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| Research Progress of Graphene-based Absorbing Composites |
XU Dongwei1,2, WANG Ruiqi1, CHEN Ping1( ) |
1 State Key Laboratory of Fine Chemicals, School of Chemical Engineering, Dalian University of Technology, Dalian 116024, China 2 School of Material Science and Engineering, Zhengzhou University of Aeronautics, Zhengzhou 450046, China |
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Cite this article:
XU Dongwei, WANG Ruiqi, CHEN Ping. Research Progress of Graphene-based Absorbing Composites. Chinese Journal of Materials Research, 2024, 38(1): 1-13.
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Abstract With the rapid development of electronic information technology, electromagnetic pollution and interference have become more and more serious. It is particularly important to develop microwave absorption materials with comprehensive excellent performance of "wide, thin, light and strong". Graphene materials have the advantages of light weight, high conductivity, large specific surface area and strong dielectric loss, however, the impedance matching performance is poor and the loss mechanism is single. Interestingly, the impedance mismatch can be effectively improved by doping heterogeneous elements or designing morphology and structure. Herein, based on electromagnetic wave absorption theory, this paper describes the research progress of different dimensions of graphene-based absorbing materials, and discusses the properties and microwave absorbing mechanism of different graphene-based absorbing materials in detail. The shortcomings of current research work in the field of graphene absorbing materials are also discussed. Finally, the future research direction and development prospect of graphene-based absorbing materials are prospected.
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Received: 04 February 2023
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| Fund: National Key Research Program(2019-ZD-380-12);Liaoning Revitalization Talents Program(XLYC1802085);Dalian Science and Technology Innovation Fund Project(2019J11CY007);Fundamental Research Funds for the Central Universities(DUT18GF107);Aviation Science Foundation(20173754009);Natural Science Foundation of Henan Province(232300420332);Key Scientific Research Project of Higher Education Institutions in Henan Province(23A430006) |
Corresponding Authors:
CHEN Ping, Tel: (0411)84986100, E-mail: pchen@dlut.edu.cn
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