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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Low-power, ultrafast, and dynamic all-optical tunable plasmon induced transparency in two stub resonators side-coupled with a plasmonic waveguide system
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Low-power, ultrafast, and dynamic all-optical tunable plasmon induced transparency in two stub resonators side-coupled with a plasmonic waveguide system

机译:低功耗,超快和动态全光可调等离子体诱导的两个存根谐振器侧面与等离子体波导系统相结合

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摘要

We theoretically and numerically investigate a low-power, ultrafast, and dynamic all-optical tunable plasmon induced transparency (PIT) in two stub resonators side-coupled with a metal-dielectric-metal (MDM) plasmonic waveguide system. The optical Kerr effect is enhanced by the local electromagnetic field of surface plasmon polaritons (SPPs) and the plasmonic waveguide based on graphene-Ag composite material structures with large effective Kerr nonlinear coefficient. An ultrafast response time of the order of 1 ps is reached because of ultrafast carrier relaxation dynamics of graphene. With dynamically tuning the propagation phase of the plasmonic waveguide, pi-phase shift of the transmission spectrum in the PIT system is achieved under excitation of a pump light with an intensity as low as 5.8 MW cm(-2). The group delay is controlled between 0.14 and 0.67 ps. Moreover, the tunable bandwidth of about 42 nm is obtained. For the indirect coupling between two stub cavities or the phase coupling scheme, the phase shift multiplication effect of the PIT effect is found. All observed schemes are analyzed rigorously through finite-difference time-domain simulations and coupled-mode formalism. This work not only paves the way towards the realization of on-chip integrated nanophotonic devices but also opens the possibility of the construction of ultrahigh-speed information processing chips based on plasmonic circuits.
机译:理论上和数值上和数值上研究了与金属介质(MDM)等离子体波导系统侧面耦合的两个残余谐振器中的低功耗,超快和动态的全光调等离子体诱导的透明度(坑)。基于具有大有效kerr非线性系数的石墨烯-AG复合材料结构,通过具有大有效kerr非线性系数的石墨烯-AG复合材料结构来增强光学克尔效应。由于石墨烯的超快载体松弛动态,达到了1 PS的超快响应时间。通过动态调谐等离子体波导的传播阶段,凹坑系统中的透射光谱的PI相移位在泵浦光的激励下实现,其强度低至5.8mW cm(-2)。组延迟控制在0.14和0.67 ps之间。此外,获得约42nm的可调带宽。对于两个短腔或相位耦合方案之间的间接耦合,找到凹坑效应的相移乘法效应。通过有限差分时域模拟和耦合模式形式主义严格地分析所有观察的方案。这项工作不仅铺平了实现片内集成的纳米光电装置的方式,而且还开辟了基于等离子体电路的超高速信息处理芯片的结构的可能性。

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