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基于光子晶体平板传导共振模的低功率光开关
  • 期刊名称:量子电子学报
  • 时间:0
  • 页码:73-81
  • 语言:中文
  • 分类:TN201[电子电信—物理电子学] TN25[电子电信—物理电子学]
  • 作者机构:[1]State Key Laboratory of Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China, [2]Department of Physics, Ouangdong University of Petrochemical, Maoming 525000, China
  • 相关基金:Project supported by the National Natural Science Foundation of China (Grant No. 60877030), the National High Technology Research and Development Program of China (Grant No. 2009AA03Z406), the Program of Visiting Professor for Senior International Scientists of the Chinese Academy of Sciences (Grant No. 2009G2-17), and the Science and Technology Program of Guangdong Province, China (Grant No. 2010B080701066).
  • 相关项目:光子晶体垂直腔面发射激光器研究
中文摘要:

A two-dimensional photonic crystal coupled-cavity waveguide is designed and optimized, the transmission spectrum is calculated by using the finite-difference time-domain method, and the group velocity of c/1856 is obtained. To our knowledge, this value of group velocity is the lowest group velocity in a photonic crystal waveguide calculated from its transmission spectrum so far. The result is confirmed by the photonic band structure calculated by using the plane wave expansion method, and it is found that the photonic crystal waveguide modes in a photonic band structure are in accordance with those in the transmission spectrum by using the finite-difference time-domain method. The mechanism of slow light in the coupled-cavity waveguide of photonic crystal is analysed.

英文摘要:

A two-dimensional photonic crystal coupled-cavity waveguide is designed and optimized, the transmission spectrum is calculated by using the finite-difference time-domain method, and the group velocity of c/1856 is obtained. To our knowledge, this value of group velocity is the lowest group velocity in a photonic crystal waveguide calculated from its transmission spectrum so far. The result is confirmed by the photonic band structure calculated by using the plane wave expansion method, and it is found that the photonic crystal waveguide modes in a photonic band structure are in accordance with those in the transmission spectrum by using the finite-difference time-domain method. The mechanism of slow light in the coupled-cavity waveguide of photonic crystal is analysed.

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