Energy dissipation in a binary superfluid gas by a moving magnetic obstacle

POSTER

Abstract

In this poster, we present our experimental study on the critical energy dissipation in an atomic superfluid gas with two symmetric spin components by an oscillating magnetic obstacle. Above a certain critical oscillation frequency, spin-wave excitations are generated by the magnetic obstacle, demonstrating the spin superfluid behavior of the system. When the obstacle is strong enough to cause density perturbations via local saturation of spin polarization, half-quantum vortices (HQVs) are created for higher oscillation frequencies, which reveals the characteristic evolution of critical dissipative dynamics from spin-wave emission to HQV shedding. Critical HQV shedding is further investigated using a pulsed linear motion of the obstacle, and we identify two critical velocities to create HQVs with different core magnetization. In addition, we also present our numerical study on the spin and mass current distributions near the moving magnetic obstalce in the binary superfluid.

*This work was supported by the Samsung Science and Technology Foundation (SSTF-BA1601-06), the National Research Foundation of Korea (NRF-2018R1A2B3003373, NRF-2019M3E4A1080400), and the Institute for Basic Science in Korea (IBS-R009-D1).

Presenters

  • Junghoon Lee

    • Seoul Natl Univ

Authors

  • Joon Hyun Kim

    • Seoul Natl Univ
  • Deokhwa Hong

    • Seoul Natl Univ
  • Kyuhwan Lee

    • Seoul Natl Univ
  • Junghoon Lee

    • Seoul Natl Univ
  • Jong Heum Jung

    • Seoul National University
  • Yong-il Shin

    • Seoul Natl Univ