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耦合亚波长硅米氏谐振器中的低损耗波导和慢光模式

Low loss waveguiding and slow light modes in coupled subwavelength silicon Mie resonators.

作者信息

Ding Lu, Yu Ye Feng, Morits Dmitry, Yu Mingbin, Ang Thomas Y L, Chu Hong-Son, Thor Lim Soon, Png Ching Eng, Paniagua-Dominguez Ramon, Kuznetsov Arseniy I

机构信息

Institute of Materials Research and Engineering, A*STAR (Agency for Science, Technology and Research), 138634, Singapore.

出版信息

Nanoscale. 2020 Nov 5;12(42):21713-21718. doi: 10.1039/d0nr05248e.

Abstract

Subwavelength light-guiding optical devices have gained great attention in the photonics community because they provide unique opportunities for miniaturization and functionality of the optical interconnect technology. On the other hand, high-refractive-index dielectric nanoparticles working at their fundamental Mie resonances have recently opened new venues to enhance and control light-matter interactions at the nanoscale while being free from Ohmic losses. Combining the best of both worlds, here we experimentally demonstrate low-loss slow light waveguiding in a chain of coupled silicon Mie resonators at telecommunication wavelengths. This resonant coupling forms waveguide modes with propagation losses comparable to, or even lower than those in a stripe waveguide of the same cross section. Moreover, the nanoparticle waveguide also exhibits slow light behaviour, with group velocities down to 0.03 of the speed of light. These unique properties of coupled silicon Mie resonator waveguides, together with hybrid coupler designs reducing the coupling loss from a bus waveguide, as also shown in this work, may open a path towards their potential applications in integrated photonics for light control in optical and quantum communications or biosensing, to mention some.

摘要

亚波长光导光学器件在光子学领域引起了极大关注,因为它们为光互连技术的小型化和功能化提供了独特机遇。另一方面,工作在其基本米氏共振的高折射率介电纳米粒子最近开辟了新途径,可在纳米尺度增强和控制光与物质的相互作用,同时避免欧姆损耗。结合这两者的优点,我们在此通过实验证明了在电信波长下,耦合硅米氏谐振器链中的低损耗慢光波导。这种共振耦合形成的波导模式,其传播损耗与相同横截面的条形波导相当,甚至更低。此外,纳米粒子波导还表现出慢光行为,群速度低至光速的0.03。耦合硅米氏谐振器波导的这些独特特性,以及如本工作所示的混合耦合器设计可降低来自总线波导的耦合损耗,可能为它们在集成光子学中的潜在应用开辟一条道路,用于光通信和量子通信中的光控制或生物传感等。

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