论文标题
通过一维光学晶格脉冲序列校准被困的玻色子凝结物的动量宽度
Calibrating the momentum width of a trapped Bose-Einstein condensate by one-dimensional optical lattice pulse sequences
论文作者
论文摘要
我们通过基于物质波的干扰,实验测量了光学捕获的玻色子冷凝物(BEC)的超鼻中动量宽度,这验证了我们以前的理论工作[ARXIV:2205.02416]。通过扫描双式脉冲脉冲的间隔,将BEC波包拆分为不同的衍射顺序,然后我们计算了零momentum态群体的振荡曲线,以校准动量宽度。与我们简化的理论相比,我们观察到了时间域中干涉条纹的加速演变。我们通过数值计算毛pitaevskii方程并使用Wigner函数来详细评估了此干扰过程,以直观地证明外部电位和非线性项的影响。我们证实,减少干涉条纹演化期实际上源自BEC的平均场相互作用的协同合作和由不同动量状态之间的干扰引起的空间密度调节。我们的方法可以推广到具有不同动量分布的其他超冷原子气体,并且原则上可以获得结果。该量子温度法特别适合于实用深冷却实验中的动量宽度校准,而对于PK水平的原子样品,平均场相互作用可以安全地忽略。
We experimentally measured the ultra-narrow momentum width of an optical trapped Bose-Einstein condensate (BEC) in situ based on matter-wave interference, which validates our previous theoretical work [arXiv: 2205.02416]. By sweeping the interval of double stand-wave pulses, the BEC wave packet was splitted into different diffraction orders and then we counted the oscillation curve of the population of zero-momentum state to calibrate the momentum width. Compared with our simplified theory, we observed an accelerated evolution of interference fringes in time-domain. We evaluated this interference process minutely by numerically calculating the Gross-Pitaevskii equation and using Wigner function to intuitively demonstrate the influence of the external potential and nonlinear term. We confirmed that the reduction of interference fringe evolution period actually originates from the synergistic cooperation of the mean-field interaction of the BEC and spatial density modulation caused by the interference between different momentum states. Our approach could be generalized to other ultra-cold atomic gases with different momentum distributions, and in principle a single shot can obtain the result. This quantum thermometry is particularly suitable for momentum width calibration in practical deep cooling experiments, while for atomic samples at pK level the mean-field interaction can be safely ignored.