Hierarchical and Orderly Surface Conductive Networks in Yolk–Shell Fe3O4@C@Co/N‐Doped C Microspheres for Enhanced Microwave Absorption

Author:

He Peng1ORCID,Ma Wenjun1ORCID,Xu Jian1,Wang Yizhe1,Cui Zhong‐Kai2,Wei Jie1,Zuo Peiyuan1,Liu Xiaoyun1,Zhuang Qixin1ORCID

Affiliation:

1. Key Laboratory of Advanced Polymer Materials of Shanghai School of Material Science and Engineering East China University of Science and Technology Shanghai 200237 P. R. China

2. School of Basic Medical Sciences Southern Medical University Guangzhou 510515 P. R. China

Abstract

AbstractConstructing the adjustable surface conductive networks is an innovation that can achieve a balance between enhanced attenuation and impedance mismatch according to the microwave absorption mechanism. However, the traditional design strategies remain significant challenges in terms of rational selection and controlled growth of conductive components. Herein, a hierarchical construction strategy and quantitative construction technique are employed to introduce conductive metal–organic frameworks (MOFs) derivatives in the classic yolk–shell structure composed of electromagnetic components and the cavity for remarkable optimized performance. Specifically, the surface conductive networks obtained by carbonized ZIF‐67 quantitative construction, together with the Fe3O4 magnetic core and dielectric carbon layer linked by the cavity, achieve the cooperative enhancement of impedance matching optimization and synergistic attenuation in the Fe3O4@C@Co/N‐Doped C (FCCNC) absorber. This interesting design is further verified by experimental results and simulation calculations. The products FCCNC‐2 yield a distinguished minimum reflection loss of −66.39 dB and an exceptional effective absorption bandwidth of 6.49 GHz, indicating that moderate conduction excited via hierarchical and quantitative design can maximize the absorption capability. Furthermore, the proposed versatile methodology of surface assembly paves a new avenue to maximize beneficial conduction effect and manipulate microwave attenuation in MOFs derivatives.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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