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Validation of separated source frequency delivery for a fiber-coupled heterodyne displacement interferometer

机译:光纤耦合外差位移干涉仪分离源频率传输的验证

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摘要

The use of optical fibers presents several advantages with respect to free-space optical transport regarding source-frequency delivery to individual heterodyne interferometers. Unfortunately, fiber delivery to individual coaxial heterodyne interferometers leads to an increase of (periodic) nonlinearity in the measurement, because transporting coaxial frequencies through one optical fiber leads to frequency mixing. Coaxial beams thus require delivery via free-space transportation methods. In contrast, the heterodyne interferometer concept discussed in this Letter is based on separated source frequencies, which allow for fiber delivery without additional nonlinearity. This investigation analyzes the influence of external disturbances acting on the two fibers during delivery, causing asymmetry in phase between the two fibers (first-order effect), and irradiance fluctuations (second-order effect). Experiments using electro-optic phase modulation and acousto-optic irradiance modulation confirmed that the interferometer-concept can measure with sub-nanometer uncertainty using fiber delivered source frequencies, enabling fully fiber-coupled heterodyne displacement interferometers.
机译:关于自由空间光传输,就将源频率传递到各个外差干涉仪而言,光纤的使用表现出若干优点。不幸的是,将光纤传送到各个同轴外差干涉仪会导致测量中的(周期性)非线性增加,因为通过一根光纤传输同轴频率会导致频率混合。因此,同轴光束需要通过自由空间传输方法来传输。相比之下,这封信中讨论的外差干涉仪概念是基于分离的源频率,这允许光纤传输而没有其他非线性。这项研究分析了在传输过程中外部干扰对两根光纤的影响,导致两根光纤之间的相位不对称(一级效应)和辐照度波动(二级效应)。使用电光相位调制和声光辐照度调制的实验证实,干涉仪概念可以使用光纤传输的源频率以亚纳米级的不确定性进行测量,从而实现完全光纤耦合的外差位移干涉仪。

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