材料科学
太赫兹辐射
电磁感应透明
之字形的
石墨烯
透射率
液晶
光电子学
透明度(行为)
聚合物
超材料
谐振器
光学
调制(音乐)
传输(电信)
光子晶体
Crystal(编程语言)
光子学
液晶显示器
薄膜
非线性系统
慢光
纳米技术
作者
Xinjie Wang,Zhaolin Li,Jinfeng Song,Haotian Ling,Yanpeng Shi,Xijian Zhang,Baoqing Zhang,Aimin Song,Yifei Zhang
标识
DOI:10.1002/adom.202500523
摘要
Abstract Electromagnetically induced transparency (EIT) metasurfaces with enhanced light‐matter interactions offer promising prospects in applications of slow light, nonlinear optics, and sensitive sensing. Integrating active devices provides versatile dynamics in these EIT applications. Here, a new EIT structure, comprising a zigzag bright mode and two split‐ring resonator (SRR) dark modes, is designed on a low‐loss liquid crystal polymer (LCP) film for high terahertz (THz) transmission, and graphene is firstly wet‐transferred onto LCP for actively manipulating metasurfaces to the best of the authors’ knowledge, achieving a large modulation depth of 42%. Both theoretical analysis and full‐wave simulations are conducted to elucidate the mechanisms of the proposed structure with a large group delay of 16 ps and its dynamic graphene modulation. A prototype device integrated with patterned graphene is fabricated and characterized, whose measured spectra show good consistency with the theoretical and simulation data. The EIT transmittance peak is as high as 0.71 at 233 GHz, which is modulated from 0.45 to 0.26 with ion gel‐controlled graphene under a bias ranging from 0.2 to 2 V. This work paves a new way for graphene devices on flexible LCP films and provides a novel approach for THz devices with high transmission and active modulation.
科研通智能强力驱动
Strongly Powered by AbleSci AI