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Bulk Rotational Symmetry Breaking in Kondo Insulator SmB6

Strongly Correlated Electrons 2017-10-26 v1 Materials Science

Abstract

Kondo insulator samarium hexaboride (SmB6) has been intensely studied in recent years as a potential candidate of a strongly correlated topological insulator. One of the most exciting phenomena observed in SmB6 is the clear quantum oscillations appearing in magnetic torque at a low temperature despite the insulating behavior in resistance. These quantum oscillations show multiple frequencies and varied effective masses. The origin of quantum oscillation is, however, still under debate with evidence of both two-dimensional Fermi surfaces and three-dimensional Fermi surfaces. Here, we carry out angle-resolved torque magnetometry measurements in a magnetic field up to 45 T and a temperature range down to 40 mK. With the magnetic field rotated in the (010) plane, the quantum oscillation frequency of the strongest oscillation branch shows a four-fold rotational symmetry. However, in the angular dependence of the amplitude of the same branch, this four-fold symmetry is broken and, instead, a twofold symmetry shows up, which is consistent with the prediction of a two-dimensional Lifshitz-Kosevich model. No deviation of Lifshitz-Kosevich behavior is observed down to 40 mK. Our results suggest the existence of multiple light-mass surface states in SmB6, with their mobility significantly depending on the surface disorder level.

Keywords

Cite

@article{arxiv.1710.08945,
  title  = {Bulk Rotational Symmetry Breaking in Kondo Insulator SmB6},
  author = {Z. Xiang and B. Lawson and T. Asaba and C. Tinsman and Lu Chen and C. Shang and X. H. Chen and Lu Li},
  journal= {arXiv preprint arXiv:1710.08945},
  year   = {2017}
}

Comments

15 pages, 9 figures