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Design and Implementation of an Optical Cavity Locking Controller Test Bed System

机译:光腔锁定控制器测试台系统的设计与实现

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This paper describes a new optical cavity controller test bed system for implementing modern quantum control techniques, with an emphasis on the control of optical cavities. One such quantum control task is the frequency locking of an optical cavity. Locking an optical cavity refers to the process of matching the input laser frequency to the cavity's resonant frequency. Any deviation in the two frequencies, characterized in terms of the detuning, is undesirable. The test bed comprises an input laser, a three-mirror ring cavity, the associated optics, and a dSPACE digital signal processing system. The detuning in the system is measured in the form of an error signal, which is fed to a controller. The controller provides a suitable control input to a piezoelectric actuator mounted on one of the mirrors, altering the resonant frequency of the cavity to achieve zero detuning. The dynamics of the cavity and the piezoelectric actuator are modeled using system identification methods, an integral linear quadratic Gaussian controller is designed and implemented in dSPACE, and experimental results are presented.
机译:本文介绍了一种用于实现现代量子控制技术的新型光腔控制器测试台系统,重点是光腔的控制。一种这样的量子控制任务是光学腔的频率锁定。锁定光学腔是指使输入激光频率与腔的共振频率匹配的过程。以失谐为特征的两个频率的任何偏差都是不希望的。测试台包括一个输入激光器,一个三镜环形腔,相关的光学器件和一个dSPACE数字信号处理系统。系统中的失谐是以误差信号的形式测量的,该误差信号被馈送到控制器。控制器向安装在反射镜之一上的压电致动器提供合适的控制输入,从而改变腔体的谐振频率以实现零失谐。利用系统辨识方法对腔体和压电致动器的动力学进行建模,在dSPACE中设计并实现了积分线性二次高斯控制器,并给出了实验结果。

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