Structural Electromagnetic Absorber Based on MoS2/PyC‐Al2O3 Ceramic Metamaterials

Author:

Liu Xingmin12,Liu Heqiang1,Wu Hongjing3ORCID,Zhou Qian4,Liang Hongsheng3,Liu Guoqiang1,Duan Wenyan5,Gu Yue5,Xu Chengying6,Travitzky Nahum7,Colombo Paolo8,Riedel Ralf12

Affiliation:

1. State Key Laboratory of Solidification Processing Northwestern Polytechnical University Xi'an 710072 China

2. Institute of Materials Science Technische Universität Darmstadt Alarich‐Weiss‐Str. 2 64287 Darmstadt Germany

3. MOE Key Laboratory of Material Physics and Chemistry under Extraordinary School of Physical Science and Technology Northwestern Polytechnical University Xi'an 710072 P. R. China

4. School of Science Xi'an University of Posts and Telecommunications Xi'an 710121 China

5. Key Laboratory of Space Manufacturing Technology (SMT) Technology and Engineering Centre of Space Utilization Chinese Academy of Sciences Beijing 100094 P R China

6. Department of Mechanical and Aerospace Engineering NC State University Raleigh NC 27607 USA

7. Department of Materials Science Glass and Ceramics Friedrich‐Alexander‐Universität Erlangen‐Nürnberg 91054 Erlangen Germany

8. Department of Industrial Engineering University of Padova Padova 35131 Italy

Abstract

AbstractLimited by the types of suitable absorbents as well as the challenges in engineering the nanostructures (e.g., defects, dipoles, and hetero‐interface) using state‐of‐the‐art additive manufacturing (AM) techniques, the electromagnetic (EM) wave absorption performance of the current ceramic‐based materials is still not satisfying. Moreover, because of the high residual porosity and the possible formation of cracks during sintering or pyrolysis, AM‐formed ceramic components may in many cases exhibit low mechanical strength. In this work, semiconductive MoS2 and conductive PyC modified Al2O3 (MoS2/PyC‐Al2O3) ceramic‐based structural EM metamaterials are developed by innovatively harnessing AM, precursor infiltration and pyrolysis (PIP), and hydrothermal methods. Three different meta‐structures are successfully created, and the ceramic‐based nanocomposite benefit from its optimization of EM parameters. Ultra‐broad effective absorption bandwidth (EAB) of 35 GHz is achieved by establishment of multi‐loss mechanism via nanostructure engineering and fabrication of meta‐structures via AM. Due to the strengthening by the PyC phase, the bending strength of the resulting ceramics can reach ≈327 MPa, which is the highest value measured on 3D‐printed ceramics of this type that has been reported so far. For the first time, the positive effect deriving from the engineering of the microscopic nano/microstructure and of the macroscopic meta‐structure of the absorber on the permittivity and EM absorption performance is proposed. Integration of outstanding mechanical strength and ultra‐broad EAB is innovatively realized through a multi‐scale design route. This work provides new insights for the design of advanced ceramic‐based metamaterials with outstanding performance under extreme environment.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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