The synthetic gauge field and exotic vortex phase with spin-orbital-angular-momentum coupling

Yingqi Liu, Yun Chen, Yuangang Deng
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Abstract

Ultracold atoms endowed with tunable spin-orbital-angular-momentum coupling (SOAMC) represent a promising avenue for delving into exotic quantum phenomena. Building on recent experimental advancements, we propose the generation of synthetic gauge fields ,and by including exotic vortex phases within spinor Bose-Einstein condensates, employing a combination of a running wave and Laguerre-Gaussian laser fields. We investigate the ground-state characteristics of the SOAMC condensate, revealing the emergence of exotic vortex states with controllable orbital angular momenta. It is shown that the interplay of the SOAMC and conventional spin-linear-momentum coupling induced by the running wave beam leads to the formation of a vortex state exhibiting a phase stripe hosting single multiply quantized singularity. The phase of the ground state will undergo the phase transition corresponding to the breaking of rotational symmetry while preserving the mirror symmetry. Importantly, the observed density distribution of the ground-state wavefunction, exhibiting broken rotational symmetry, can be well characterized by the synthetic magnetic field generated through light interaction with the dressed spin state. Our findings pave the way for further exploration into the rotational properties of stable exotic vortices with higher orbital angular momenta against splitting in the presence of synthetic gauge fields in ultracold quantum gases.
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具有自旋轨道角动量耦合的合成规规场和奇异涡旋相
在最近的实验进展基础上,我们提出利用运行波和拉盖尔-高斯激光场的组合,在自旋玻色-爱因斯坦凝聚态中产生合成量规场,并包含奇异的涡旋相。我们研究了 SOAMC 凝聚态的基态特征,揭示了具有可控轨道角矩的奇异涡旋态的出现。研究表明,SOAMC 与运行波束诱导的传统自旋线性动量耦合的相互作用导致形成了一种涡旋态,这种涡旋态表现出一种带有单倍量子化奇点的相位条纹。在保持镜像对称性的同时,基态的相位将发生相变,这与旋转对称性的破坏相对应。重要的是,观察到的基态波函数的密度分布表现出了旋转对称性的破缺,它可以很好地描述通过光与着色自旋态的相互作用而产生的合成磁场。我们的发现为进一步探索超冷量子气体中具有较高轨道角矩的稳定外旋的旋转特性铺平了道路。
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