...
首页> 外文期刊>ACS applied materials & interfaces >Highly Flexible Graphene Derivative Hybrid Film: An Outstanding Nonflammable Thermally Conductive yet Electrically Insulating Material for Efficient Thermal Management
【24h】

Highly Flexible Graphene Derivative Hybrid Film: An Outstanding Nonflammable Thermally Conductive yet Electrically Insulating Material for Efficient Thermal Management

机译:高度柔韧的石墨烯衍生物混合膜:用于高效热管理的出色的不易燃导热且电绝缘材料

获取原文
获取原文并翻译 | 示例
           

摘要

In modern society, advanced technology has facilitated the emergence of multifunctional appliances, particularly, portable electronic devices, which have been growing rapidly. Therefore, flexible thermally conductive materials with the combination of properties like outstanding thermal conductivity, excellent electrical insulation, mechanical flexibility, and strong flame retardancy, which could be used to efficiently dissipate heat generated from electronic components, are the demand of the day. In this study, graphite fluoride, a derivative of graphene, was exfoliated into graphene fluoride sheets (GFS) via the ball-milling process. Then, a suspension of graphene oxide (GO) and GFSs was vacuum-filtrated to obtain a mixed mass, and subsequently, the mixed mass was subjected to reduction under the action hydrogen iodide at low temperature to transform the GO to reduced graphene oxide (rGO). Finally, a highly flexible and thermally conductive 30-mu m thick GFS@rGO hybrid film was prepared, which showed an exceptional in-plane thermal conductivity (212 W.m(-1).K-1) and an excellent electrical insulating property (a volume resistivity of 1.1 X 10(11) Omega.cm). The extraordinary in-plane thermal conductivity of the GFS@rGO hybrid films was attributed to the high intrinsic thermal conductivity of the filler components and the highly ordered filler alignment. Additionally, the GFS@rGO films showed a tolerance to bending cycles and high-temperature flame. The tensile strength and Young's modulus of the GFS@rGO films increased with increasing the rGO content and reached a tensile strength of 69.3 MPa and a Young's modulus of 10.2 GPa at 20 wt % rGO. An experiment of exposing the films to high-temperature flame demonstrated that the GFS@rGO films could efficiently prevent fire spreading. The microcombustion calorimetry results indicated that the GFS@rGO had significantly lower heat release rate (HRR) compared to the GO film. The peak HRR of GFS@rGO10 was only 21 W.g(-1) at 323 degrees C, while that of GO was 198 W.g(-1) at 159 degrees C.
机译:在现代社会中,先进的技术促进了多功能电器的出现,特别是便携式电子设备,这一直迅速增长。因此,柔性导热材料具有卓越的导热系数,优异的电绝缘,机械柔韧性和强的阻燃性,可用于有效地散发从电子元件产生的热量,是当天的需求。在该研究中,通过球磨方法将石墨氟化石墨氟化物,石墨烯的衍生物剥离到石墨烯氟化物片(GFS)中。然后,将石墨烯(GO)和GFSS的悬浮液真空过滤,得到混合质量,随后,在低温下在作用氢碘化物下进行混合物质以转化转至还原的石墨烯氧化物(RGO )。最后,制备了高度柔性和导热的30-mu m厚的GFS @ Rgo混合膜,其显示出具有出色的面内导热率(212Wm(-1).k-1)和优异的电绝缘性(a体积电阻率为1.1 x 10(11)ωcm)。 GFS @ rgo混合膜的非平面内导热率归因于填充组分的高固有导热率和高度有序的填充填料。另外,GFS @ Rgo膜显示出弯曲循环和高温火焰的公差。 GFS @ rgo膜的拉伸强度和杨氏模量随着RGO含量的增加而增加,并且达到了69.3MPa的拉伸强度,并且在20wt%Rgo下的10.2GPa的杨氏模量。将薄膜暴露于高温火焰的实验证明了GFS @ Rgo薄膜可以有效地防止火蔓延。微可燃量热法结果表明,与GO膜相比,GFS @ rgo具有显着降低的热释放率(HRR)。 GFS @ Rgo10的峰值HRR在323摄氏度下仅为21 W.g(-1),而Go的Go为198w.g(-1),则为159℃。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号