论文标题

在光学微波器中对反向散射的一致抑制

Coherent suppression of backscattering in optical microresonators

论文作者

Svela, Andreas Ø., Silver, Jonathan M., Del Bino, Leonardo, Zhang, Shuangyou, Woodley, Michael T. M., Vanner, Michael R., Del'Haye, Pascal

论文摘要

当光线沿波导传播时,瑞利散射器可以反映一小部分场。在高质量的因子窃窃私语模式微孔子中,这种内在的反向散射主要是由表面或散装物质瑕疵引起的。对于几种基于微孔子的实验和应用,腔体中的反向散射最少至关重要,因此,抑制反向散射的能力至关重要。我们证明,将附加散射器引入高质量的小因子微孔子的近场可以一致抑制微孔子中的反向散射量,超过30 dB。该方法依赖于控制散射器位置,以使固有和散射器诱导的反向传播场破坏性干扰。该技术在微弹器应用程序中很有用,后散射目前正在限制设备的性能,例如环激光陀螺仪和双频率梳子,这些频率梳子都遭受了注射锁定的影响。此外,这些发现对于综合光子电路引起了人们的关注,在这些电路中,背反射可能会对激光源或其他组件的稳定性产生负面影响。

As light propagates along a waveguide, a fraction of the field can be reflected by Rayleigh scatterers. In high-quality-factor whispering-gallery-mode microresonators, this intrinsic backscattering is primarily caused by either surface or bulk material imperfections. For several types of microresonator-based experiments and applications, minimal backscattering in the cavity is of critical importance, and thus, the ability to suppress backscattering is essential. We demonstrate that the introduction of an additional scatterer into the near field of a high-quality-factor microresonator can coherently suppress the amount of backscattering in the microresonator by more than 30 dB. The method relies on controlling the scatterer position such that the intrinsic and scatterer-induced backpropagating fields destructively interfere. This technique is useful in microresonator applications where backscattering is currently limiting the performance of devices, such as ring-laser gyroscopes and dual frequency combs, which both suffer from injection locking. Moreover, these findings are of interest for integrated photonic circuits in which back reflections could negatively impact the stability of laser sources or other components.

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