Photon-induced droplet-like bound states in one-dimensional qubit array
Abstract
We consider an array of non-interacting qubits or emitters that are coupled to a one-dimensional cavity array with tunneling energy and non-linearity of strength . The number of cavities is assumed to be larger than the number of qubits. Working in the two-excitation manifold, we focus on the bandgap regime where the energy of two excited qubits is off-resonant with the two-photon bound state band. A two-step adiabatic elimination of the photonic degrees of freedom gives rise to a one-dimensional spin Hamiltonian with effective interactions; specifically, the Hamiltonian features constrained single-qubit hopping and pair hopping interactions not only between nearest neighbors but also between next-to-nearest and next-to-next-to-nearest spins. For a regularly arranged qubit array, we identify parameter combinations for which the system supports novel droplet-like bound states whose characteristics depend critically on the pair hopping. The droplet-like states can be probed dynamically. The bound states identified in our work for off-resonance conditions are distinct from localized hybridized states that emerge for on-resonance conditions.
Cite
@article{arxiv.2307.05868,
title = {Photon-induced droplet-like bound states in one-dimensional qubit array},
author = {J. Talukdar and D. Blume},
journal= {arXiv preprint arXiv:2307.05868},
year = {2024}
}
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