TY - JOUR
T1 - Bose-Einstein condensates in a synthetic magnetic field with tunable orientation
AU - Pang, Fengtao
AU - He, Huaxin
AU - Zhang, Yongping
AU - Qu, Chunlei
N1 - Publisher Copyright:
© 2025 American Physical Society
PY - 2025/9/9
Y1 - 2025/9/9
N2 - We systematically investigate the ground state and dynamics of spinor Bose-Einstein condensates subject to a position-dependent detuning. This detuning induces three related quantities (a synthetic magnetic field, an angular velocity, and an angular momentum), which, due to trap anisotropy, may point in different directions. When the dipole frequencies along the three symmetric axes of the harmonic trap are degenerate, the dipole motion can decompose into two coupled transverse modes in the plane perpendicular to the synthetic magnetic f ield, and another decoupled longitudinal mode, enabling controllable Foucault-like precession or biconical tra jectories depending on the excitation protocol. Furthermore, quenching the orientation of the synthetic magnetic f ield excites multiple coupled quadrupole modes. We develop a hydrodynamic theory whose predictions match well with Gross-Pitaevskii simulations. This study contributes to a deeper understanding of the effects of the synthetic magnetic field and the excitations of the collective mode in quantum fluids, providing a foundation for future developments in quantum simulation and high-precision sensing technologies.
AB - We systematically investigate the ground state and dynamics of spinor Bose-Einstein condensates subject to a position-dependent detuning. This detuning induces three related quantities (a synthetic magnetic field, an angular velocity, and an angular momentum), which, due to trap anisotropy, may point in different directions. When the dipole frequencies along the three symmetric axes of the harmonic trap are degenerate, the dipole motion can decompose into two coupled transverse modes in the plane perpendicular to the synthetic magnetic f ield, and another decoupled longitudinal mode, enabling controllable Foucault-like precession or biconical tra jectories depending on the excitation protocol. Furthermore, quenching the orientation of the synthetic magnetic f ield excites multiple coupled quadrupole modes. We develop a hydrodynamic theory whose predictions match well with Gross-Pitaevskii simulations. This study contributes to a deeper understanding of the effects of the synthetic magnetic field and the excitations of the collective mode in quantum fluids, providing a foundation for future developments in quantum simulation and high-precision sensing technologies.
UR - https://www.scopus.com/pages/publications/105023443547
UR - https://www.scopus.com/pages/publications/105023443547#tab=citedBy
U2 - 10.1103/1pmq-3sxg
DO - 10.1103/1pmq-3sxg
M3 - Article
AN - SCOPUS:105023443547
SN - 2469-9926
VL - 112
JO - Physical Review A
JF - Physical Review A
IS - 3
M1 - 033309
ER -