Institute of Scientific Instruments of the Academy of Sciences of the Czech Republic, Brno, Czech Republic.
IEEE Trans Ultrason Ferroelectr Freq Control. 2010 Mar;57(3):636-40. doi: 10.1109/TUFFC.2010.1459.
In this contribution we propose a scheme for a generation of precise displacements through conversion of relative stability of components of a femtosecond laser into the length of a Fabry-Perot cavity. The spacing of mirrors of a Fabry-Perot interferometer represents a mechanical length standard referenced to stable optical frequency of a femtosecond mode-locked laser. With the help of a highly selective optical filter, it is possible to get only a few discrete spectral components. By tuning and locking the Fabry-Perot cavity to a selected single component it is possible to get a mechanical length standard with the uncertainty of the repetition frequency of the femtosecond laser. To verify the method, an auxiliary single-frequency laser is locked to the resonance mode of the cavity and simultaneously it is optically mixed with an independent optical frequency standard He-Ne-I2. The stability of the beat-frequency between these 2 lasers represents the stability of the Fabry-Perot cavity length. The stability recording evaluated through Allan variances for one hour of operation is presented. The pilot experimental setup is able to generate the length standard in the order of 0.01 nm for 20 min of integration time.
在本贡献中,我们提出了一种通过将飞秒激光组件的相对稳定性转换为法布里-珀罗(Fabry-Perot)腔长度来产生精确位移的方案。法布里-珀罗干涉仪的镜子间距代表了机械长度标准,其参考了稳定的飞秒锁模激光的光学频率。借助高选择性光学滤波器,仅获得少数离散光谱分量成为可能。通过调谐和锁定 Fabry-Perot 腔到所选的单个分量,可以获得具有飞秒激光重复频率不确定性的机械长度标准。为了验证该方法,辅助单频激光器被锁定到腔的共振模式,并且与独立的光学频率标准 He-Ne-I2 同时进行光混合。这两个激光器之间的拍频的稳定性代表了 Fabry-Perot 腔长度的稳定性。展示了经过一小时运行的 Allan 方差评估的稳定性记录。初步实验设置能够在 20 分钟的积分时间内生成 0.01nm 量级的长度标准。