J. Mater. Sci. Technol. ›› 2024, Vol. 195: 63-73.DOI: 10.1016/j.jmst.2023.12.069

• Research Article • Previous Articles     Next Articles

Regulating the electromagnetic balance of materials by electron transfer for enhanced electromagnetic wave absorption

Kunyao Caoa, Weiping Yea, Yue Zhanga, Lewei Shenc, Rui Zhaoa,*, Weidong Xuea,*, Xiaoyu Yangb,c,d,**   

  1. aSchool of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 610054, China;
    bState Key Laboratory of Advanced Technology for Materials Synthesis and Processing & Shenzhen Research Institute & Joint Laboratory for Marine Advanced Materials, Shenzhen 518063, China;
    cState Key Laboratory of Advanced Technology for Materials Synthesis and Processing, and International School of Materials Science & Engineering, and School of Materials Science & Engineering, Wuhan University of Technology, Wuhan 430070, China;
    dSchool of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, United States
  • Received:2023-12-16 Revised:2023-12-24 Accepted:2023-12-29 Published:2024-10-01 Online:2024-02-24
  • Contact: **State Key Laboratory of Advanced Technology for Ma-terials Synthesis and Processing & Shenzhen Research Institute & Joint Laboratory for Marine Advanced Materials, Shenzhen 518063, China. *E-mail addresses: ruizhao@uestc.edu.cn (R. Zhao), xuewd@uestc.edu.cn (W. Xue), xyyang@whut.edu.cn (X. Yang)

Abstract: The fact that single dielectric loss materials have disadvantages of excessive conductivities and impedance mismatches has given rise to a large effort to develop effective strategies to fabricate electromagnetic wave (EMW) absorbing materials comprised of components that bring about a balance between dielectric loss and magnetic loss. Moreover, little is known about the essential features that regulate EMW absorption propensities. This study focused on the development of a new EMW absorbing material and gaining information about factors that govern EMW absorption abilities. The materials at the center of the effort are light weight and porous cobalt sulfonated phthalocyanine-reduced graphene oxide (CoSPc-rGO) aerogels that were synthesized by using a simple hydrothermal method followed by freeze-drying. The properties of these materials that contribute to the electromagnetic balance between dielectric and magnetic loss were elucidated by first formulating a reasonable hypothesis about how the relative orientation of the components in CoSPc-rGO govern p-conjugation and electron transfer from rGO to CoSPc, which is proposed to be a key factor contributing to the regulation of the electromagnetic balance. Polarization relaxation process of materials was analyzed in detail using a variety of approaches including theoretical calculation, spectroscopic measurements, and experimental and simulation studies. The fabricated CoSPc-rGO aerogels that contain an ultra-low content of 4 % were found to exhibit an extraordinary microwave absorption performance associated with a strong reflection loss of -53.23 dB and a broad effective absorption bandwidth of 8.04 GHz. The results of this study should provide an effective guide for new designs of composite materials for EMW absorption.

Key words: Microwave absorption, Polarization relaxation, Electromagnetic balance, Electrons transfer, DFT calculation