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Ground states of a Bose-Einstein Condensate in a one-dimensional laser-assisted optical lattice

机译:在一维激光辅助光学晶格玻色 - 爱因斯坦凝聚的基态

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We study the ground-state behavior of a Bose-Einstein Condensate (BEC) in a Raman-laser-assisted one-dimensional (1D) optical lattice potential forming a multilayer system. We find that, such system can be described by an effective model with spin-orbit coupling (SOC) of pseudospin (N-1)/2, where N is the number of layers. Due to the intricate interplay between atomic interactions, SOC and laser-assisted tunnelings, the ground-state phase diagrams generally consist of three phases-a stripe, a plane wave and a normal phase with zero-momentum, touching at a quantum tricritical point. More important, even though the single-particle states only minimize at zero-momentum for odd N, the many-body ground states may still develop finite momenta. The underlying mechanisms are elucidated. Our results provide an alternative way to realize an effective spin-orbit coupling of Bose gas with the Raman-laser-assisted optical lattice, and would also be beneficial to the studies on SOC effects in spinor Bose systems with large spin.
机译:我们研究了Bose-Einstein冷凝物(BEC)在拉曼激光辅助的一维(1D)光学晶格电位中的地位行为,形成多层系统。我们发现,这种系统可以通过具有假旋转型(N-1)/ 2的旋转轨道耦合(SoC)的有效模型来描述,其中N是层数。由于原子相互作用,SOC和激光辅助隧道之间的复杂相互作用,地态相图通常由三个相 - 一个条纹,平面波和正常相块组成,具有零动量,触摸量子三分基点。更重要的是,即使单粒子状态仅最小化零点N的零动量,也可以仍然可以发展有限的动量。潜在的机制被阐明。我们的结果提供了一种替代方法,实现了与拉曼激光辅助光学晶格的有效的旋转轨道耦合,也可以有利于旋转旋转系统中的SOC效应的研究。

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