Junling Liu, Lei Wang, Mengqiu Huang, Hao Zhu, Wenbin You, Chongyun Liang, Zhengchen Wu, Renchao Che
Magnetic-carbon composites, as functional materials, present significant challenges in understanding the mechanism by which magnetic particle distribution influences their electromagnetic (EM) properties. This study innovatively proposes a melamine-induced surface magnetic regulation strategy, successfully constructing a composite microsphere system with tunable microwave absorption (MA) performance. By precisely controlling the amount of melamine added, the distribution of magnetic nanoparticles (NPs) on the carbon microspheres was accurately regulated, thereby achieving customized space distribution and optimizing impedance EM properties. Reduced magnetic Co NPs further catalyzed the formation of a graphitized carbon layer from polyvinylpyrrolidone. Meanwhile, the introduction of melamine further modulated the Co NPs growth in turn, resulting in their spatial distribution along the interior, surface, and exterior of the microspheres. Finally, Co@C-CNTs-2 composites with optimized magnetic particles distribution exhibit excellent MA performance, achieving a minimum reflection loss value (RLmin) of -32.48 dB and excellent effective absorption bandwidth (EAB) ~ 5.2 GHz at a 1.8 mm thickness. The synergistic effect of dielectric and magnetic loss is realized through the surface magnetization strategy, which provides a new strategy for the design of high-performance EM wave absorption materials.