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具有改善的机械性能和平面内热导率的石墨烯/石墨化聚多巴胺/碳纳米管全碳三元复合薄膜

Graphene/Graphitized Polydopamine/Carbon Nanotube All-Carbon Ternary Composite Films with Improved Mechanical Properties and Through-Plane Thermal Conductivity.

作者信息

Zou Rui, Liu Feng, Hu Ning, Ning Huiming, Gong Youkun, Wang Shu, Huang Kaiyan, Jiang Xiaoping, Xu Chaohe, Fu Shaoyun, Li Yuanqing, Yan Cheng

机构信息

State Key Laboratory of Reliability and Intelligence Electrical Equipment, Hebei University of Technology, Tianjin 300401, P.R. China.

National Engineering Research Center for Technological Innovation Method and Tool, and School of Mechanical Engineering, Hebei University of Technology, Tianjin 300401, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 23;12(51):57391-57400. doi: 10.1021/acsami.0c18373. Epub 2020 Dec 10.

Abstract

Graphene films (GFs) are promising ultrathin thermally conductive materials for portable electronic devices because of their excellent thermally conductive property, light weight, high flexibility, and low cost. However, the application of GFs is limited due to their poor mechanical properties and through-plane thermal conductivity. Here, a graphene-(graphitized polydopamine)-(carbon nanotube) (G-gPDA-CNT) all-carbon ternary composite film was fabricated by chemical reduction, carbonization, graphitization, and mechanical compaction of the evaporation-assembled (graphene oxide)-PDA@CNT film. The G-gPDA-CNT film exhibited a uniform all-carbon composite structure in which the components of the graphene, gPDA layers, and CNTs were cross-linked by strong covalent bonds. This unique structure promoted the load transfer and energy dissipation between the components by which the mechanical properties of the G-gPDA-CNT film were substantially improved. Furthermore, electron and phonon transfers were also promoted, greatly improving the electrical and thermal conductivities, especially the through-plane thermal conductivity of the G-gPDA-CNT film. The G-gPDA-CNT film showed a tensile strength of 67.5 MPa, 15.1% ultimate tensile strain, toughness of 6.07 MJ/m, electrical conductivity of 6.7 × 10 S·m, in-plane thermal conductivity of 1597 W·m·K, and through-plane thermal conductivity of 2.65 W·m·K, which were 2.24, 1.44, 3.16, 1.46, 1.15, and 3.90 times that of the pure GFs, respectively.

摘要

石墨烯薄膜(GFs)因其优异的导热性能、轻质、高柔韧性和低成本,是用于便携式电子设备的有前景的超薄导热材料。然而,由于其较差的机械性能和平面内热导率,GFs的应用受到限制。在此,通过对蒸发组装的(氧化石墨烯)-PDA@CNT薄膜进行化学还原、碳化、石墨化和机械压实,制备了一种石墨烯-(石墨化聚多巴胺)-(碳纳米管)(G-gPDA-CNT)全碳三元复合薄膜。G-gPDA-CNT薄膜呈现出均匀的全碳复合结构,其中石墨烯、gPDA层和碳纳米管的组分通过强共价键交联。这种独特的结构促进了组分之间的载荷传递和能量耗散,借此G-gPDA-CNT薄膜的机械性能得到了显著改善。此外,电子和声子传递也得到促进,极大地提高了电导率和热导率,尤其是G-gPDA-CNT薄膜的平面内热导率。G-gPDA-CNT薄膜的拉伸强度为67.5MPa,极限拉伸应变15.1%,韧性为6.07MJ/m,电导率为6.7×10 S·m,平面内热导率为1597W·m·K,平面内热导率为2.65W·m·K,分别是纯GFs的2.24、1.44、3.16、1.46、1.15和3.90倍。

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