超短脉冲
材料科学
光电子学
太赫兹辐射
光开关
激光器
纳秒
可重构性
电磁感应透明
硫系化合物
慢光
光学
光子学
物理
计算机科学
电信
光子晶体
作者
Kuan Liu,Xieyu Chen,Meng Lian,Jingyuan Jia,Y. K. Su,Haonan Ren,Shoujun Zhang,Yihan Xu,Jiajia Chen,Zhen Tian,Tun Cao
标识
DOI:10.1002/lpor.202100393
摘要
Abstract Metasurface analog of electromagnetically induced transparency (EIT) provides a compact platform for generating a narrow‐band transmission window with very sharp spectral features. They hold promise for many appealing applications including ultrasensitive detectors, slow‐light devices, nonlinear optical devices etc. In particular, reconfigurable EIT metasurfaces are crucial for expanding the capability of light field control, which are promising for terahertz (THz) communications and optical networks. Yet, the investigation on reconfigurable EIT metasurfaces with nonvolatile operation remains scarce. Here, reversible switching of the metasurface‐induced transparency in the THz spectrum is experimentally realized. The reconfigurable response (reversible spectral shift) is obtained by integrating a nonvolatile chalcogenide phase change material, Ge 2 Sb 2 Te 5 (GST225) into the meta‐atoms. A giant reversible switching of EIT takes place under an excitation of nanosecond laser pulses, showing a reconfigurable group delay of the THz waves. The proposed reconfigurable THz metadevices may provide a new route for the ultrafast laser induced switching and reconfigurable slow‐light devices.
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