Polaron-Depleton Transition in the Yrast Excitations of a One-Dimensional Bose Gas with a Mobile Impurity

POSTER

Abstract

We present exact numerical data for the lowest-energy momentum eigenstates (yrast states) of a repulsive spin impurity in a one-dimensional Bose gas using full configuration interaction quantum Monte Carlo (FCIQMC). As a stochastic extension of exact diagonalization, it is well suited for the study of yrast states of a lattice-renormalized model for a quantum gas. Yrast states carry valuable information about the dynamic properties of slow-moving mobile impurities immersed in a many-body system. Based on the energies and the first and second-order correlation functions of yrast states, we identify different dynamical regimes and the transitions between them: The polaron regime, where the impurity's motion is affected by the Bose gas through a renormalized effective mass; a regime of a gray soliton that is weakly correlated with a stationary impurity, and the depleton regime, where the impurity occupies a dark or gray soliton. Extracting the depleton effective mass reveals a super heavy regime where the magnitude of the (negative) depleton mass exceeds the mass of the finite Bose gas.

* This research was funded by the Marsden Fund of New Zealand, Contract No. MAU1604, from government funding managed by the Royal Society of New Zealand Te Apārangi.

Presenters

  • Mingrui Yang

    Washington University in St. Louis

Authors

  • Mingrui Yang

    Washington University in St. Louis

  • Matija Čufar

    Dodd-Walls Centre for Photonic and Quantum Technologies, New Zealand Institute for Advanced Study, Centre for Theoretical Chemistry and Physics, Massey University

  • Elke Pahl

    MacDiarmid Institute for Advanced Materials and Nanotechnology, Department of Physics, University of Auckland, New Zealand

  • Joachim Brand

    Dodd-Walls Centre for Photonic and Quantum Technologies, New Zealand Institute for Advanced Study, Centre for Theoretical Chemistry and Physics, Massey University