Highly mobile electron-driven transport in Dirac semimetallic oxide BiRe<sub>2</sub>O<sub>6</sub>
ORAL
Abstract
5d transition metal oxides provide a fertile playground to explore new phenomena resulting from the interplay between topology, spin-orbit, and electron-electron correlations. To date, however, limited studies of topological properties exist due to the difficulty in synthesizing single crystals of these oxides. Here, I will present magnetotransport and quantum oscillations study on high-quality single crystals of Dirac semimetallic oxide BiRe2O6. It crystallizes in a monoclinic structure with space group C2/c (SG#15) and is a Pauli paramagnetic. Intriguingly, it exhibits large positive magnetoresistance of 1103 % at 2 K. Unlike other topological semimetals that show large MR, it evidences high electron carrier density and mobility of 0.51022 cm−3 and 1103 cm2 V-1 s-1, respectively. Moreover, analysis of de Haas–van Alphen oscillation measurements and band structure calculations reveals the Fermi surface comprising of multiple pockets with small effective masses. Our findings may trigger to study of novel phenomena of correlated Dirac electrons in topological materials based on oxides.
*This work was financially supported by the European Union's Horizon 2020 research and innovation programme (grant No. 766566); Deutsche Forschungsgemeinschaft (DFG) under SFB1143 (Project No. 247310070); the European Research Council (ERC) Advanced Grant No.742068 ("TOPMAT") and the Würzburg-Dresden Cluster of Excellence on Complexity and Topologyin Quantum Matter - ct.qmat (EXC2147, project no. 390858490). M.G.V. and C.F. acknowledge the support of FOR5249 (QUAST) lead by DFG, German Research Foundation.
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Presenters
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Premakumar Yanda
- Max Planck Institute for Chemical Physics of Solids