Liu Zeyu, Wu Jianfeng, Xu Wenzhe, Tariq Muhammad Rizwan, Zhang Baoliang
School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, 710072, China.
Xi'an Key Laboratory of Functional Organic Porous Materials, Northwestern Polytechnical University, Xi'an, 710129, China.
Small. 2024 Sep;20(36):e2402000. doi: 10.1002/smll.202402000. Epub 2024 May 16.
This work reports on the preparation of uniform vesicle-structural carbon spheres doped with heteroatoms of N, P, and S, with the pore sizes strictly controlled by the hard templates of monodisperse submicron SiO spheres. The uniformly doped vesicular carbon microspheres are obtained in three steps: Stöber hydrolysis for the SiO; in situ polymerization for the immobilization; and alkaline etching after carbonization. The size of the vesicles can be easily adjusted by regulating the particle size of the submicron SiO spheres, which has a significant effect on its electromagnetic wave (EMW) absorption performance. Compared with microspheres with pore sizes of 180 and 480 nm, when the vesicle aperture is 327 nm, with only 5.5 wt.% filling load and 1.9 mm thickness, the material shows the best EMW absorption behavior with the effective absorption bandwidth (EAB) covers the entire Ku band (6.32 GHz) and the minimum reflection loss (RL) of -36.10 dB, suggesting the optimized pore size of the microspheres can significantly improve the overall impedance matching of the material and achieve broadband wave absorption. This work paves the way for the enhancement of EMW absorption properties of porous material by optimizing the pore size of uniform apertures while maintaining their composition.
本文报道了通过单分散亚微米SiO球体的硬模板严格控制孔径,制备掺杂N、P和S杂原子的均匀囊泡结构碳球。通过三步获得均匀掺杂的囊泡状碳微球:SiO的Stöber水解;用于固定的原位聚合;以及碳化后的碱性蚀刻。通过调节亚微米SiO球体的粒径可以轻松调节囊泡的尺寸,这对其电磁波(EMW)吸收性能有显著影响。与孔径为180和480nm的微球相比,当囊泡孔径为327nm时,仅填充5.5wt.%且厚度为1.9mm时,该材料表现出最佳的EMW吸收行为,有效吸收带宽(EAB)覆盖整个Ku波段(6.32GHz),最小反射损耗(RL)为-36.10dB,表明微球的优化孔径可以显著改善材料的整体阻抗匹配并实现宽带吸波。这项工作为通过优化均匀孔径的孔隙率同时保持其组成来提高多孔材料的EMW吸收性能铺平了道路。