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首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Graphene-supported high-efficient modulation based on electromagnetically induced transparency in silica microcavity
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Graphene-supported high-efficient modulation based on electromagnetically induced transparency in silica microcavity

机译:基于电磁诱导的二氧化硅微腔透明度的石墨烯 - 支持的高效调制

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摘要

The combination of graphene and high quality (Q) factor microcavity provides a promising way for realizing highefficient modulation. In this paper, an electro-optic tuning of a graphene-silica microdisk is investigated. Two graphene flakes, separated by Al2O3 isolation layer, are embedded in the silica microdisk to significantly enhance the light-matter interaction for the achievement of high-efficient modulation. Maximal resonant wavelength shift of 9.5 nm is presented as the bias voltage of about 189.5 V is applied on the graphene flakes, which is beneficial for realizing the optical modulation with the extinction ratio of about 16 dB. In addition, two partially reflecting elements are embedded in the waveguide which is side-coupled with the microcavity for realizing the electromagnetically induced transparency (EIT), subsequently achieving the high-efficient modulation with the extinction ratio of about 33.3 dB. Meanwhile, it is found that the 3 dB modulation bandwidth, maximum of as high as 58.1 GHz, gradually decreases as the thickness of Al2O3 isolation layer is reduced. As the potential applications, this improved study of graphene-silica microdisk opens up great potential for realizing high-efficient electro-optic devices such as modulator, optical switch and ultra-short pulsed laser.
机译:石墨烯和高质量(Q)因子微腔的组合提供了实现效率调制的有希望的方式。本文研究了石墨烯-硅片微仪的电光调。由Al 2 O 3分离层分开的两个石墨烯薄片嵌入二氧化硅Microdisk中,以显着提高光质相互作用,以实现高效调制。在石墨烯薄片上施加约189.5V的偏置电压,施加9.5nm的最大谐振波长偏移,这是有利于实现大约16dB的消光比的光学调制。另外,两个部分反射元件嵌入在波导中,该波导具有与微腔侧耦合以实现电磁诱导的透明度(EIT),随后实现具有约33.3dB的消光比的高效调制。同时,由于Al2O3隔离层的厚度降低,3 dB调制带宽,最大程度高达58.1GHz,逐渐降低。作为潜在的应用,这种改进的石墨烯-Silica Microdisk的研究开辟了实现高效电光器件,例如调制器,光学开关和超短脉冲激光器的巨大潜力。

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