Enhanced Asymmetric Light‐Plasmon Coupling in Graphene Nanoribbons for High‐Efficiency Transmissive Infrared Modulation

Author:

Lan Guilian12,Tang Linlong2,Dong Jiduo2,Nong Jinpeng3,Luo Peng1,Li Xin2,Li Zhancheng2,Zhang Yongna2,Dai Yujie2,Wang Wei4,Shi Haofei2,Wei Wei1ORCID

Affiliation:

1. Key Laboratory of Optoelectronic Technology and System, Ministry of Education of China, College of Optoelectronic Engineering Chongqing University Chongqing 400044 P. R. China

2. Chongqing Key Laboratory of Multi‐Scale Manufacturing Technology Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences 400714 Chongqing P. R. China

3. Institute of Materials Research and Engineering Agency for Science Technology and Research (A*STAR), Innovis Singapore 138634 Singapore

4. College of Physical Science and Technology Sichuan University Chengdu 610064 P. R. China

Abstract

AbstractGraphene 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 0.45×1012 to 7.05×1012 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.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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