State Key Laboratory on Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences, PO Box 912, Beijing 100083, China.
Opt Lett. 2010 Jun 15;35(12):1953-5. doi: 10.1364/OL.35.001953.
Coupled microcircular resonators tangentially coupled to a bus waveguide, which is between the resonators, are numerically investigated by the finite-difference time-domain technique. For symmetrically coupled microcircular resonators with refractive index of 3.2, radius of 2 microm, and width of the bus waveguide of 0.4 microm, a mode Q factor of the order of 10(5) is obtained for a mode at the frequency of 243 THz. An output coupling efficiency of as high as 0.99 is calculated for a mode with a Q factor ranging from 10(3) to 10(4). The mode Q factor is 2 orders larger than that of the modes confined in a single circular resonator tangentially coupled to the same bus waveguide. Furthermore, the high Q traveling modes in the coupled microcircular resonators are suitable for optical single processing.
通过有限差分时域技术对与公共波导相切耦合的耦合微环谐振器进行了数值研究,公共波导位于两个谐振器之间。对于折射率为 3.2、半径为 2 微米、公共波导宽度为 0.4 微米的对称耦合微环谐振器,在 243 THz 的频率下,模式 Q 因子达到了 10(5)的量级。对于 Q 因子在 10(3)到 10(4)之间的模式,计算出的输出耦合效率高达 0.99。与相同公共波导相切耦合的单个圆形谐振器中限制的模式相比,模式 Q 因子大 2 个数量级。此外,耦合微环谐振器中的高 Q 行波模式适用于光学单处理。