Strategies for real-time position control of a single atom in cavity QED

T. Lynn, K. Birnbaum, H. Kimble
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引用次数: 10

Abstract

Recent realizations of single-atom trapping and tracking in cavity QED open the door for feedback schemes which actively stabilize the motion of a single atom in real time. We present feedback algorithms for cooling the radial component of motion for a single atom trapped by strong coupling to single-photon fields in an optical cavity. Performance of various algorithms is studied through simulations of single-atom trajectories, with full dynamical and measurement noise included. Closed loop feedback algorithms compare favourably to open loop 'switching' analogues, demonstrating the importance of applying actual position information in real time. The high optical information rate in current experiments enables real-time tracking that approaches the standard quantum limit for broadband position measurements, suggesting that realistic active feedback schemes may reach a regime where measurement backaction appreciably alters the motional dynamics.
腔QED中单原子实时位置控制策略
最近在腔QED中实现的单原子捕获和跟踪为实时主动稳定单原子运动的反馈方案打开了大门。我们提出了一种反馈算法,用于冷却光腔中被强耦合捕获到单光子场的单原子运动的径向分量。通过模拟单原子轨迹,研究了各种算法的性能,包括全动态噪声和测量噪声。闭环反馈算法比开环“切换”类似物更有利,证明了实时应用实际位置信息的重要性。当前实验中的高光信息率使实时跟踪接近宽带位置测量的标准量子极限,这表明现实的主动反馈方案可能达到测量反作用力明显改变运动动力学的状态。
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