Overcoming the Incompatibility Between Electrical Conductivity and Electromagnetic Transmissivity: A Graphene Glass Fiber Fabric Design Strategy

Author:

Huang Kewen12,Liang Fushun12,Sun Jianbo2,Zhang Qinchi2,Li Zhihao3,Cheng Shuting24,Li Wenjuan12,Yuan Hao12,Liu Ruojuan12,Ge Yunsong12,Cheng Yi12,Wang Kun12,Jiang Jun24,Yang Yuyao12,Ma Mingyang12,Yang Fan12,Tu Ce2,Xie Qin12,Yin Wanjian23,Wang Xiaobai25,Qi Yue2,Liu Zhongfan12ORCID

Affiliation:

1. Center for Nanochemistry Beijing Science and Engineering Center for Nanocarbons Beijing National Laboratory for Molecular Sciences College of Chemistry and Molecular Engineering Peking University Beijing 100871 P. R. China

2. Technology Innovation Center of Graphene Metrology and Standardization for State Market Regulation Beijing Graphene Institute Beijing 100095 P. R. China

3. College of Energy Soochow Institute for Energy and Materials InnovationS (SIEMIS) Jiangsu Provincial Key Laboratory for Advanced Carbon Materials and Wearable Energy Technologies Soochow University Suzhou 215006 P. R. China

4. State Key Laboratory of Heavy Oil Processing College of Science China University of Petroleum Beijing 102249 P. R. China

5. Department of Chemistry College of Chemistry and Materials Engineering Beijing Technology and Business University Beijing 100048 P. R. China

Abstract

AbstractConventional conductive materials such as metals are crucial functional components of conductive systems in diverse electronic instruments. However, their severe intrinsic impedance mismatch with air dielectric causes strong reflection of incident electromagnetic waves, and the resulting low electromagnetic transmissivity typically interferes with surrounding electromagnetic signal communications in modern multifunction‐integrated instruments. Herein, graphene glass fiber fabric (GGFF) that merges intrinsic electrical and electromagnetic properties of graphene with dielectric attributes and highly porous macrostructure of glass fiber fabric (GFF) is innovatively developed. Using a novel decoupling chemical vapor deposition growth strategy, high‐quality and layer‐limited graphene is prepared on noncatalytic nonmetallic GFF in a controlled manner; this is pivotal to realizing GGFF with the desired compatibility among high conductivity, low electromagnetic reflectivity, and high electromagnetic transmissivity. At the same sheet resistance over a wide range of values (250–3000 Ω·sq−1), the GGFF exhibits significantly lower electromagnetic reflectivity (by 0.42–0.51) and higher transmissivity (by 0.27–0.62) than those of its metal‐based conductive counterpart (CuGFF). The material design strategy reported herein provides a constructive solution to eliminate the incompatibility between electrical conductivity and electromagnetic transmissivity faced by conventional conductive materials, spotlighting the applicability of GGFF in electric heating scenarios in radar, antenna, and stealth systems.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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