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用于射频到光信号转换的三共振耦合腔电光调制器。

Triply resonant coupled-cavity electro-optic modulators for RF to optical signal conversion.

作者信息

Gevorgyan Hayk, Khilo Anatol, Ehrlichman Yossef, Popović Miloš A

出版信息

Opt Express. 2020 Jan 6;28(1):788-815. doi: 10.1364/OE.385856.

DOI:10.1364/OE.385856
PMID:32119000
Abstract

We propose an on-chip triply resonant electro-optic modulator architecture for RF-to-optical signal conversion and provide a detailed theoretical analysis of the optimal "circuit-level" device geometries and their performance limits. The designs maximize the RF-optical conversion efficiency through simultaneous resonant enhancement of the RF drive signal, a continuous-wave (CW) optical pump, and the generated optical sideband. The optical pump and sideband are resonantly enhanced in respective supermodes of a two-coupled-cavity optical resonator system, while the RF signal can be enhanced in addition by an LC circuit formed by capacitances of the optical resonator active regions and (integrated) matching inductors. We show that such designs can offer 15-50 dB improvement in conversion efficiency over conventional microring modulators. In the proposed configurations, the photon lifetime (resonance linewidth) limits the instantaneous RF bandwidth of the electro-optic response but does not limit its central RF frequency. The latter is set by the coupling strength between the two coupled cavities and is not subject to the photon lifetime constraint inherent to conventional singly resonant microring modulators. This feature enables efficient operation at high RF carrier frequencies without a reduction in efficiency commonly associated with the photon lifetime limit and accounts for 10-30 dB of the total improvement. Two optical configurations of the modulator are proposed: a "basic" configuration with equal Q-factors in both supermodes, most suitable for narrowband RF signals, and a "generalized" configuration with independently tailored supermode Q-factors that supports a wider instantaneous bandwidth. A second significant 5-20 dB gain in modulation efficiency is expected from RF drive signal enhancement by integrated LC resonant matching, leading to the total expected improvement of 15-50 dB. Previously studied triply-resonant modulators, with coupled longitudinal [across the free spectral range (FSR)] modes, have large resonant mode volume for typical RF frequencies, which limits the interaction between the optical and RF fields. In contrast, the proposed modulators support maximally tightly confined resonant modes, with strong coupling between the mode fields, which increases and maintains high device efficiency across a range of RF frequencies. The proposed modulator architecture is compact, efficient, capable of modulation at high RF carrier frequencies and can be applied to any cavity design or modulation mechanism. It is also well suited to moderate Q, including silicon, implementations, and may be enabling for future CMOS RF-electronic-photonic systems on chip.

摘要

我们提出了一种用于射频到光信号转换的片上三重谐振电光调制器架构,并对最优的“电路级”器件几何结构及其性能极限进行了详细的理论分析。这些设计通过同时谐振增强射频驱动信号、连续波光泵浦以及产生的光边带来最大化射频-光转换效率。光泵浦和光边带在双耦合腔光谐振器系统的各自超模中被谐振增强,而射频信号还可以通过由光谐振器有源区的电容和(集成)匹配电感器形成的LC电路得到增强。我们表明,与传统微环调制器相比,此类设计可使转换效率提高15至50分贝。在所提出的配置中,光子寿命(谐振线宽)限制了电光响应的瞬时射频带宽,但不限制其中心射频频率。后者由两个耦合腔之间的耦合强度设定,不受传统单谐振微环调制器固有的光子寿命限制。这一特性使得在高射频载波频率下能够高效运行,而不会出现通常与光子寿命限制相关的效率降低情况,并且在总提升中占10至30分贝。提出了调制器的两种光学配置:一种是在两个超模中具有相等品质因数的“基本”配置,最适合窄带射频信号;另一种是具有独立定制超模品质因数的“通用”配置,支持更宽的瞬时带宽。预计通过集成LC谐振匹配增强射频驱动信号,调制效率还会有第二个显著的5至20分贝增益,从而使总预期提升达到15至50分贝。先前研究的具有耦合纵向[跨越自由光谱范围(FSR)]模式的三重谐振调制器,对于典型射频频率具有较大的谐振模体积,这限制了光场与射频场之间的相互作用。相比之下,所提出的调制器支持最大程度紧密限制的谐振模式,模式场之间具有强耦合,这在一系列射频频率上提高并保持了高器件效率。所提出的调制器架构紧凑、高效,能够在高射频载波频率下进行调制,并且可应用于任何腔设计或调制机制。它也非常适合中等品质因数,包括硅基的实现方式,并且可能为未来的片上CMOS射频-电子-光子系统提供支持。

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