Literature DB >> 35334361

Controllable graphitization degree of carbon foam bulk toward electromagnetic wave attenuation loss behavior.

Weibin Deng1, Tiehu Li2, Hao Li3, Xin Liu1, Alei Dang1, Yifei Liu4, Hongjing Wu5.   

Abstract

The graphitization degree is of great importance for determining the electromagnetic (EM) wave attenuation loss behavior. The conductive loss is considered to be the mechanism resulting from tailoring the graphitization degree. There is a lack of in-depth research on the dipole polarization caused by defects and functional groups and the interface polarization caused by graphite/amorphous carbon. Herein, lightweight carbon foam (CF) bulk derived from mesophase pitch was prepared to clarify the effect of the graphitization degree systematically. The results demonstrate that with an increase graphitization degree, the interfacial polarization improves and dipole polarization decreases. The synergistic effect of conduction loss and dipole and interfacial polarization dominates the impedance matching and further changes the EM loss behavior of CFs. Particularly, the minimum reflection loss is - 16.69 dB and effective absorption bandwidth is 3.63 GHz, the EM interference shielding effectiveness attains 35.13 dB and the compressive strength is up to 11.73 MPa when the optimal graphitization degree is achieved. Therefore, this work elucidates the effect of the interface polarization of graphite/amorphous carbon, thus providing a valuable insight into the design of advanced carbon-based materials for EM wave absorption and shielding.
Copyright © 2022 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Carbon foam; Conduction loss; Dielectric loss; Electromagnetic interference shielding; Electromagnetic wave absorption; Graphitization degree

Year:  2022        PMID: 35334361     DOI: 10.1016/j.jcis.2022.03.071

Source DB:  PubMed          Journal:  J Colloid Interface Sci        ISSN: 0021-9797            Impact factor:   8.128


  1 in total

1.  An Equivalent Substitute Strategy for Constructing 3D Ordered Porous Carbon Foams and Their Electromagnetic Attenuation Mechanism.

Authors:  Meng Zhang; Hailong Ling; Ting Wang; Yingjing Jiang; Guanying Song; Wen Zhao; Laibin Zhao; Tingting Cheng; Yuxin Xie; Yuying Guo; Wenxin Zhao; Liying Yuan; Alan Meng; Zhenjiang Li
Journal:  Nanomicro Lett       Date:  2022-08-02
  1 in total

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