Sun Danping, Zou Quan, Wang Yanping, Wang Yujiao, Jiang Wei, Li Fengsheng
National Special Superfine Powder Engineering Research Center, Nanjing University of Science and Technology, Nanjing 210094, China.
Nanoscale. 2014 Jun 21;6(12):6557-62. doi: 10.1039/c3nr06797a.
For the first time, mesoporous Fe3O4@ZnO sphere decorated graphene (GN-pFe3O4@ZnO) composites with uniform size, considerable porosity, high magnetization and extraordinary electromagnetic (EM) wave absorption properties were synthesized by a simple and efficient three-step method. Structure and morphology details were characterized by X-ray diffraction, transmission electron microscopy, high-resolution electron microscopy and field-emission scanning electron microscopy. Electron microscopy images reveal that pFe3O4@ZnO spheres with obvious porous and core-shell structures are uniformly coated on both sides of the GN sheets without significant numbers of vacancies or apparent aggregation. EM wave absorption properties of epoxy containing 30 wt% GN-pFe3O4@ZnO were investigated at room temperature in the frequency region of 0.2-18 GHz. The absorption bandwidth with reflection loss (RL) values less than -10 dB is up to 11.4 GHz, and the minimal RL is almost -40 dB. The intrinsic physical and chemical properties of the materials, the synergy of Fe3O4 and ZnO, and particularly the unique multi-interfaces are fundamental to the enhancement of EM absorption properties. The as-prepared GN-pFe3O4@ZnO composites are shown to be lightweight, have strong absorption, and broad frequency bandwidth EM absorbers.
首次通过一种简单高效的三步法合成了具有均匀尺寸、可观孔隙率、高磁化强度和非凡电磁波吸收性能的介孔Fe3O4@ZnO球形修饰石墨烯(GN-pFe3O4@ZnO)复合材料。通过X射线衍射、透射电子显微镜、高分辨率电子显微镜和场发射扫描电子显微镜对结构和形态细节进行了表征。电子显微镜图像显示,具有明显多孔和核壳结构的pFe3O4@ZnO球体均匀地包覆在GN片的两侧,没有大量空位或明显聚集。在室温下,对含有30 wt% GN-pFe3O4@ZnO的环氧树脂在0.2-18 GHz频率范围内的电磁波吸收性能进行了研究。反射损耗(RL)值小于-10 dB的吸收带宽高达11.4 GHz,最小RL几乎为-40 dB。材料的固有物理和化学性质、Fe3O4和ZnO的协同作用,特别是独特的多界面,是增强电磁波吸收性能的基础。所制备的GN-pFe3O4@ZnO复合材料显示出是轻质、具有强吸收和宽频带的电磁波吸收剂。