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Three-dimensional heterostructured reduced graphene oxide-hexagonal boron nitride-stacking material for silicone thermal grease with enhanced thermally conductive properties

  • Weijie Liang
  • , Xin Ge
  • , Jianfang Ge
  • , Tiehu Li
  • , Tingkai Zhao
  • , Xunjun Chen
  • , Mingchang Zhang
  • , Jianye Ji
  • , Xiaoyan Pang
  • , Ruoling Liu
  • Northwestern Polytechnical University Xian
  • Zhongkai University of Agriculture and Engineering

科研成果: 期刊稿件文章同行评审

54 引用 (Scopus)

摘要

The thermally conductive properties of silicone thermal grease enhanced by hexagonal boron nitride (hBN) nanosheets as a filler are relevant to the field of lightweight polymer-based thermal interface materials. However, the enhancements are restricted by the amount of hBN nanosheets added, owing to a dramatic increase in the viscosity of silicone thermal grease. To this end, a rational structural design of the filler is needed to ensure the viable development of the composite material. Using reduced graphene oxide (RGO) as substrate, three-dimensional (3D) heterostructured reduced graphene oxide-hexagonal boron nitride (RGO-hBN)-stacking material was constructed by self-assembly of hBN nanosheets on the surface of RGO with the assistance of binder for silicone thermal grease. Compared with hBN nanosheets, 3D RGO-hBN more effectively improves the thermally conductive properties of silicone thermal grease, which is attributed to the introduction of graphene and its phonon-matching structural characteristics. RGO-hBN/silicone thermal grease with lower viscosity exhibits higher thermal conductivity, lower thermal resistance and better thermal management capability than those of hBN/silicone thermal grease at the same filler content. It is feasible to develop polymer-based thermal interface materials with good thermal transport performance for heat removal of modern electronics utilising graphene-supported hBN as the filler at low loading levels.

源语言英语
文章编号938
期刊Nanomaterials
9
7
DOI
出版状态已出版 - 7月 2019

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