Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds

Expanded graphite (EG) is a carbon material prepared by the thermal expansion of graphite intercalation compounds. Herein, a novel chemical preparation method is employed to obtain magnetic EG composites with excellent radar attenuation performance in the 2–18 GHz range. Ferrocene is first intercala...

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Main Authors: Hao Liang, Shichuan Li, Yongpeng Chen, Zunning Zhou
Format: Article
Language:English
Published: Elsevier 2020-03-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519308743
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spelling doaj-406e87b47c244cbca1137fb4991c663d2020-11-25T02:06:20ZengElsevierMaterials & Design0264-12752020-03-01188Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compoundsHao Liang0Shichuan Li1Yongpeng Chen2Zunning Zhou3State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, People's Republic of ChinaNanjing Electronic Equipment Research Institute, 35 Houbiaoying St, Nanjing 210001, People's Republic of ChinaState Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, People's Republic of ChinaState Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, People's Republic of China; Corresponding author.Expanded graphite (EG) is a carbon material prepared by the thermal expansion of graphite intercalation compounds. Herein, a novel chemical preparation method is employed to obtain magnetic EG composites with excellent radar attenuation performance in the 2–18 GHz range. Ferrocene is first intercalated into the natural flake graphite to form ferrocene graphite intercalation compounds (FGICs), and then oxidises to Fe3O4 during the thermal expansion of FGICs at 900 °C, while the FGICs are converted into magnetic EG composites in this process. The success of ferrocene intercalation reaction is confirmed by transmission electron microscopy, fourier transformation infrared spectroscope, X-ray diffraction, and energy-dispersive X-ray spectroscopy studies. The components and radar attenuation property of the magnetic EG composites are discussed. Both Fe3O4 and Fe2O3 exist in the final EG composites and a high radar attenuation of −18 dB at 18 GHz is obtained, while the ferrocene/graphite ratio in the FGICs is 20%. The excellent radar attenuation property of the magnetic EG composites, together with good homogeneity and dispersion in air, can allow the composites to be used in many potential applications in radar countermeasure. Keywords: Magnetic expanded graphite aerosol, Ferrocene graphite intercalation compounds, Radar attenuation performance, Attenuation loss measurementhttp://www.sciencedirect.com/science/article/pii/S0264127519308743
collection DOAJ
language English
format Article
sources DOAJ
author Hao Liang
Shichuan Li
Yongpeng Chen
Zunning Zhou
spellingShingle Hao Liang
Shichuan Li
Yongpeng Chen
Zunning Zhou
Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
Materials & Design
author_facet Hao Liang
Shichuan Li
Yongpeng Chen
Zunning Zhou
author_sort Hao Liang
title Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
title_short Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
title_full Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
title_fullStr Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
title_full_unstemmed Radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
title_sort radar attenuation performance of magnetic expanded graphite aerosol obtained from thermal expansion of stage-1 ferrocene graphite intercalation compounds
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2020-03-01
description Expanded graphite (EG) is a carbon material prepared by the thermal expansion of graphite intercalation compounds. Herein, a novel chemical preparation method is employed to obtain magnetic EG composites with excellent radar attenuation performance in the 2–18 GHz range. Ferrocene is first intercalated into the natural flake graphite to form ferrocene graphite intercalation compounds (FGICs), and then oxidises to Fe3O4 during the thermal expansion of FGICs at 900 °C, while the FGICs are converted into magnetic EG composites in this process. The success of ferrocene intercalation reaction is confirmed by transmission electron microscopy, fourier transformation infrared spectroscope, X-ray diffraction, and energy-dispersive X-ray spectroscopy studies. The components and radar attenuation property of the magnetic EG composites are discussed. Both Fe3O4 and Fe2O3 exist in the final EG composites and a high radar attenuation of −18 dB at 18 GHz is obtained, while the ferrocene/graphite ratio in the FGICs is 20%. The excellent radar attenuation property of the magnetic EG composites, together with good homogeneity and dispersion in air, can allow the composites to be used in many potential applications in radar countermeasure. Keywords: Magnetic expanded graphite aerosol, Ferrocene graphite intercalation compounds, Radar attenuation performance, Attenuation loss measurement
url http://www.sciencedirect.com/science/article/pii/S0264127519308743
work_keys_str_mv AT haoliang radarattenuationperformanceofmagneticexpandedgraphiteaerosolobtainedfromthermalexpansionofstage1ferrocenegraphiteintercalationcompounds
AT shichuanli radarattenuationperformanceofmagneticexpandedgraphiteaerosolobtainedfromthermalexpansionofstage1ferrocenegraphiteintercalationcompounds
AT yongpengchen radarattenuationperformanceofmagneticexpandedgraphiteaerosolobtainedfromthermalexpansionofstage1ferrocenegraphiteintercalationcompounds
AT zunningzhou radarattenuationperformanceofmagneticexpandedgraphiteaerosolobtainedfromthermalexpansionofstage1ferrocenegraphiteintercalationcompounds
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