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Microwave Photonics Systems Based on Whispering-gallery-mode Resonators

机译:基于耳语画廊模式谐振器的微波光子学系统

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摘要

Microwave photonics systems rely fundamentally on the interaction between microwave and optical signals. These systems are extremely promising for various areas of technology and applied science, such as aerospace and communication engineering, sensing, metrology, nonlinear photonics, and quantum optics. In this article, we present the principal techniques used in our lab to build microwave photonics systems based on ultra-high Q whispering gallery mode resonators. First detailed in this article is the protocol for resonator polishing, which is based on a grind-and-polish technique close to the ones used to polish optical components such as lenses or telescope mirrors. Then, a white light interferometric profilometer measures surface roughness, which is a key parameter to characterize the quality of the polishing. In order to launch light in the resonator, a tapered silica fiber with diameter in the micrometer range is used. To reach such small diameters, we adopt the "flame-brushing" technique, using simultaneously computer-controlled motors to pull the fiber apart, and a blowtorch to heat the fiber area to be tapered. The resonator and the tapered fiber are later approached to one another to visualize the resonance signal of the whispering gallery modes using a wavelength-scanning laser. By increasing the optical power in the resonator, nonlinear phenomena are triggered until the formation of a Kerr optical frequency comb is observed with a spectrum made of equidistant spectral lines. These Kerr comb spectra have exceptional characteristics that are suitable for several applications in science and technology. We consider the application related to ultra-stable microwave frequency synthesis and demonstrate the generation of a Kerr comb with GHz intermodal frequency.
机译:微波光子学系统从根本上依赖于微波和光信号之间的相互作用。这些系统对于航空航天和通信工程,传感,计量学,非线性光子学和量子光学等技术和应用科学的各个领域都非常有前途。在本文中,我们介绍了在实验室中基于超高Q耳语画廊模式谐振器构建微波光子系统的主要技术。本文首先详细介绍了用于共振器抛光的协议,该协议基于一种研磨抛光技术,该技术与用于抛光光学组件(如透镜或望远镜镜)的抛光和抛光技术相近。然后,白光干涉轮廓仪测量表面粗糙度,这是表征抛光质量的关键参数。为了在谐振器中发射光,使用了直径在微米范围内的锥形石英纤维。为了达到如此小的直径,我们采用“火焰刷”技术,同时使用计算机控制的电动机将纤维拉开,并使用喷灯加热纤维区域以使其逐渐变细。随后,使用波长扫描激光器使谐振器和锥形光纤相互靠近,以显示回音壁模式的谐振信号。通过增加谐振器中的光功率,将触发非线性现象,直到观察到由等距光谱线组成的光谱形成的Kerr光学频率梳为止。这些Kerr梳状光谱具有出色的特性,适用于科学和技术中的多种应用。我们考虑了与超稳定微波频率合成相关的应用,并演示了具有GHz模态频率的Kerr梳的产生。

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