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Nanomechanical Measurements of an Antiferromagnetic Topological Insulator

ORAL

Abstract

The antiferromagnetic topological insulator Mn(Bi1-xSbx)2Te4 exhibits an ideal platform to study exotic topological phenomena and magnetic properties. The transport signatures of the magnetic phase transitions in the MnBi2Te4 family material have been well studied. However, their mechanical properties and magneto-mechanical coupling, in particular, have not been explored in the magnetic topological insulator system. In this work, we use nanoelectromechanical systems to study the intrinsic magnetism in Mn(Bi1-xSbx)2Te4 thin flakes via their magnetostrictive coupling. We investigate mechanical resonance signatures of the magnetic phase transitions from antiferromagnetic (AFM) to canted antiferromagnetic (cAFM) to ferromagnetic phases versus magnetic field and temperature. The spin-flip transitions in MBST are revealed by frequency shifts of mechanical resonance. With temperatures going above TN (~25 K) the transitions disappear in the resonance frequency map, consistent with transport measurements. We develop a model to correlate the mechanical frequency shifts with the spin canting states. Our study shows a quadratic relationship between resonance frequency and magnetization of the material and reveals a technique to study the phase transitions and magnetization of the magnetic topological insulator.

Presenters

  • Shuwan Liu

    University of Utah

Authors

  • Shuwan Liu

    University of Utah

  • Sukong Chong

    University of California, Los Angeles

  • Rohit Kumar

    University of Utah

  • Amit Vashist

    University of Utah

  • Dongwook Kim

    University of Utah

  • Seng Huat Lee

    Pennsylvania State University

  • Kang-Lung Wang

    University of California, Los Angeles

  • Zhiqiang Mao

    Pennsylvania State University

  • Feng Liu

    University of Utah

  • Vikram V Deshpande

    University of Utah