents a theoretical model for spin-polarized electron transport at ferromagnet/semiconductor Schottky contacts, highlighting how interface resistance and doping profiles influence spin injection and detection efficiency.
Contribution
It introduces a detailed drift-diffusion level model incorporating spin-dependent interface resistance and explores how doping profiles can optimize spin transport at Schottky contacts.
Findings
Depletion regions hinder spin injection and detection.
Heavily doped near-interface layers improve spin transport.
Proper interface design enables efficient spin injection and detection.
Abstract
We theoretically investigate electron spin injection and spin-polarization sensitive current detection at Schottky contacts between a ferromagnetic metal and an n-type or p-type semiconductor. We use spin-dependent continuity equations and transport equations at the drift-diffusion level of approximation. Spin-polarized electron current and density in the semiconductor are described for four scenarios corresponding to the injection or the collection of spin polarized electrons at Schottky contacts to n-type or p-type semiconductors. The transport properties of the interface are described by a spin-dependent interface resistance, resulting from an interfacial tunneling region. The spin-dependent interface resistance is crucial for achieving spin injection or spin polarization sensitivity in these configurations. We find that the depletion region resulting from Schottky barrier formation…
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Taxonomy
TopicsQuantum and electron transport phenomena · Surface and Thin Film Phenomena · Semiconductor materials and devices
