3d Printing Co-Mofs/Pla Composite with Multiple Electromagnetic Loss Mechanism and Broadband Microwave Absorption

28 Pages Posted: 10 Dec 2024

See all articles by Yuan Liu

Yuan Liu

Rocket Force University of Engineering

Rong Li

Rocket Force University of Engineering

Muhe Li

Zhengzhou University

Yuchang Qing

Northwestern Polytechnic University (NPU)

Abstract

The resin matrix composite endowed with wide-frequency (4~18 GHz) absorption functionality remains a challenging issue in the current research of microwave absorption materials. Herein, we have developed coral-like Co@NCP reinforced polylactic acid resin (PLA) composites featuring wide-band absorption through cross-scale design, thereby breaking through the current bottleneck of narrow effective absorption band (EAB). Multiple electromagnetic (EM) loss mechanisms, encompassing conductivity loss, dipole polarization, interface polarization and coupling effect were established and optimized by conducting Co-doped defect design at the atomic scale, CoCx-CoxP heterogeneous interface design at the nano scale and periodic design at the millimeter scale. The wide absorption in the frequency of 2.0~17.4 GHz of Co@NCP composite is accomplished by the frequency response characteristic of the cooperative multiple absorption mechanism. Accordingly, combined with special cylindrical periodic structure design, the metamaterial absorbers exhibit remarkable EM wave absorption performance (e.g., actual EAB in 15.4 GHz and simulated reflectivity in -65.5 dB). Moreover, large-scale production of the metamaterial absorbers at low costs are realized, which has tremendous application potentiality for developing EM wave absorbers with superior performance.

Keywords: Metamaterial absorbers, 3D printing, Metal-organic frameworks, Impedance match, Electromagnetic wave absorption

Suggested Citation

Liu, Yuan and Li, Rong and Li, Muhe and Qing, Yuchang, 3d Printing Co-Mofs/Pla Composite with Multiple Electromagnetic Loss Mechanism and Broadband Microwave Absorption. Available at SSRN: https://ssrn.com/abstract=5050447 or http://dx.doi.org/10.2139/ssrn.5050447

Yuan Liu

Rocket Force University of Engineering ( email )

Rong Li

Rocket Force University of Engineering ( email )

Muhe Li

Zhengzhou University ( email )

Yuchang Qing (Contact Author)

Northwestern Polytechnic University (NPU) ( email )

127# YouYi Load
Xi'an, 710072
China

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