Activity-induced ferromagnetism in one-dimensional quantum many-body systems

ORAL

Abstract

In this talk, we present our study on a non-Hermitian quantum many-body model in one dimension analogous to the Vicsek model or active spin models [1]. The model consists of two-component hard-core bosons with ferromagnetic interactions and activity, i.e., spin-dependent asymmetric hopping, which is realizable with dissipative optical lattices in principle. Numerical results show the emergence of a ferromagnetic order induced by the activity, a quantum counterpart of flocking, that even survives in the absence of ferromagnetic interaction. We confirm this phenomenon by proving that activity generally increases the ground state energies of the paramagnetic states, whereas the ground state energy of the ferromagnetic state does not change. By solving the two-particle case, we find that the effective alignment is caused by avoiding the bound state formation due to the non-Hermitian skin effect in the paramagnetic state. We employ a two-site mean-field theory based on the two-particle result and qualitatively reproduce the phase diagram. We further numerically study a variant of our model with the hard-core condition relaxed, and confirm the robustness of ferromagnetic order emerging due to activity.

[1] KT*, Kyosuke Adachi*, Kyogo Kawaguchi, arXiv:2308.04382 (*co-first)

* The work of K. T. was supported by JSPS KAKENHI Grant No. JP22K20350 and No. JP23K17664 and by JST PRESTO Grant No. JPMJPR2256. The work of K. A. was supported by JSPS KAKENHI Grant No. JP20K14435. The work of K. K. was supported by JSPS KAKENHI Grant No. JP19H05795, JP21H01007, and JP23H00095.

Presenters

  • Kazuaki Takasan

    University of Tokyo

Authors

  • Kazuaki Takasan

    University of Tokyo

  • Kyosuke Adachi

    RIKEN

  • Kyogo Kawaguchi

    RIKEN, University of Tokyo