Microscopy of the interacting Harper-Hofstadter model in the few-body limit

POSTER

Abstract

The interplay of magnetic fields and interacting particles can lead to exotic phases of matter exhibiting topological order and high degrees of spatial entanglement. While these phases were discovered in a solid-state setting, recent techniques have enabled the realization of gauge fields in systems of ultracold neutral atoms, offering a new experimental paradigm for studying these novel states of matter. This complementary platform holds promise for exploring exotic physics in fractional quantum Hall systems due to the microscopic manipulation and precision possible in cold atom systems. However, these experiments thus far have mostly explored the regime of weak interactions. Here, we show how strong interactions can modify the propagation of particles in a $2 \times N$, real-space ladder governed by the Harper-Hofstadter model. We observe inter-particle interactions affect the populating of chiral bands, giving rise to chiral dynamics whose multi-particle correlations indicate both bound and free-particle character. The novel form of interaction-induced chirality observed in these experiments demonstrates the essential ingredients for future investigations of highly entangled topological phases of many-body systems.

Authors

  • M. Eric Tai

    Harvard University

  • Alexander Lukin

    Harvard University

  • Matthew Rispoli

    Harvard University

  • Robert Schittko

    Harvard University

  • Tim Menke

    Harvard University

  • Dan Borgnia

    Harvard University

  • Philipp Preiss

    Universit\"at Heidelberg

  • Fabian Grusdt

    Harvard University

  • Adam Kaufman

    Harvard University

  • Markus Greiner

    Harvard University