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Theory for the charge-density-wave mechanism of 3D quantum Hall effect

ORAL

Abstract

The charge-density-wave (CDW) mechanism of the 3D quantum Hall effect has been observed recently in ZrTe5 [Tang et al., Nature 569, 537 (2019)]. Quite different from previous cases, the CDW forms on a 1D band of Landau levels, which strongly depends on the magnetic field. However, its theory is still lacking. We develop a theory for the CDW mechanism of 3D quantum Hall effect. The theory can capture the main features in the experiments. We find a magnetic field induced second-order phase transition to the CDW phase. We find that electron-phonon interactions, rather than electron-electron interactions, dominate the order parameter. We extract the value of electron-phonon coupling constant from the non-Ohmic I-V relation. We point out a commensurate-incommensurate CDW crossover in the experiment. More importantly, our theory explores a rare case, in which a magnetic field can induce an order-parameter phase transition in one direction but a topological phase transition in other two directions, both depend on one magnetic field. It will be useful and inspire further experiments and theories on this emergent phase of matter.

arXiv:2003.02520

Presenters

  • Fang Qin

    Southern University of Science and Technology

Authors

  • Fang Qin

    Southern University of Science and Technology

  • Shuai Li

    Southern University of Science and Technology

  • Zongzheng Du

    Southern University of Science and Technology

  • Chunming Wang

    Shanghai Normal University

  • Wenqing Zhang

    Southern University of Science and Technology

  • Dapeng Yu

    Southern University of Science and Technology

  • Haizhou Lu

    Southern University of Science and Technology

  • X. C. Xie

    Peking University, International Center for Quantum Materials, Peking University