概括
我们使用一种新的补偿技术抑制了冷的鲁比-87原子中的不需要的脱相. 这一突破提高了开发紧,纤维导向原子干扰仪的连贯时间.
科学领域:
- 原子物理 原子物理
- 量子光学就是一个量子光学.
- 激光物理学的激光物理学
背景情况:
- 冷原子操纵对于精确测量至关重要.
- 在空心纤维中的光学捕获提供了小型化潜力.
- 不均的脱相限制了被困原子系统中的连贯性.
研究的目的:
- 为了抑制冷冷的不均质脱相,87Rb原子被困在一个空心纤维中.
- 为了提高原子干扰度应用的连贯时间.
- 展示一种方法来减少光学陷中的差异光转移 (DLS).
主要方法:
- 在空心纤维中捕获冷87Rb原子的光学捕获.
- 实施一个弱,模式匹配的补偿激光束来抵消陷束DLS.
- 使用微波拉姆赛干涉测量和光谱学对原子连贯性的表征.
主要成果:
- 差光转移 (DLS) 减少了一个数量级.
- 微波Ramsey边缘观察到>0.6对比度在10毫秒的分离时间.
- 在DLS取消后,脱相时间延长到几十毫秒.
结论:
- DLS的补偿显著抑制了纤维导向冷原子中不均的脱相.
- 实现的连贯时间对于紧的,便携式原子干扰仪来说是有希望的.
- 由于模式不匹配而导致的剩余 DLS 仍然是进一步改进的限制因素.
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