Interfacial Polarization Loss Improvement Induced by the Hollow Engineering of Necklace‐like PAN/Carbon Nanofibers for Boosted Microwave Absorption

Author:

Xiao Junxiong1,Zhan Beibei1,He Mukun2,Qi Xiaosi1ORCID,Gong Xiu1,Yang Jing‐Liang1,Qu Yunpeng1,Ding Junfei1,Zhong Wei3,Gu Junwei2

Affiliation:

1. College of Physics Guizhou Province Key Laboratory for Photoelectrics Technology and Application Guizhou University Guiyang 550025 P. R. China

2. School of Chemistry & Chemical Engineering Shaanxi Key Laboratory of Macromolecular Science & Technology Northwestern Polytechnical University Xian 710072 P. R. China

3. National Laboratory of Solid State Microstructures and Jiangsu Provincial Laboratory for NanoTechnology Nanjing University Nanjing 210093 P. R. China

Abstract

AbstractRational manipulation of composition and microstructure design is recognized as an effective pathway to realize multifunctional high‐performance microwave absorber. In this work, necklace‐like hollow polyacrylonitrile (PAN)/carbon nanofibers are designed and constructed through a simple continuous electrospinning‐carbonization‐etching route. Specifically, by varying the carbonization temperature, the ratio of PAN to carbon content of necklace‐like hollow PAN/carbon nanofibers can be effectively regulated, resulting in tunable electromagnetic parameters and conductive loss capacities. After that, the hollow structure is further introduced to improve the feature of lightweight, impedance‐matching characteristics, and interfacial polarization loss ability. Accordingly, the necklace‐like hollow PAN/carbon nanofibers exhibited a frequency bandwidth of 6.60 GHz and a minimum reflection loss of −44.73 dB at 1.76 mm. Both the experimental and theoretical simulation results indicated that the obtained necklace‐like hollow PAN/carbon nanofibers possessed the high chemical stability and excellent microwave absorbing performance, endowing them as the excellent candidates for microwave absorbers in the extreme conditions. Therefore, the findings not only offered a simple pathway to rationally manipulate composition and microstructure but also provided a novel technique to make the most of hollow engineering for strengthening interface polarization loss.

Funder

Fok Ying Tung Education Foundation

National Natural Science Foundation of China

Publisher

Wiley

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