NiO/Ni Heterojunction on N‐Doped Hollow Carbon Sphere with Balanced Dielectric Loss for Efficient Microwave Absorption

Author:

Li Bei1,Ma Ziqian1,Zhang Xiao1,Xu Jia1,Chen Yujin12ORCID,Zhang Xitian3,Zhu Chunling2

Affiliation:

1. Key Laboratory of In‐Fiber Integrated Optics College of Physics and Optoelectronic Engineering Harbin Engineering University Harbin 150001 China

2. College of Materials Science and Chemical Engineering Harbin Engineering University Harbin 150001 China

3. Key Laboratory for Photonic and Electronic Bandgap Materials Ministry of Education And School of Physics and Electronic Engineering Harbin Normal University Harbin 150025 China

Abstract

AbstractHollow carbon spheres are potential candidates for lightweight microwave absorbers. However, the skin effect of pure carbon‐based materials frequently induces a terrible impedance mismatching issue. Herein, small‐sized NiO/Ni particles with heterojunctions on the N‐doped hollow carbon spheres (NHCS@NiO/Ni) are constructed using SiO2 as a sacrificing template. The fabricated NHCS@NiO/Ni displayed excellent microwave absorbability with a minimum reflection loss of −44.04 dB with the matching thickness of 2 mm and a wider efficient absorption bandwidth of 4.38 GHz with the thickness of 1.7 mm, superior to most previously reported hollow absorbers. Experimental results demonstrated that the excellent microwave absorption property of the NHCS@NiO/Ni are attributed to balanced dielectric loss and optimized impedance matching characteristic due to the presence of NiO/Ni heterojunctions. Theoretical calculations suggested that the redistribution of charge at the interfaces and formation of dipoles induced by N dopants and defects are responsible for the enhanced conduction and polarization losses of NHCS@NiO/Ni. The simulations for the surface current and power loss densities reveal that the NHCS@NiO/Ni has‑ applicable attenuation ability toward microwave under the practical application scenario. This work paves an efficient way for the reasonable design of small‐sized particles with well‐defined heterojunctions on hollow nanostructures for high‐efficiency microwave absorption.

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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