Liu Pengfei, Li Xiaofeng, Min Peng, Chang Xiyuan, Shu Chao, Ding Yun, Yu Zhong-Zhen
Beijing Key Laboratory of Advanced Functional Polymer Composites, Beijing University of Chemical Technology, Beijing, 100029, People's Republic of China.
State Key Laboratory of Organic-Inorganic Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, People's Republic of China.
Nanomicro Lett. 2020 Nov 11;13(1):22. doi: 10.1007/s40820-020-00548-5.
Lamellar-structured graphene aerogels with vertically aligned and closely stacked high-quality graphene lamellae are fabricated. The superior thermally conductive capacity of the aerogel endows epoxy with a high through-plane thermal conductivity of 20.0 W m K at 2.30 vol% of graphene content. The nacre-like structure endows the epoxy composite with enhanced fracture toughness.
Although thermally conductive graphene sheets are efficient in enhancing in-plane thermal conductivities of polymers, the resulting nanocomposites usually exhibit low through-plane thermal conductivities, limiting their application as thermal interface materials. Herein, lamellar-structured polyamic acid salt/graphene oxide (PAAS/GO) hybrid aerogels are constructed by bidirectional freezing of PAAS/GO suspension followed by lyophilization. Subsequently, PAAS monomers are polymerized to polyimide (PI), while GO is converted to thermally reduced graphene oxide (RGO) during thermal annealing at 300 °C. Final graphitization at 2800 °C converts PI to graphitized carbon with the inductive effect of RGO, and simultaneously, RGO is thermally reduced and healed to high-quality graphene. Consequently, lamellar-structured graphene aerogels with superior through-plane thermal conduction capacity are fabricated for the first time, and its superior through-plane thermal conduction capacity results from its vertically aligned and closely stacked high-quality graphene lamellae. After vacuum-assisted impregnation with epoxy, the resultant epoxy composite with 2.30 vol% of graphene exhibits an outstanding through-plane thermal conductivity of as high as 20.0 W m K, 100 times of that of epoxy, with a record-high specific thermal conductivity enhancement of 4310%. Furthermore, the lamellar-structured graphene aerogel endows epoxy with a high fracture toughness, ~ 1.71 times of that of epoxy. [Image: see text]
The online version of this article (10.1007/s40820-020-00548-5) contains supplementary material, which is available to authorized users.
制备出了具有垂直排列且紧密堆叠的高质量石墨烯薄片的层状结构石墨烯气凝胶。该气凝胶卓越的热传导能力赋予环氧树脂在石墨烯含量为2.30体积%时高达20.0W/(m·K)的高面内热导率。仿珍珠层结构赋予环氧树脂复合材料增强的断裂韧性。
尽管导热石墨烯片在提高聚合物的面内热导率方面很有效,但所得的纳米复合材料通常表现出较低的面内热导率,限制了它们作为热界面材料的应用。在此,通过对聚酰胺酸盐/氧化石墨烯(PAAS/GO)悬浮液进行双向冷冻,随后冻干,构建了层状结构的聚酰胺酸盐/氧化石墨烯(PAAS/GO)混合气凝胶。随后,PAAS单体聚合成聚酰亚胺(PI),而GO在300℃热退火过程中转化为热还原氧化石墨烯(RGO)。在2800℃进行最终石墨化,在RGO的诱导作用下将PI转化为石墨化碳,同时,RGO被热还原并愈合为高质量石墨烯。因此,首次制备出了具有卓越面内热传导能力的层状结构石墨烯气凝胶,其卓越的面内热传导能力源于其垂直排列且紧密堆叠的高质量石墨烯薄片。在用环氧树脂进行真空辅助浸渍后,所得的石墨烯含量为2.30体积%的环氧树脂复合材料表现出高达20.0W/(m·K)的出色面内热导率,是环氧树脂的100倍,具有创纪录的4310%的高比热导率增强。此外,层状结构的石墨烯气凝胶赋予环氧树脂高断裂韧性,约为环氧树脂的1.71倍。[图片:见正文]
本文的在线版本(10.1007/s40820-020-00548-5)包含补充材料,可供授权用户使用。