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Optical heterodyne measurement of pulsed lasers: Toward high-precision pulsed spectroscopy

机译:脉冲激光的光外差测量:朝向高精度脉冲光谱

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摘要

In this paper we explore theoretically and experimentally the effect of fluctuations in the instantaneous frequency of a pulsed laser on the shape and position of two-photon transition spectra. The usual procedure of characterizing a pulsed laser by its frequency energy spectrum is insufficient for precision measurements. The nonlinear nature of the two-photon transition produces a systematic shift of the atomic spectrum with respect to the laser frequency spectrum that is dependent on the phase evolution of the laser pulse. In fact, any nonlinear process (e.g., second-harmonic generation) may result in displaced or distorted spectra. We also find that Fabry-Pérot filtering a laser pulse can result in large frequency chirps. We use an optical heterodyne technique to measure the instantaneous frequency of our excimer-pumped dye-laser system to an uncertainty of 1.3 MHz and determine the effect of the inherent frequency chirps of this system on a two-photon transition. We conclude that with this technique, precision nonlinear spectroscopy to the level of 1 MHz may be achieved with pulsed lasers.
机译:在本文中,我们在理论和实验上探索脉冲激光的瞬时频率波动对双光子跃迁谱的形状和位置的影响。通过其频率能谱表征脉冲激光器的常规程序不足以进行精确测量。双光子跃迁的非线性特性使原子光谱相对于激光光谱发生系统性偏移,这取决于激光脉冲的相位演化。实际上,任何非线性过程(例如,二次谐波产生)都可能导致频谱位移或失真。我们还发现,法布里-珀罗(Fabry-Pérot)滤波激光脉冲会导致大频率的rp声。我们使用光学外差技术将准分子泵浦的染料激光系统的瞬时频率测量到1.3 MHz的不确定度,并确定该系统固有频率on对双光子跃迁的影响。我们得出的结论是,使用这种技术,可以使用脉冲激光器实现1 MHz的精确非线性光谱。

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