Hydrodynamic Transport Induced High-Temperature Magnetoresistance in a Dilute 2D Hole System

ORAL

Abstract

We report an unusual magnetoresistance that strengthens with the temperature in a dilute two-dimensional (2D) hole system in GaAs/AlGaAs quantum wells with densities p=1.98−0.99×1010/cm2 where rs, the ratio between Coulomb energy and Fermi energy, is as large as 20–30. We show that, while the system exhibits a negative parabolic magnetoresistance at low temperatures (≲0.4 K) characteristic of an interacting Fermi liquid, a positive magnetoresistance emerges unexpectedly at higher temperatures, and grows with increasing temperature even in the regime kBT∼EF, close to the Fermi energy. This unusual positive magnetoresistance at high temperatures can be attributed to the viscous transport of 2D hole fluid in the hydrodynamic regime where holes scatter frequently with each other. These findings give insight into the collective transport of strongly interacting carriers in the rs≫1 regime and new routes toward magnetoresistance at high temperatures.

* We acknowledge the financial support from NSF (DMR-1607631, DMR-1653661 and DMR-2203411). The work at Princeton was partially funded bythe Gordon and Betty Moore Foundation and the NSF MRSEC Program through the Princeton Center for Complex Materials (DMR-0819860).

Publication: Arvind Shankar Kumar, Chieh-Wen Liu, Shuhao Liu, Xuan P. A. Gao, Alex Levchenko, Loren N. Pfeiffer, and Kenneth W. West, Phys. Rev. Lett. 130, 266302 (2023).

Presenters

  • Xuan Gao

    Case Western Reserve University

Authors

  • Xuan Gao

    Case Western Reserve University

  • Alex Levchenko

    University of Wisconsin - Madison

  • Loren N Pfeiffer

    Princeton University

  • Kenneth W West

    Princeton University

  • Arvind Shankar Kumar

    Case Western Reserve University

  • Shuhao Liu

    Case Western Reserve University

  • Chieh-Wen Liu

    Case Western Reserve University