Confinement-controlled pattern selection in a finite population-imbalanced dipolar Bose-Einstein condensate

Fuente: arXiv
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Autori principali: Wang, Zhenhao, Bao, Weijing, Luo, Jia-Rui, Watanabe, Gentaro, Xi, Kui-Tian
Natura: Preprint
Pubblicazione: 2026
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author Wang, Zhenhao
Bao, Weijing
Luo, Jia-Rui
Watanabe, Gentaro
Xi, Kui-Tian
author_facet Wang, Zhenhao
Bao, Weijing
Luo, Jia-Rui
Watanabe, Gentaro
Xi, Kui-Tian
contents We study the ground-state density patterns of a population-imbalanced two-component dipolar Bose-Einstein condensate confined in a circular quasi-two-dimensional box. Using a mean-field model, we map out phase diagrams as functions of the axial confinement, interaction imbalance, and population ratio. The system supports a rich sequence of stationary morphologies, including a nearly uniform pancake state, pancake-droplet and ring-droplet coexistence states, droplet arrays, and concentric rings. These patterns show a close structural correspondence to microphase-separated morphologies in diblock-copolymer systems, with the population imbalance acting as an effective volume fraction that selects the pattern topology. Analysis of the density profiles and structure factors reveals that the modulated states possess an intrinsic nonzero characteristic wave vector, which remains essentially unchanged when the box size is varied. We also find that the characteristic pattern spacing scales linearly with the axial confinement length, indicating that the transverse thickness of the condensate controls the effective in-plane length scale. In a finite circular box, this smooth scaling is interrupted by discrete steps, reflecting geometric frustration and the integer locking of the number of rings or droplets. Our results show that box-trapped dipolar mixtures provide a controllable platform for studying finite-size pattern selection and nonlocal microphase formation in quantum fluids.
format Preprint
id arxiv_https___arxiv_org_abs_2605_18139
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Confinement-controlled pattern selection in a finite population-imbalanced dipolar Bose-Einstein condensate
Wang, Zhenhao
Bao, Weijing
Luo, Jia-Rui
Watanabe, Gentaro
Xi, Kui-Tian
Quantum Gases
Pattern Formation and Solitons
Quantum Physics
We study the ground-state density patterns of a population-imbalanced two-component dipolar Bose-Einstein condensate confined in a circular quasi-two-dimensional box. Using a mean-field model, we map out phase diagrams as functions of the axial confinement, interaction imbalance, and population ratio. The system supports a rich sequence of stationary morphologies, including a nearly uniform pancake state, pancake-droplet and ring-droplet coexistence states, droplet arrays, and concentric rings. These patterns show a close structural correspondence to microphase-separated morphologies in diblock-copolymer systems, with the population imbalance acting as an effective volume fraction that selects the pattern topology. Analysis of the density profiles and structure factors reveals that the modulated states possess an intrinsic nonzero characteristic wave vector, which remains essentially unchanged when the box size is varied. We also find that the characteristic pattern spacing scales linearly with the axial confinement length, indicating that the transverse thickness of the condensate controls the effective in-plane length scale. In a finite circular box, this smooth scaling is interrupted by discrete steps, reflecting geometric frustration and the integer locking of the number of rings or droplets. Our results show that box-trapped dipolar mixtures provide a controllable platform for studying finite-size pattern selection and nonlocal microphase formation in quantum fluids.
title Confinement-controlled pattern selection in a finite population-imbalanced dipolar Bose-Einstein condensate
topic Quantum Gases
Pattern Formation and Solitons
Quantum Physics
url https://arxiv.org/abs/2605.18139