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A 3–5 μm broadband YBCO high-temperature superconducting photonic crystal

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【作者】 刘刚李远航贾宝楠高永潘韩利红芦鹏飞宋海智

【Author】 Gang Liu;Yuanhang Li;Baonan Jia;Yongpan Gao;Lihong Han;Pengfei Lu;Haizhi Song;Beijing Key Laboratory of Space-Ground Interconnection and Convergence, Beijing University of Posts and Telecommunications;School of Electronic Engineering, Beijing University of Posts and Telecommunications;State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications;Southwest Institute of Technical Physics;

【通讯作者】 刘刚;宋海智;

【机构】 Beijing Key Laboratory of Space-Ground Interconnection and Convergence, Beijing University of Posts and TelecommunicationsSchool of Electronic Engineering, Beijing University of Posts and TelecommunicationsState Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and TelecommunicationsSouthwest Institute of Technical Physics

【摘要】 Photonic crystal structures have excellent optical properties, so they are widely studied in conventional optical materials. Recent research shows that high-temperature superconducting periodic structures have natural photonic crystal features and they are favourable candidates for single-photon detection. Considering that superconductors have completely different properties from conventional optical materials, we study the energy level diagram and mid-infrared 3 μm–5 μm transmission spectrum of two-dimensional superconducting photonic crystals in both superconducting and quenched states with the finite element method. The energy level diagram of the circular crystal column superconducting structure shows that the structure has a large band gap width in both states. At the same fill factor, the circular crystal column superconducting structure has a larger band gap width than the others structures. For lattice structures, the zero transmission point of the square lattice structure is robust to the incident angle and environmental temperature. Our research has guiding significance for the design of new material photonic crystals, photon modulation and detection.

【Abstract】 Photonic crystal structures have excellent optical properties, so they are widely studied in conventional optical materials. Recent research shows that high-temperature superconducting periodic structures have natural photonic crystal features and they are favourable candidates for single-photon detection. Considering that superconductors have completely different properties from conventional optical materials, we study the energy level diagram and mid-infrared 3 μm–5 μm transmission spectrum of two-dimensional superconducting photonic crystals in both superconducting and quenched states with the finite element method. The energy level diagram of the circular crystal column superconducting structure shows that the structure has a large band gap width in both states. At the same fill factor, the circular crystal column superconducting structure has a larger band gap width than the others structures. For lattice structures, the zero transmission point of the square lattice structure is robust to the incident angle and environmental temperature. Our research has guiding significance for the design of new material photonic crystals, photon modulation and detection.

【基金】 Project supported by the National Key Research and Development Program of China (Grant No. 2021YFB3601201);the National Natural Science Foundation of China (Grant No. 62101057);the Fund of State Key Laboratory of Information Photonics and Optical Communications (Beijing University of Posts and Telecommunications)(Grant No. IPOC2021ZT07)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2023年03期
  • 【分类号】O734
  • 【下载频次】7
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