Advancements on High-Entropy Materials for Electromagnetic Wave Absorption

Abstract

Widespread electromagnetic (EM) interference and pollution have become expanding issues with the rapid advancement of fifth-generation (5G) wireless communication technology and devices. Recent advances in high-entropy (HE) materials have opened new opportunities for exploring EM wave absorption abilities to address the issues. The lattice distortion effect of structures, the synergistic effect of multi-element components, and multiple dielectric/magnetic loss mechanisms can offer extensive possiblities for optimizing the balance between impedance matching and attenuation ability, resulting in superior EM wave absorption performance. This Review gives a comprehensive review on the recent progress of HE materials for EM wave absorption. We begin with the fundamentals of EM wave absorption materials and the superiority of HE absorbers. Discussions of advanced synthetic methods, in-depth characterization techniques, and electronic properties, especially with regard to regulatable electronic structures through band engineering of HE materials are highlighted. This Review also covers current research advancements on a wide variety of HE materials for EM wave absorption, including HE alloys, HE ceramics (mainly HE oxides, carbides, and borides), and other novel HE systems. Finally, insights into future directions for the further development of high-performance HE EM wave absorbers are provided.

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Article information

Article type
Review Article
Submitted
28 Aug 2024
Accepted
19 Nov 2024
First published
19 Nov 2024
This article is Open Access
Creative Commons BY-NC license

Mater. Horiz., 2024, Accepted Manuscript

Advancements on High-Entropy Materials for Electromagnetic Wave Absorption

M. Yuan, A. H. Weible, F. Azadi, B. Li, J. Cui, H. Lv, R. Che and X. Wang, Mater. Horiz., 2024, Accepted Manuscript , DOI: 10.1039/D4MH01168F

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