On the Ground State Quantum Droplet for Large Chemical Potentials

Fuente: arXiv
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Autores principales: Holmer, J., Zhang, K. Z., Kevrekidis, P. G.
Formato: Preprint
Publicado: 2023
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author Holmer, J.
Zhang, K. Z.
Kevrekidis, P. G.
author_facet Holmer, J.
Zhang, K. Z.
Kevrekidis, P. G.
contents In the present work we revisit the problem of the quantum droplet in atomic Bose-Einstein condensates with an eye towards describing its ground state in the large density, so-called Thomas-Fermi limit. We consider the problem as being separable into 3 distinct regions: an inner one, where the Thomas-Fermi approximation is valid, a sharp transition region where the density abruptly drops towards the (vanishing) background value and an outer region which asymptotes to the background value. We analyze the spatial extent of each of these regions, and develop a systematic effective description of the rapid intermediate transition region. Accordingly, we derive a uniformly valid description of the ground state that is found to very accurately match our numerical computations. As an additional application of our considerations, we show that this formulation allows for an analytical approximation of excited states such as the (trapped) dark soliton in the large density limit.
format Preprint
id arxiv_https___arxiv_org_abs_2401_00213
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle On the Ground State Quantum Droplet for Large Chemical Potentials
Holmer, J.
Zhang, K. Z.
Kevrekidis, P. G.
Quantum Gases
Pattern Formation and Solitons
In the present work we revisit the problem of the quantum droplet in atomic Bose-Einstein condensates with an eye towards describing its ground state in the large density, so-called Thomas-Fermi limit. We consider the problem as being separable into 3 distinct regions: an inner one, where the Thomas-Fermi approximation is valid, a sharp transition region where the density abruptly drops towards the (vanishing) background value and an outer region which asymptotes to the background value. We analyze the spatial extent of each of these regions, and develop a systematic effective description of the rapid intermediate transition region. Accordingly, we derive a uniformly valid description of the ground state that is found to very accurately match our numerical computations. As an additional application of our considerations, we show that this formulation allows for an analytical approximation of excited states such as the (trapped) dark soliton in the large density limit.
title On the Ground State Quantum Droplet for Large Chemical Potentials
topic Quantum Gases
Pattern Formation and Solitons
url https://arxiv.org/abs/2401.00213