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Laser cooling and trapping of atoms in optical and micro-wave electro-magnetic trap

机译:激光冷却和捕获光学和微波电磁陷阱中的原子

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Presents work on the realization of Bose-Einstein condensates (BEC) in optical and electro-magnetic traps. We have done some theoretical and experimental work on the project. We have proposed an optical funnel or a hollow beam, which are produced from a short micron-sized hollow optical fiber or a set-up of lenses. The cold atoms extracted from an magneto-optical trap experience effective Sisyphus cooling in the dark hollow beam. We calculate the potential barriers for atomic guiding in the dark hollow beam, and analyze the atomic losses during the guiding process. Inside the hollow beam atoms experience an efficient Sisyphus cooling and repumping-beam induced geometric cooling. We have estimated the total loss rate of the cold atoms, and it shows that an ultracold and dense Rb atomic sample with a 3D temperature of /spl sim/1 K can be obtained and the appearance of an optically-trapped Bose-Einstein condensation may be possible in this optical trap. We have also made a proposal of a micro-wave electro-magnetic trap, which is working at the frequency which is very far from the optical transition of the cold atoms. The trapping force comes from the interaction between the electro-magnetic induced magnetic dipole moment with the electro-magnetic field. Theoretical calculation shows that the force can be used to trap the cold atoms in the trap.
机译:提出了在光阱和电磁阱中实现玻色-爱因斯坦冷凝物(BEC)的工作。我们已经对该项目进行了一些理论和实验工作。我们提出了一种光学漏斗或空心光束,它们是由短微米尺寸的空心光纤或一组透镜制成的。从磁光阱中提取的冷原子在黑暗的空心光束中经受有效的西西弗斯冷却。我们计算了在暗空心光束中进行原子导向的势垒,并分析了导向过程中的原子损失。在空心光束内部,原子经历了有效的西西弗斯冷却和抽油束诱导的几何冷却。我们估算了冷原子的总损失率,结果表明,可以获得3d温度为/ spl sim / 1 K的超冷致密Rb原子样品,并且可能出现光学俘获的玻色-爱因斯坦凝聚态在这个光阱中是可能的。我们还提出了微波电磁陷阱的建议,该微波陷阱的工作频率与冷原子的光学跃迁相距非常远。捕获力来自电磁感应的磁偶极矩与电磁场之间的相互作用。理论计算表明,该力可用于将冷原子捕获在阱中。

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