A Nanoconfinement Strategy to Construct Co@CNTs for Lightweight and Ultra‐Broadband Microwave Absorption

Author:

Wang Xiangyu1,Wang Baolei12,Zhu Hongsong1,Cao Boyuan1,Liu Tong1ORCID

Affiliation:

1. Key Laboratory of Aerospace Materials and Performance (Ministry of Education), School of Materials Science and Engineering Beihang University No.37 Xueyuan Road Beijing 100191 P. R. China

2. School of Chemistry and Pharmaceutical Engineering Shandong First Medical University & Shandong Academy of Medical Sciences Taian Shandong 271016 P. R. China

Abstract

AbstractThe construction of stable and efficient nanocomposites with low addition and light weight has always been the goal pursued in the field of electromagnetic wave (EMW) absorption. In this study, the Co@CNTs nanocomposites with Co nanoparticles (13 nm) nanoconfined in the carbon nanotube (CNT) are successfully synthesized by a simple hydrothermal method and phenolic assisted pyrolysis method. The degree of graphitization of CNTs and the microstructure of Co nanoparticles can be effectively regulated by controlling the calcination temperature. The sample calcined at 700 °C can obtain excellent absorption performance at a low filling capacity of 10 wt.%: the minimum reflection loss (RL) is −41.2 dB and the effective absorption bandwidth (EAB) reaches a maximum width of 14.2 GHz. When the sample thickness is only 2.2 mm, the EAB of <−20 dB reaches 8.3 GHz, which is the maximum EAB of most current Co‐based absorbers. In particular, the polarization and ferromagnetic coupling behaviors are elucidated in depth with the aid of electromagnetic field simulations using the High‐Frequency Structure Simulator (HFSS). This work provides a new nanoconfinement strategy for constructing the Co@CNTs nanocomposites as lightweight and ultra‐broadband absorbing materials for EMW protection and EMW pollution control.

Funder

National Key Research and Development Program of China

National Science and Technology Major Project

National Natural Science Foundation of China

Publisher

Wiley

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