Reduced Graphene Oxide Heterostructured Silver Nanoparticles Significantly Enhanced Thermal Conductivities in Hot-Pressed Electrospun Polyimide Nanocomposites

材料科学 石墨烯 纳米复合材料 聚酰亚胺 氧化物 玻璃化转变 复合材料 质量分数 银纳米粒子 热导率 纳米颗粒 化学工程 聚合物 纳米技术 图层(电子) 工程类 冶金
作者
Yongqiang Guo,Xutong Yang,Kunpeng Ruan,Jie Kong,Mengyao Dong,Jiaoxia Zhang,Junwei Gu,Zhanhu Guo
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:11 (28): 25465-25473 被引量:319
标识
DOI:10.1021/acsami.9b10161
摘要

Graphene presents an extremely ultra-high thermal conductivity, well above other known thermally conductive fillers. However, graphene tends to aggregate easily due to its strong intermolecular π-π interaction, resulting in poor dispersion in the polymer matrix. In this study, silver nanoparticles anchored reduced graphene oxide (Ag/rGO) were first prepared using one-pot synchronous reduction of Ag+ and GO solution via glucose. The thermally conductive (Ag/rGO)/polyimide ((Ag/rGO)/PI) nanocomposites were then obtained via electrospinning the in situ polymerized (Ag/rGO)/polyamide electrospun suspension followed by a hot-press technique. The thermal conductivity (λ), glass transition temperature (Tg), and heat resistance index (THRI) of the (Ag/rGO)/PI nanocomposites all increased with increasing the loading of Ag/rGO fillers. When the mass fraction of Ag/rGO (the weight ratio of rGO to Ag was 4:1) fillers was 15%, the corresponding (Ag/rGO)/PI nanocomposites showed a maximum λ of 2.12 W/(m K). The corresponding Tg and THRI values were also enhanced to 216.1 and 298.6 °C, respectively. Furthermore, thermal conductivities calculated by our established improved thermal conduction model were relatively closer to the experimental results than the results obtained from other classical models.

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