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Microwave oscillator and frequency comb in a silicon optomechanical cavity with a full phononic bandgap

机译:微波振荡器和频率梳在硅机械腔内,具有全张音隙

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摘要

Cavity optomechanics has recently emerged as a new paradigm enabling the manipulation of mechanical motion via optical fields tightly confined in deformable cavities. When driving an optomechanical (OM) crystal cavity with a laser blue-detuned with respect to the optical resonance, the mechanical motion is amplified, ultimately resulting in phonon lasing at MHz and even GHz frequencies. In this work, we show that a silicon OM crystal cavity performs as an OM microwave oscillator when pumped above the threshold for self-sustained OM oscillations. To this end, we use an OM cavity designed to have a breathing-like mechanical mode at 3.897 GHz in a full phononic bandgap. Our measurements show that the first harmonic of the detected signal displays a phase noise of ≈−100 dBc/Hz at 100 kHz. Stronger blue-detuned driving leads eventually to the formation of an OM frequency comb, whose lines are spaced by the mechanical frequency. We also measure the phase noise for higher-order harmonics and show that, unlike in Brillouin oscillators, the noise is increased as corresponding to classical harmonic mixing. Finally, we present real-time measurements of the comb waveform and show that it can be fitted to a theoretical model recently presented. Our results suggest that silicon OM cavities could be relevant processing elements in microwave photonics and optical RF processing, in particular in disciplines requiring low weight, compactness and fiber interconnection.
机译:腔光机最近被出现为一种新的范例,可通过在可变形空腔中紧密地限制在​​光学领域来操纵机械运动。当通过相对于光学谐振驱动激光蓝色旋转的光机械(OM)晶体腔时,机械运动被放大,最终导致在MHz和甚至GHz频率下激起声子。在这项工作中,我们表明硅胚晶腔作为OM微波振荡器,当泵送以上的自持续om振荡时。为此,我们使用OM腔设计,旨在在完整的声隙带隙的3.897 GHz处具有呼吸状机械模式。我们的测量结果表明,检测信号的第一个谐波在100kHz时显示≈静脉内的≈〜100dBc / Hz的相位噪声。最终强烈的蓝色旋转驱动引线最终形成OM频率梳,其线间隔由机械频率间隔开。我们还测量高阶谐波的相位噪声,并表明与布里渊振荡器不同,与经典谐波混合相对应的噪声增加。最后,我们呈现梳波的实时测量,并表明它可以安装在最近呈现的理论模型。我们的结果表明,硅常温可以是微波光子和光学RF处理中的相关处理元件,特别是在需要低重量,紧凑性和光纤互连的学科中。

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