4.8 Article

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

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 51, Pages 57391-57400

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c18373

Keywords

graphene film; carbon nanotube; polydopamine; reinforcement; thermal conductivity

Funding

  1. Chinese National Natural Science Fund [11632004, U1864208, 11902056]
  2. Key Program for International Science and Technology Cooperation Projects of the Ministry of Science and Technology of China [2016YFE0125900]
  3. National Science and Technology Major Project [2017-VII-0011-0106]
  4. Science and Technology Planning Project of Tianjin [20ZYJDJC00030]
  5. Key Program of Research and Development of Hebei Province [202030507040009]
  6. Fund for Innovative Research Groups of Natural Science Foundation of Hebei Province [A2020202002]
  7. Key Project of Natural Science Foundation of Tianjin [S20ZDF077]
  8. China Postdoctoral Science Foundation [2020M680842, 2019M653334]

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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 GgPDA-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(3), electrical conductivity of 6.7 X 10(5) S.m(-1), in-plane thermal conductivity of 1597 W.m(-1).K-1, and through-plane thermal conductivity of 2.65 Wm(-1).K-1 , which were 2.24, 1.44, 3.16, 1.46, 1.15, and 3.90 times that of the pure GFs, respectively.

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