MXene‐Based Ultrathin Electromagnetic Wave Absorber with Hydrophobicity, Anticorrosion, and Quantitively Classified Electrical Losses by Intercalation Growth Nucleation Engineering

Author:

Wang Jiahao1,Zhang Lei2,Yan Junfeng1,Yun Jiangni13ORCID,Zhao Wu1,Dai Kun1,Wang Huan4,Sun Yushan1

Affiliation:

1. School of Information Science and Technology Northwest University Xi'an 710127 P. R. China

2. Science and Technology on Applied Physical Chemistry Laboratory Shaanxi Applied Physics‐Chemistry Research Institute Xi'an Shaanxi 710061 P. R. China

3. Department of Physics McGill University Montreal Quebec H3A 2T8 Canada

4. Shenzhen Securities Information Co., Ltd. Shenzhen 518010 P. R. China

Abstract

AbstractMXene, a highly regarded material, has garnered significant attention within the electromagnetic wave (EMW) absorption field. However, the practical application of MXene is limited in harsh environments. Herein, a magic technique strategy of intercalation growth nucleation engineering is employed to prepare multifunctional MXene‐based EMW absorption materials. By regularly introducing different metal ions between the layers of MXene, an ultrathin absorber can be achieved by annealing after reacting in specific positions. The synthesized MCFC‐69‐8 shows hydrophobicity properties and exhibits a large charge‐transfer resistance of 18112 Ω cm2 with a low corrosion rate and corrosion rate, indicating a good anti‐corrosion property. Through applying a series of mathematical methods, MCFC‐69‐8 shows 25% relaxation polarization loss and 75% conduction loss, and its relaxation time is linked with the specific type of relaxation polarization loss, resulting in an effective absorption bandwidth (EAB) of 4.9 GHz with an ultra‐thin optimal matching thickness of 1.48 mm. Finally, an absorber is built using CST to attain an ultrabroad EAB covering 2–18 GHz. This engineering not only simplifies the intercalation process but also achieves a high‐performance and anti‐corrosion EMW absorber, providing a valuable perception for realizing thinner MXene‐based EMW absorbers in the future.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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