Multidimensional Engineering Induced Interfacial Polarization by in‐Situ Confined Growth of MoS2 Nanosheets for Enhanced Microwave Absorption

Author:

Luo Kaicheng1,Xu Chunyang1,Du Yiqian1,Lv Xiaowei1,Yang Xiaofen1,Liu Min1,Zhao Wenxuan1,Zhang Chang1,Lai Yuxiang2,Liu Zhengwang1,Che Renchao134ORCID

Affiliation:

1. Laboratory of Advanced Materials Shanghai Key Lab of Molecular Catalysis and Innovative Materials Academy for Engineering and Technology Fudan University Shanghai 200438 P. R. China

2. Pico Electron Microscopy Center Innovation Institute for Ocean Materials Characterization Center for Advanced Studies in Precision Instruments Hainan University Haikou 570228 China

3. College of Physics Donghua University Shanghai 201620 China

4. School of Materials Science and Engineering Tongji University Shanghai 201804 China

Abstract

AbstractInterface design has enormous potential for the enhancement of interfacial polarization and microwave absorption properties. However, the construction of interfaces is always limited in components of a single dimension. Developing systematic strategies to customize multidimensional interfaces and fully utilize advantages of low‐dimensional materials remains challenging. Two‐dimensional transition metal dichalcogenides (TMDCs) have garnered significant attention owing to their distinctive electrical conductivity and exceptional interfacial effects. In this study, a series of hollow TMDCs@C fibers are synthesized via sacrificial template of CdS and confined growth of TMDCs embedded in the fibers. The complex permittivity of the hollow TMDCs@C fibers can be adjusted by tuning the content of CdS templates. Importantly, the multidimensional interfaces of the fibers contribute to elevating the microwave absorption performance. Among the hollow TMDCs@C fibers, the minimum reflection loss (RLmin) of the hollow MoS2@C fibers can reach −52.0 dB at the thickness of 2.5 mm, with a broad effective absorption bandwidth of 4.56 GHz at 2.0 mm. This work establishes an alternative approach for constructing multidimensional coupling interfaces and optimizing TMDCs as microwave absorption materials.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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