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具有可控加工性的用于热管理的石墨烯-石墨混杂环氧复合材料。

Graphene-graphite hybrid epoxy composites with controllable workability for thermal management.

作者信息

Levy Idan, Wormser Eyal Merary, Varenik Maxim, Buzaglo Matat, Nadiv Roey, Regev Oren

机构信息

Department of Chemical Engineering, Ben-Gurion University of the Negev, Beer-Sheva 84105, Israel.

Department of Chemistry, Nuclear Research Center Negev, P.O.B.9001, Beer-Sheva 84190, Israel.

出版信息

Beilstein J Nanotechnol. 2019 Jan 8;10:95-104. doi: 10.3762/bjnano.10.9. eCollection 2019.

Abstract

The substantial heat generation in highly dense electronic devices requires the use of materials tailored to facilitate efficient thermal management. The design of such materials may be based on the loading of thermally conductive fillers into the polymer matrix applied - as a thermal interface material - on the interface between two surfaces to reduce contact resistance. On the one hand, these additives enhance the thermal conductivity of the composite, but on the other hand, they increase the viscosity of the composite and hence impair its workability. This in turn could negatively affect the device-matrix interface. To address this problem, we suggest a tunable composite material comprising a combination of two different carbon-based fillers, graphene nanoplatelets (GNPs) and graphite. By adjusting the GNP:graphite concentration ratio and the total concentration of the fillers, we were able to fine tune the thermal conductivity and the workability of the hybrid polymer composite. To facilitate the optimal design of materials for thermal management, we constructed a 'concentration-thermal conductivity-viscosity phase diagram'. This hybrid approach thus offers solutions for thermal management applications, providing both finely tuned composite thermal properties and workability. We demonstrate the utility of this approach by fabricating a thermal interface material with tunable workability and testing it in a model electronic device.

摘要

高密度电子设备中大量的热产生需要使用经过特殊定制的材料来促进高效的热管理。此类材料的设计可基于将导热填料负载到聚合物基体中,作为热界面材料应用于两个表面之间的界面以降低接触电阻。一方面,这些添加剂提高了复合材料的热导率,但另一方面,它们增加了复合材料的粘度,从而损害了其加工性能。这进而可能对器件 - 基体界面产生负面影响。为了解决这个问题,我们提出了一种可调谐复合材料,它由两种不同的碳基填料——石墨烯纳米片(GNPs)和石墨组合而成。通过调整GNP与石墨的浓度比以及填料的总浓度,我们能够微调杂化聚合物复合材料的热导率和加工性能。为了便于热管理材料的优化设计,我们构建了一个“浓度 - 热导率 - 粘度相图”。这种混合方法因此为热管理应用提供了解决方案,既提供了精细调谐的复合材料热性能,又具备加工性能。我们通过制造一种具有可调谐加工性能的热界面材料并在一个模型电子设备中对其进行测试,证明了这种方法的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/239a/6334801/68fb1ca21639/Beilstein_J_Nanotechnol-10-95-g002.jpg

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