Controlling Magnetic Order, Magnetic Anisotropy, and Band Topology in Semimetals ${\rm Sr(Mn_{0.9}Cu_{0.1})Sb_2}$ and ${\rm Sr(Mn_{0.9}Zn_{0.1})Sb_2}$
Farhan Islam, Renu Choudhary, Yong Liu, Benjamin G. Ueland, Durga, Paudyal, Thomas Heitmann, Robert J. McQueeney, David Vaknin

TL;DR
This study investigates how Cu and Zn doping in SrMnSb2 semimetals affects their magnetic order, anisotropy, and electronic band topology, revealing tunable magnetic and electronic properties with potential for topological applications.
Contribution
It provides the first detailed analysis of how Cu and Zn substitutions alter magnetic and electronic structures in SrMnSb2, combining experimental and theoretical approaches.
Findings
Cu and Zn doping lower the Néel temperature compared to parent SrMnSb2.
Zn-doped crystals show modified de Haas van Alphen oscillations, while Cu-doped crystals do not.
Doping induces changes in band topology, including Dirac cone modifications.
Abstract
Neutron diffraction and magnetic susceptibility studies show that orthorhombic single-crystals of topological semimetals and undergo three dimensional C-type antiferromagnetic (AFM) ordering of the Mn moments at and K, respectively, significantly lower than that of the parent SrMnSb with K. Magnetization versus applied magnetic field (perpendicular to MnSb planes) below exhibits slightly modified de Haas van Alphen oscillations for the Zn-doped crystal as compared to that of the parent compound. By contrast, the Cu-doped system does not show de Haas van Alphen magnetic oscillations, suggesting that either Cu substitution for Mn changes the electronic structure of the parent compound substantially, or that the Cu sites are strong scatterers of carriers that…
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