Robust negative longitudinal magnetoresistance and spin-orbit torque in sputtered Pt<sub>3</sub>Sn and Pt<sub>3</sub>Sn<sub>x</sub>Fe<sub>1-x</sub> topological semimetal.
basic_science · Level V
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- Record sourced from PubMed, PMID 37438330.
- Also identified by DOI 10.1038/s41467-023-39408-2 and PMC identifier 10338453.
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Abstract
Contrary to topological insulators, topological semimetals possess a nontrivial chiral anomaly that leads to negative magnetoresistance and are hosts to both conductive bulk states and topological surface states with intriguing transport properties for spintronics. Here, we fabricate highly-ordered metallic Pt<sub>3</sub>Sn and Pt<sub>3</sub>Sn<sub>x</sub>Fe<sub>1-x</sub> thin films via sputtering technology. Systematic angular dependence (both in-plane and out-of-plane) study of magnetoresistance presents surprisingly robust quadratic and linear negative longitudinal magnetoresistance features for Pt<sub>3</sub>Sn and Pt<sub>3</sub>Sn<sub>x</sub>Fe<sub>1-x</sub>, respectively. We attribute the anomalous negative longitudinal magnetoresistance to the type-II Dirac semimetal phase (pristine Pt<sub>3</sub>Sn) and/or the formation of tunable Weyl semimetal phases through symmetry breaking processes, such as magnetic-atom doping, as confirmed by first-principles calculations. Furthermore, Pt<sub>3</sub>Sn and Pt<sub>3</sub>Sn<sub>x</sub>Fe<sub>1-x</sub> show the promising performance for facilitating the development of advanced spin-orbit torque devices. These results extend our understanding of chiral anomaly of topological semimetals and can pave the way for exploring novel topological materials for spintronic devices.