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Controling the coupling properties of active ultrahigh-Q WGM microcavities from undercoupling to selective amplification

机译:从欠耦合到选择性扩增控制有源超高Q WGM微腔的耦合特性

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Ultrahigh-quality (Q) factor microresonators have a lot of applications in the photonics domain ranging from low-threshold nonlinear optics to integrated optical sensors. Glass-based whispering gallery mode (WGM) microresonators are easy to produce by melting techniques, however they suffer from surface contamination which limits their long-term quality factor to a few 108. Here we show that an optical gain provided by erbium ions can compensate for residual losses. Moreover it is possible to control the coupling regime of an ultrahigh Q-factor three port microresonator from undercoupling to spectral selective amplification by changing the pumping rate. The optical characterization method is based on frequency-swept cavity-ring-down-spectroscopy. This method allows the transmission and dispersive properties of perfectly transparent microresonators and intrinsic finesses up to 4.0 × 107 to be measured. Finally we characterize a critically coupled fluoride glass WGM microresonator with a diameter of 220 μ m and a loaded Q-factor of 5.3 × 109 is demonstrated.
机译:超高质量(Q)因子微谐振器在光子学领域有许多应用,范围从低阈值非线性光学到集成光学传感器。玻璃基的回音壁模式(WGM)微谐振器易于通过熔融技术生产,但是它们受到表面污染的困扰,这将其长期品质因数限制在10 8 左右。在这里,我们表明离子提供的光学增益可以补偿残留损耗。此外,可以通过改变泵浦速率来控制超高Q因子三端口微谐振器的耦合方式,从欠耦合到频谱选择性放大。光学表征方法基于扫频腔振铃下降光谱学。这种方法可以测量完全透明的微谐振器的透射和色散特性,并且可以测量高达4.0×10 7 的固有细度。最后,我们对直径为220μm的临界耦合氟化物玻璃WGM微谐振器进行了表征,并证明了其负载Q值为5.3×10 9

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