期刊文献+

Generation of graphene-based aerogel microspheres for broadband and tunable high-performance microwave absorption by electrospinning-freeze drying process 被引量:12

Generation of graphene-based aerogel microspheres for broadband and tunable high-performance microwave absorption by electrospinning-freeze drying process
原文传递
导出
摘要 Despite recent progress in the synthesis and application of graphene-based aerogels, some challenges such as scalable and cost-effective production, and miniaturization still remain, which hinder the practical application of these materials. Here we report a large-scale electrospinning method to generate graphene-based aerogel microspheres (AMs), which show broadband, tunable and high-performance microwave absorption. Graphene/Fe3O4 AMs with a large number of openings with hierarchical connecting radial microcharmels can be obtained via electrospinning-freeze drying followed by calcination. Importantly, for a given Fe3O4:graphene mass ratio, altering the shape of aerogel monoliths or powders into aerogel microspheres leads to unique electromagnetic wave properties. As expected, the reflection loss of graphene/Fe3O4 AMs-1:1 with only 5 wt.% absorber loading reaches -51.5 dB at 9.2 GHz with a thickness of 4.0 mm and a broad absorption bandwidth (RL 〈-10 dB) of 6.5 GHz. Furthermore, switching to coaxial electrospinning enables the fabrication of SiO2 coatings to construct graphene/Fe3O4@SiO2 core-shell AMs. The coatings influence the electromagnetic wave absorption of graphene/Fe3O4 AMs significantly. In view of these advantages, we believe that this processing technique may be extended to fabricate a wide range of unique graphene-based architectures for functional design and applications. Despite recent progress in the synthesis and application of graphene-based aerogels, some challenges such as scalable and cost-effective production, and miniaturization still remain, which hinder the practical application of these materials. Here we report a large-scale electrospinning method to generate graphene-based aerogel microspheres (AMs), which show broadband, tunable and high-performance microwave absorption. Graphene/Fe3O4 AMs with a large number of openings with hierarchical connecting radial microcharmels can be obtained via electrospinning-freeze drying followed by calcination. Importantly, for a given Fe3O4:graphene mass ratio, altering the shape of aerogel monoliths or powders into aerogel microspheres leads to unique electromagnetic wave properties. As expected, the reflection loss of graphene/Fe3O4 AMs-1:1 with only 5 wt.% absorber loading reaches -51.5 dB at 9.2 GHz with a thickness of 4.0 mm and a broad absorption bandwidth (RL 〈-10 dB) of 6.5 GHz. Furthermore, switching to coaxial electrospinning enables the fabrication of SiO2 coatings to construct graphene/Fe3O4@SiO2 core-shell AMs. The coatings influence the electromagnetic wave absorption of graphene/Fe3O4 AMs significantly. In view of these advantages, we believe that this processing technique may be extended to fabricate a wide range of unique graphene-based architectures for functional design and applications.
出处 《Nano Research》 SCIE EI CAS CSCD 2018年第5期2847-2861,共15页 纳米研究(英文版)
基金 This work was financially supported by the National Natural Science Foundation of China (No. 51573149), the Science and Technology Planning Project of Sichuan Province (No. 2016GZ0224), the Fundamental Research Funds for the Central Universities (No. 2682016CX069) and the Student Research Training Program (No. 2017005).
关键词 electrospun graphene-based aerogel microspheres electromagnetic wave absorption impedance matching ultralow loading content electrospun,graphene-based aerogel microspheres,electromagnetic wave absorption,impedance matching,ultralow loading content
  • 相关文献

参考文献7

二级参考文献58

  • 1Liu, J. W.; Che, R. C.; Chen, H. J.; Zhang, F.; Xia, F.; Wu, Q. S.; Wang, M. Microwave absorption enhancement of multifunctional composite microspheres with spinel Fe304 cores and anatase TiO2 shells. Small 2012, 8, 1214-1221.
  • 2Sun, G. B.; Dong, B. X.; Cao, M. H.; Wei, B. Q.; Hu, C. W. Hierarchical dendrite-like magnetic materials of Fe304, γ-Fe203, and Fe with high performance of microwave absorption. Chem. Mater. 2011, 23, 1587 -1593.
  • 3Song, N.-N.; Ke, Y.-J.; Yang, H.-T.; Zhang, H.; Zhang, X.-Q.; Shen, B.-G.; Cheng, Z.-H. Integrating giant microwave absorption with magnetic refrigeration in one multifunc- tional intermetallic compound of LaFetk6Sik4C0.2Hi.7. Sci. Rep. 2013, 3, 2291.
  • 4Wang, C.; Han, X. J.; Xu, P.; Wang, J. Y.; Du, Y. C.; Wang, X. H.; Qin, W.; Zhang, T. Controlled synthesis of hierarchical nickel and morphology-dependent electromagnetic properties. J. Phys. Chem. C 2010, 114, 3196-3203.
  • 5Cao, M.-S.; Song, W.-L.; Hou, Z.-L., Wen, B.; Yuan, J. The effects of temperature and frequency on the dielectric properties, electromagnetic interference shielding and microwave-absorption of short carbon fiber/silica composites. Carbon 2010, 48, 788-796.
  • 6Che, R. C.; Peng, L.-M.; Duan, X. F., Chen, Q.; Liang, X. L. Microwave absorption enhancement and complex permittivity and permeability of Fe encapsulated within carbon nanotubes. Adw Mater. 2004, 16, 401-405.219-263.
  • 7Liu, L. T.; Flores, M.; Newman, N. Microwave loss in the high-performance dielectric Ba(Znl/3Ta2/3)O3 at 4.2 K. Phys. Rev. Lett. 2012, 109, 257601.
  • 8Xia, F., Liu, J. W., Gu, D., Zhao, P. F.; Zhang, J.; Che, R. C. Microwave absorption enhancement and electron microscopy characterization of BaTiO3 nano-torus. Nanoscale 2011, 3, 3860-3867.
  • 9Guefin, F. Microwave chiral materials: A review of experimental studies and some results on composites with ferroelectric ceramic inclusions. Prog. Electromagn. Res. 1994, 9,.
  • 10Umari, M. H.; Varadan, V. V.; Varadan, V. K. Rotation and dichroism associated with microwave propagation in chiral composite samples. Radio Sci. 1991, 26, 1327-1334.

共引文献87

同被引文献105

引证文献12

二级引证文献45

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部