Probing $p$-wave effects in spin-density separation of Bose mixtures with the dynamic structure factor

Fuente: arXiv
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Main Authors: Ye, Xiaoran, Liang, Zhaoxin
Format: Preprint
Published: 2025
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author Ye, Xiaoran
Liang, Zhaoxin
author_facet Ye, Xiaoran
Liang, Zhaoxin
contents Quantum mixtures of Bose gases with tunable $s$- and $p$-wave interactions offer a versatile platform to explore strongly correlated phases and exotic phenomena. While repulsive interactions often drive phase separation, the interplay of $p$-wave interactions with spin-density decoupling remains underexplored. In this work, we employ the path integal field theory to investigate the role of $p$-wave interactions in three-dimensional two-component Bose gas. We derive the Lee-Huang-Yang corrections to the ground-state energy and quantum depletion, revealing how $p$-wave interactions modify equations of state of the model system. Furthermore, we demonstrate that $p$-wave interactions predominantly renormalize the spin-sector effective mass in the language of decoupling the density and spin-density degrees of freedom. This effect manifests in the dynamic structure factor, computed via hydrodynamic theory, where Bragg spectroscopy can detect a tunable splitting between spin and density modes. Our results bridge theoretical predictions with experimental observables, offering insights into anisotropic interaction effects in quantum gases and their implications for probing emergent phases.
format Preprint
id arxiv_https___arxiv_org_abs_2503_01135
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probing $p$-wave effects in spin-density separation of Bose mixtures with the dynamic structure factor
Ye, Xiaoran
Liang, Zhaoxin
Quantum Gases
Quantum mixtures of Bose gases with tunable $s$- and $p$-wave interactions offer a versatile platform to explore strongly correlated phases and exotic phenomena. While repulsive interactions often drive phase separation, the interplay of $p$-wave interactions with spin-density decoupling remains underexplored. In this work, we employ the path integal field theory to investigate the role of $p$-wave interactions in three-dimensional two-component Bose gas. We derive the Lee-Huang-Yang corrections to the ground-state energy and quantum depletion, revealing how $p$-wave interactions modify equations of state of the model system. Furthermore, we demonstrate that $p$-wave interactions predominantly renormalize the spin-sector effective mass in the language of decoupling the density and spin-density degrees of freedom. This effect manifests in the dynamic structure factor, computed via hydrodynamic theory, where Bragg spectroscopy can detect a tunable splitting between spin and density modes. Our results bridge theoretical predictions with experimental observables, offering insights into anisotropic interaction effects in quantum gases and their implications for probing emergent phases.
title Probing $p$-wave effects in spin-density separation of Bose mixtures with the dynamic structure factor
topic Quantum Gases
url https://arxiv.org/abs/2503.01135