Symmetry breaking and phase transitions in Bose-Einstein condensates with spin–orbital-angular-momentum coupling

Y. Duan, Yuriy Bidasyuk, A. Surzhykov
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引用次数: 4

Abstract

Theoretical study is presented for a spinor Bose-Einstein condensate, whose two components are coupled by copropagating Raman beams with different orbital angular momenta. The investigation is focused on the behavior of the ground state of this condensate, depending on the atom-light coupling strength. By analyzing the ground state, we have identified a number of quantum phases, which reflect the symmetries of the effective Hamiltonian and are characterized by the specific structure of the wave function. In addition to the well-known stripe, polarized and zero-momentum phases, our results show that the system can support phases, whose wave function contains a complex vortex molecule. Such molecule plays an important role in the continuous phase transitions of the system. The predicted behavior of vortex-molecule phases can be examined in cold-atom experiments using currently existing techniques.
具有自旋-轨道-角动量耦合的玻色-爱因斯坦凝聚体的对称性破缺和相变
本文对具有不同轨道角动量的共传播拉曼光束耦合的旋量玻色-爱因斯坦凝聚体进行了理论研究。研究的重点是这种凝聚态的基态的行为,取决于原子-光耦合强度。通过分析基态,我们确定了一些量子相,它们反映了有效哈密顿量的对称性,并以波函数的特定结构为特征。除了众所周知的条纹相、极化相和零动量相外,我们的研究结果表明,该系统还可以支持波函数包含复杂涡分子的相。这种分子在体系的连续相变中起着重要的作用。涡分子相的预测行为可以用现有的技术在冷原子实验中进行检验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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