Key Laboratory of Optoelectronic Technology &Systems (Ministry of Education), Chongqing University, Chongqing 400044, China.
Sci Rep. 2017 Feb 9;7:41988. doi: 10.1038/srep41988.
Laser linewidth narrowing down to kHz or even Hz is an important topic in areas like clock synchronization technology, laser radars, quantum optics, and high-precision detection. Conventional decoherence measurement methods like delayed self-heterodyne/homodyne interferometry cannot measure such narrow linewidths accurately. This is because a broadening of the Gaussian spectrum, which hides the laser's intrinsic Lorentzian linewidth, cannot be avoided. Here, we introduce a new method using the strong coherent envelope to characterize the laser's intrinsic linewidth through self-coherent detection. This method can eliminate the effect of the broadened Gaussian spectrum induced by the 1/f frequency noise. We analyze, in detail, the relationship between intrinsic laser linewidth, contrast difference with the second peak and the second trough (CDSPST) of the strong coherent envelope, and the length of the delaying fiber. The correct length for the delaying fiber can be chosen by combining the estimated laser linewidth (Δf) with a specific CDSPST (ΔS) to obtain the accurate laser linewidth (Δf). Our results indicate that this method can be used as an accurate detection tool for measurements of narrow or super-narrow linewidths.
激光线宽缩小到千赫兹甚至赫兹是时钟同步技术、激光雷达、量子光学和高精度检测等领域的重要课题。传统的退相干测量方法,如延迟自外差/同差干涉测量,无法准确测量如此窄的线宽。这是因为不可避免地会出现高斯谱的展宽,从而掩盖了激光的固有洛伦兹线宽。在这里,我们介绍了一种新的方法,通过自相干检测利用强相干包络来表征激光的固有线宽。这种方法可以消除由 1/f 频率噪声引起的展宽高斯谱的影响。我们详细分析了固有激光线宽、强相干包络的第二峰和第二谷(CDSPST)对比度差与延迟光纤长度之间的关系。通过将估计的激光线宽(Δf)与特定的 CDSPST(ΔS)相结合来选择延迟光纤的正确长度,可以获得准确的激光线宽(Δf)。我们的结果表明,该方法可作为测量窄线宽或超窄线宽的精确检测工具。