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Construction of Dual-Shell Mo(2)C/C Microsphere towards Efficient Electromagnetic Wave Absorption

Carbon-based carbides have attracted tremendous attention for electromagnetic energy attenuation due to their adjustable dielectric properties, oxidation resistance, and good chemical stability. Herein, we reasonably regulate the growth of dopamine hydrochloride on the surface of the Mo-glycerate (M...

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Detalles Bibliográficos
Autores principales: Deng, Xuesong, Wang, Yahui, Ma, Lifang, Li, Zhigang, Chen, Zongsheng, Lv, Xiangyin, Chang, Yajing, Liu, Yi, Shi, Jiaming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738143/
https://www.ncbi.nlm.nih.gov/pubmed/36498829
http://dx.doi.org/10.3390/ijms232314502
Descripción
Sumario:Carbon-based carbides have attracted tremendous attention for electromagnetic energy attenuation due to their adjustable dielectric properties, oxidation resistance, and good chemical stability. Herein, we reasonably regulate the growth of dopamine hydrochloride on the surface of the Mo-glycerate (Mo-GL) microsphere and then transform the resultant Mo-polydopamine (Mo-PD) microsphere into a dual-shell Mo(2)C/C (DS-Mo(2)C/C) microsphere in a high-temperature pyrolysis process under an inert atmosphere. It is found that the pyrolysis temperature plays an important role in the graphitization degree of the carbon matrix and internal architecture. The fabrication of a dual-shell structure can be propitious to the optimization of impedance matching, and the introduction of Mo(2)C nanoparticles also prompts the accumulation of polarization loss. When the pyrolysis temperature reaches 800 °C, the optimized composite of DS-Mo(2)C/C-800 exhibits good EM absorption performance in the frequency range of 2.0–18.0 GHz. DS-Mo(2)C/C-800′s qualified bandwidth can reach 4.4 GHz at a matching thickness of 1.5 mm, and the integrated qualified bandwidth (QBW) even exceeds 14.5 GHz with a thickness range of 1.5–5.0 mm. The positive effects of the dual-shell structure and Mo(2)C nanoparticles on EM energy attenuation may render the DS-Mo(2)C/C microsphere as a promising candidate for lightweight and broad bandwidth EM absorption materials in the future.