期刊文献+

Preparation of highly conductive graphene-coated glass fibers by sol-gel and dip-coating method 被引量:10

Preparation of highly conductive graphene-coated glass fibers by sol-gel and dip-coating method
原文传递
导出
摘要 In order to fabricate highly-conductive glass fibers using graphene as multi-functional coatings, we reported the preparation of graphene-coated glass fibers with high electrical conductivity through solgel and dip-coating technique in a simple way. Graphene oxide (GO) was partially reduced to graphene hydrosol, and then glass fibers were dipped and coated with the reduced GO (rGO). After repeated solgel and dip-coating treatment, the glass fibers were fully covered with rGO coatings, and consequently exhibited increased hydrophobicity and high electrical conductivity. The graphene-coated fibers exhibited good electrical conductivity of 24.9 S/cm, being higher than that of other nanocarbon-coated fibers and commercial carbon fibers, which is mainly attributed to the high intrinsic electrical conductivity of rGO and full coverage of fiber surfaces. The wettability and electrical conductivity of the coated fibers strongly depended on the dip-coating times and coating thickness, which is closely associated with coverage degree and compact structure of the graphene coatings. By virtue of high conductivity and easy operation, the graphene-coated glass fibers have great potential to be used as flexible conductive wires, highly-sensitive sensors, and multi-functional fibers in many fields. In order to fabricate highly-conductive glass fibers using graphene as multi-functional coatings, we reported the preparation of graphene-coated glass fibers with high electrical conductivity through solgel and dip-coating technique in a simple way. Graphene oxide(GO) was partially reduced to graphene hydrosol, and then glass fibers were dipped and coated with the reduced GO(r GO). After repeated solgel and dip-coating treatment, the glass fibers were fully covered with r GO coatings, and consequently exhibited increased hydrophobicity and high electrical conductivity. The graphene-coated fibers exhibited good electrical conductivity of 24.9 S/cm, being higher than that of other nanocarbon-coated fibers and commercial carbon fibers, which is mainly attributed to the high intrinsic electrical conductivity of r GO and full coverage of fiber surfaces. The wettability and electrical conductivity of the coated fibers strongly depended on the dip-coating times and coating thickness, which is closely associated with coverage degree and compact structure of the graphene coatings. By virtue of high conductivity and easy operation, the graphene-coated glass fibers have great potential to be used as flexible conductive wires,highly-sensitive sensors, and multi-functional fibers in many fields.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2019年第9期1989-1995,共7页 材料科学技术(英文版)
基金 financial supports from the National Natural Science Foundation of China (No. 51802317) Department of Science and Technology of Shenyang City (No. 17-231-1-66) Shenyang National Laboratory for Materials Science (No. 2017RP11)
关键词 GRAPHENE Glassfiber SOL-GEL DIP-COATING Coating Electrical CONDUCTIVITY Graphene Glass fiber Sol-gel Dip-coating Coating Electrical conductivity
  • 相关文献

参考文献1

二级参考文献22

  • 1S. Tosti, L. Bettinali, S. Castelli, F. Sarto, S. Scaglione and V. Violante: J. Membr. Sci., 2002, 196, 241.
  • 2Y.S. Cheng and K.L. Yeung: J. Membr. Sci., 1999, 158, 127.
  • 3K.L Yeung, S.C. Christiansen and A. Varma: J. Membr. Sci., 1999, 159, 107.
  • 4D.A.P. Tanaka, M.A.L. Tanco, S. Niwa, Y. Wakui, F. Mizukamia, T. Namba and T.M. Suzuki: J. Membr. Sci., 2005, 247, 21.
  • 5N. Itoh, N. Toumura, T. Tsuji and M. Hongo: Microporous Mesoporous Mat., 2000, 32, 103.
  • 6A. Li, J.R. Grace and C.J. Lim: J. Membr. Sci., 2007, 306, 159.
  • 7H. Bissett, J. Zah and H.M. Krieg: Powder Technol., 2008, 181, 57.
  • 8M. Bosko, D. Yepes, S. Irusta, P. Eloy, P. Ruiz, E.A. Lombardo and L.M. Cornaglia: J. Membr. Sci., 2007, 306, 56.
  • 9I.J. Iwuchukwu and A. Sheth: Chem. Eng. Proc., 2008, 47, 1292.
  • 10B.D. Barker: Surf Technol., 1981, 12, 77.

共引文献2

同被引文献114

引证文献10

二级引证文献16

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