Epitaxial growth, magnetoresistance, and electronic band structure of GdSb magnetic semimetal films
Hadass S. Inbar, Dai Q. Ho, Shouvik Chatterjee, Mihir Pendharkar,, Aaron N. Engel, Jason T. Dong, Shoaib Khalid, Yu Hao Chang, Taozhi Guo,, Alexei V. Fedorov, Donghui Lu, Makoto Hashimoto, Dan Read, Anderson Janotti,, Christopher J. Palmstr{\o}m

TL;DR
This study investigates epitaxial GdSb thin films, revealing their electronic structure, transport properties, and factors affecting magnetoresistance, with implications for spintronic and plasmonic device applications.
Contribution
It provides a comprehensive analysis of GdSb thin films' band structure, growth conditions, and magnetotransport, offering benchmarks for topological phase predictions in rare-earth monopnictides.
Findings
GdSb thin films exhibit near electron-hole compensation with quantum confinement effects.
DFT calculations agree well with quantum oscillation measurements of Fermi surface.
Surface scattering limits carrier mobility, reducing magnetoresistance compared to bulk crystals.
Abstract
Motivated by observations of extreme magnetoresistance (XMR) in bulk crystals of rare-earth monopnictide (RE-V) compounds and emerging applications in novel spintronic and plasmonic devices based on thin-film semimetals, we have investigated the electronic band structure and transport behavior of epitaxial GdSb thin films grown on III-V semiconductor surfaces. The Gd3+ ion in GdSb has a high spin S=7/2 and no orbital angular momentum, serving as a model system for studying the effects of antiferromagnetic order and strong exchange coupling on the resulting Fermi surface and magnetotransport properties of RE-Vs. We present a surface and structural characterization study mapping the optimal synthesis window of thin epitaxial GdSb films grown on III-V lattice-matched buffer layers via molecular beam epitaxy. To determine the factors limiting XMR in RE-V thin films and provide a benchmark…
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Taxonomy
TopicsTopological Materials and Phenomena · Iron-based superconductors research · Magnetic and transport properties of perovskites and related materials
