Time-domain observation of strong coupling between counter-propagating ultra-high Q whispering gallery modes

SPIE LASE Pub Date : 2016-04-22 DOI:10.1117/12.2208873
W. Yoshiki, Akitoshi Chen-Jinnai, T. Tetsumoto, S. Fujii, T. Tanabe
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引用次数: 1

Abstract

An ultra-high Q whispering gallery mode (WGM) cavity is attractive because the light-matter interaction is enhanced inside it. In terms of science and engineering, an interesting use of a WGM cavity is as a coupled system. When two cavity modes are strongly coupled, they are split in the frequency domain and photons are transferred cyclically between the two modes in the time domain. Recently, the time-domain observation and control of the coupling states were reported with photonic crystal nanocavities, and this technology is essential for developing a quantum node and a quantum network. However, such experiments have not yet been achieved with ultra-high Q modes despite the potential benefit to be gained from the use of ultra-high Q cavities. In this study, we observed strong coupling between ultra-high Q modes in the time domain for the first time. We employed two counter-propagating modes that coupled with each other via surface scattering in a silica toroid microcavity. We employed two tapered fibers (add-drop configuration), one for excitation and the other for observing the energy oscillation between two cavities, which is a necessary technique for directly observing energy in a cavity. The results revealed clear oscillatory behavior, which was induced by the strong coupling. In addition, the oscillation period in the time domain precisely matched that inferred from the mode splitting in the frequency domain, and the measured results showed excellent agreement with those calculated with the developed numerical model.
反传播超高Q窃窃廊模式强耦合的时域观测
超高Q窃窃廊模式(WGM)腔是一种具有吸引力的腔体,其内部的光-物质相互作用得到了增强。在科学和工程方面,WGM腔的一个有趣的用途是作为一个耦合系统。当两个腔模式强耦合时,它们在频域分裂,光子在时域在两个模式之间循环传递。近年来,利用光子晶体纳米空腔对耦合态进行时域观测和控制的研究已被广泛报道,这一技术对于量子节点和量子网络的发展至关重要。然而,尽管使用超高Q腔可以获得潜在的好处,但这种实验还没有在超高Q模式下实现。在本研究中,我们首次在时域中观察到超高Q模之间的强耦合。我们在硅环形微腔中采用了两种反向传播模式,它们通过表面散射相互耦合。我们采用了两根锥形光纤(加-降结构),一根用于激发,另一根用于观测两个腔间的能量振荡,这是直接观测腔内能量的必要技术。结果显示出明显的振荡行为,这是由强耦合引起的。此外,时域振荡周期与频域模分裂周期吻合较好,实测结果与数值模型计算结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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