Journal Article10.1002/PC.24666
Graphene nanoplatelet-silica hybrid epoxy composites as electrical insulation with enhanced thermal conductivity
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TL;DR: In this paper, a new class of hybrid filler, namely a masterbatch of graphene nanoplatelets (GNPs) and a standard filler like silica, was proposed to enhance thermal conductivity of pure epoxy.
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Abstract: The efficient management of heat is a key issue when considering the performance of electrical devices. To reduce the probability of their failure an effective heat dissipation should be ensured. The thermal conductivity of pure epoxy is low and can be improved through the addition of fillers. Graphene has been considered as an adequate filler, due to its excellent thermal conductivity. However, graphene-based composites also show a high electrical conductivity, which limits their application as an electrical insulation considerably. The presented work shows that it is possible to enhance thermal conductivity through the incorporation of a new class of hybrid filler, namely a masterbatch of graphene nanoplatelets (GNPs) and a standard filler like silica. This unique structural design combines the advantages of both, GNPs and silica powder, resulting in composites that not only show high thermal conductivity, but also preserve electrical insulation functionality. A modified processing method leads to the improvement of thermal conductivity. GNPs-silica hybrid epoxy composites with only 2 wt% of GNPs reached 1.54 W/mK, whereas the volume resistivity remained at the level of 1015 Ω cm. The unique scientific aspect, namely temperature dependence of thermal conductivity, was studied. The presented novel hybrid composites show great potential in applications requiring electrical insulation with enhanced thermal conductivity in high voltage devices. POLYM. COMPOS., 39:E1682–E1691, 2018.
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Citations
A review of electrical and thermal conductivities of epoxy resin systems reinforced with carbon nanotubes and graphene-based nanoparticles
Seyed Rasoul Mousavi,Sara Estaji,Hediyeh Kiaei,Mohammad Mansourian-Tabaei,Sasan Nouranian,Seyed Hassan Jafari,Holger Ruckdäschel,Mohammad Arjmand,Hossein Ali Khonakdar +8 more
TL;DR: In this article , the authors provide an overview of the last decade's advances in research on improving the thermal and electrical conductivities of EP resin systems modified with CNT, Gr, their derivatives, and hybrids.
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Rational design, synthesis, and application of silica/graphene-based nanocomposite: A review
TL;DR: In this paper, the synthesis strategy of SiO2/G-based composites is highlighted, which includes growing silica layers on graphene nanosheets to form sandwich structures, growing Silica spheres on graphene nano-heets, and wrapping graphene layers on silica spheres.
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Improvement of electrical and material properties of epoxy resin/ aluminum nitride nanocomposites for packaging materials
TL;DR: In this paper, the influence of aluminum nitride (AlN) nanoparticles on the electrical and material properties of epoxy resin (EP) composites with different concentrations of nano-AlN fillers is analyzed by a field emission scanning electron microscope (FESEM).
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Effect of various carbon nanofillers and different filler aspect ratios on the thermal conductivity of epoxy matrix nanocomposites
Junjie Chen,Xuhui Gao,Wenya Song +2 more
TL;DR: In this article, the effect of various carbon nanofillers on the thermal conductivity of epoxy matrix composites was studied with special emphasis on the relationship between filler aspect ratio and composite thermal properties.
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Extremely high thermal conductivity of graphene: Prospects for thermal management applications in nanoelectronic circuits
Suchismita Ghosh,Irene Calizo,Desalegne Teweldebrhan,Evghenii P. Pokatilov,Denis L. Nika,Alexander A. Balandin,Wenzhong Bao,Feng Miao,Chun Ning Lau +8 more
TL;DR: In this paper, the thermal conductivity of graphene suspended across trenches in Si∕SiO2 wafer was investigated using a noncontact technique based on micro-Raman spectroscopy.
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TL;DR: Graphene is a two-dimensional (2D) material with over 100-fold anisotropy of heat flow between the in-plane and out-of-plane directions.
Thermal properties of graphene: Fundamentals and applications
TL;DR: Graphene is a two-dimensional (2D) material with over 100-fold anisotropy of heat flow between the in-plane and out-of-plane directions as mentioned in this paper.