4.7 Article

Synergistic enhanced thermal conductivity of polydimethylsiloxane composites via introducing SCF and hetero-structured GB@rGO hybrid fillers

Journal

ADVANCED COMPOSITES AND HYBRID MATERIALS
Volume 5, Issue 3, Pages 1756-1768

Publisher

SPRINGERNATURE
DOI: 10.1007/s42114-021-00414-x

Keywords

Thermal interface materials; Thermal conductivity; Polymer composites; Spatial confining forced network assembly; Synergistic effect

Funding

  1. National Natural Science Foundation of China [52003019]
  2. Natural Science Foundation of Beijing Municipality [2204090]
  3. Talents Introduction Project in Beijing University of Chemical Technology [buctrc201909]
  4. Opening Project of State Key Laboratory of Molecular Engineering of Polymers (Fudan University) [k2021-14]

Ask authors/readers for more resources

In this study, a short carbon fiber/glass bubble coated reduced graphite oxide/polydimethylsiloxane (SCF/GB@rGO/PDMS) composite with outstanding comprehensive performances was fabricated using spatial confining forced network assembly method (SCFNA). The composite exhibited high thermal conductivity, excellent electrical conductivity, and superior mechanical properties. In thermal interface material tests, the composite sample showed significantly higher heat transfer capacity compared to commercial thermal grease.
With the fast development of high integration of electronic devices, the problem of heat accumulation has become increasingly prominent. The demand for thermal interface materials (TIMs) with high thermal conductivity (lambda) is increasing for effectively solving the problem of heat transfer between heat source and heat sink. In this work, we report a short carbon fiber/glass bubble coated reduced graphite oxide/polydimethylsiloxane (SCF/GB@rGO/PDMS) composite with outstanding comprehensive performances fabricated by spatial confining forced network assembly method (SCFNA). Based on our earlier experience, we select a constant content of 30 wt% SCFS, while the GB@rGO contents altered from 0 to 6 wt% to investigate its effect on thermal conductivity enhancement. The lambda of SCF(30 wt%)/GB@rGO(1 wt%)/PDMS composite with 0.1-mm thickness can reach 23.415 W/m.K, which is 85.72 times higher than pure PDMS. In addition, the PDMS composites also have superior electrical conductivity (1330 S/m) and excellent mechanical properties (similar to 90% elongation at break, and bend, twist, fold available). In the TIM tests, compared with commercial thermal grease, our composite sample presented obviously higher heat transfer capacity. Overall, our PDMS composites are of great prospect as a flexible TIM with ultrahigh thermal conductivity for the highly efficient elimination of heat from electronic equipment.

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