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Differential interferometer for measurement of displacement of laser resonator mirrors

机译:用于测量激光谐振器镜子位移的差动干涉仪

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This paper covers a description and a technique of a possible optical method of mode locking within a laser resonator. The measurement system is a part of instrumentation of laser-based experiment OSQAR at CERN. The OSQAR experiment aims at search of axions, axion-like particles and measuring of ultra-fine vacuum magnetic birefringence. It uses a laser resonator to enhance the coupling constant of hypothetical photon-to-axion conversion. The developed locking-in technique is based on differential interferometry. Signal obtained from the measurement provide crucial information for adaptive control of the locking-in of the resonator in real time. In this paper we propose several optical setups used for measurement and analysis of mutual position of the resonator mirrors. We have set up a differential interferometer under our laboratory conditions. We have done measurements with hemi-spherical cavity resonator detuned with piezo crystals. The measurement was set up in a single plane. Laser light was directed through half-wave retarder to a polarizing beam splitter and then converted to circular polarization by lambda/4 plates. After reflection at the mirrors, the beam is recombined in a beam splitter, sent to analyser and non-polarizing beam splitter and then inspected by two detectors with mutually perpendicular polarizers. The 90 degrees phase shift between the two arms allows precise analysis of a mutual distance change of the mirrors. Because our setup was sufficiently stable, we were able to measure the piezo constant and piezo hysteresis. The final goal is to adapt the first prototype to 23 m resonator and measure the displacement in two planes.
机译:本文涵盖了在激光谐振器内锁定的可能的光学模式的描述和技术。测量系统是CERN的激光基实验OSQAR仪器的一部分。 OSQAR实验旨在搜索轴,轴轴状颗粒和超细真空磁性双折射的测量。它使用激光谐振器来增强假设的光子 - 轴转换的耦合常数。开发的锁定技术基于差动干涉测量。从测量获得的信号提供了用于实时控制谐振器的锁定控制的重要信息。在本文中,我们提出了用于测量和分析谐振器镜的相互位置的几种光学设置。我们在实验室条件下建立了差动干涉仪。我们已经使用了用压电晶体旋转的半球形腔谐振器进行了测量。测量在一个平面中设置。激光通过半波延迟器指向偏振分束器,然后通过λ/ 4板转换为圆极化。在反射镜子之后,将光束在分束器中重新组合,发送到分析仪和非偏振分束器,然后由两个探测器检查,具有相互垂直的偏振器。两个臂之间的90度相移允许精确地分析镜子的相互距离变化。因为我们的设置足够稳定,所以我们能够测量压电常数和压电滞后。最终目标是将第一个原型调整为23米谐振器,并测量两个平面中的位移。

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