English

Singularities in nearly-uniform 1D condensates due to quantum diffusion

Quantum Physics 2021-10-27 v2 Quantum Gases Pattern Formation and Solitons

Abstract

Dissipative systems can often exhibit wavelength-dependent loss rates. One prominent example is Rydberg polaritons formed by electromagnetically-induced transparency, which have long been a leading candidate for studying the physics of interacting photons and also hold promise as a platform for quantum information. In this system, dissipation is in the form of quantum diffusion, i.e., proportional to k2k^2 (kk being the wavevector) and vanishing at long wavelengths as k0k\to 0. Here, we show that one-dimensional condensates subject to this type of loss are unstable to long-wavelength density fluctuations in an unusual manner: after a prolonged period in which the condensate appears to relax to a uniform state, local depleted regions quickly form and spread ballistically throughout the system. We connect this behavior to the leading-order equation for the nearly-uniform condensate -- a dispersive analogue to the Kardar-Parisi-Zhang (KPZ) equation -- which develops singularities in finite time. Furthermore, we show that the wavefronts of the depleted regions are described by purely dissipative solitons within a pair of hydrodynamic equations, with no counterpart in lossless condensates. We close by discussing conditions under which such singularities and the resulting solitons can be physically realized.

Keywords

Cite

@article{arxiv.2103.06293,
  title  = {Singularities in nearly-uniform 1D condensates due to quantum diffusion},
  author = {C. L. Baldwin and P. Bienias and A. V. Gorshkov and M. J. Gullans and M. Maghrebi},
  journal= {arXiv preprint arXiv:2103.06293},
  year   = {2021}
}

Comments

Supplemental material is included following the main text

R2 v1 2026-06-23T23:58:31.105Z