石墨烯
等离子体子
材料科学
光电子学
红外线的
调制(音乐)
光调制器
联轴节(管道)
带宽(计算)
光子学
光学
纳米技术
相位调制
电信
物理
计算机科学
声学
相位噪声
冶金
作者
Guilian Lan,Linlong Tang,Jiduo Dong,Jinpeng Nong,Peng Luo,Xin Li,Zhancheng Li,Yongna Zhang,Yujie Dai,Wei Wang,Haofei Shi,Wei Wei
标识
DOI:10.1002/lpor.202300469
摘要
Abstract Graphene plasmonic modulators can manipulate the mid‐infrared light in transmission mode, which is currently challenging for traditional liquid crystal and digital micromirror devices, opening up a new avenue for infrared scene projection, infrared optical communication, and hyper spectra imaging. Nevertheless, their efficiencies are not high enough due to the single‐layer atomic thickness and low free carrier density of graphene. Here, it is demonstrated that the modulation efficiency can be significantly improved by enhancing the asymmetric light‐plasmon coupling. A general theoretical model is established to describe the modulation behaviors of the modulator, revealing the critical role of the asymmetric coupling rate. By using dielectric environment engineering and graphene structure design experimentally to enhance the asymmetric coupling rate from 0.45×10 12 to 7.05×10 12 s −1 , the modulation efficiency has been improved from 4% to 41% at 1530 cm −1 , while maintaining the bandwidth as large as 230 cm −1 . The modulator outperforms previous transmission‐type graphene plasmonic modulators in both efficiency and bandwidth, presenting great potential in next‐generation infrared integrated photonics platforms.
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