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“支化状”阻燃功能化石墨烯协同增强环氧/银纳米线复合材料的导热和阻燃性能

Synergetic Improvement in Thermal Conductivity and Flame Retardancy of Epoxy/Silver Nanowires Composites by Incorporating "Branch-Like" Flame-Retardant Functionalized Graphene.

机构信息

National Engineering Research Center for Advanced Polymer Processing Technology , Zhengzhou University , Zhengzhou 450002 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Jun 27;10(25):21628-21641. doi: 10.1021/acsami.8b05221. Epub 2018 Jun 12.

Abstract

The significant fire hazards on the polymer-based thermal interface materials (TIM) used in electronic devices are but often neglected. Also, high filler loading with the incident deterioration of mechanical, thermal, and processing properties limits the further application of the traditional polymer-based TIMs. In this work, a ternary TIMs with epoxy resin (EP) matrix, silver nanowires (AgNWs), and a small amount of flame-retardant functionalized graphene (GP-DOPO) were proposed to address the above questions. Briefly, a facile "branch-like" strategy with a polymer as the backbone and flame-retardant molecule as the branch was first used to functionalize reduced graphene oxide (RGO) toward increasing the flame-retardant grafting ratio and RGO's compatibility in matrix, and the resulted GP-DOPO was then in situ introduced into the EP/AgNW composites. As expected, the incorporation of GP-DOPO (2 wt %) can increase the thermal conductivity to 1.413 W/(m K) at a very low AgNW loading (4 vol %), which is 545 and 56% increments compared to pure EP and EP/AgNW, respectively. The prominent improvement in thermal conductivity was put down to the synergetic effect of AgNW and GP-DOPO, i.e., the improving dispersion and bridging effect for AgNWs by adding GP-DOPO. Moreover, the high flame-retardant grafting amount and the excellent compatibility of GP-DOPO resulted in a strong catalytic charring effect on EP matrix, which further formed a robust protective char layer by combining the AgNW and graphene network. Therefore, the flame retardancy of EP/AgNW was significantly improved by introducing GP-DOPO, i.e., the peak heat release rate, total heat release and total smoke production reduced by 27.0, 32.4, and 30.9% reduction compared to EP/AgNW, respectively.

摘要

电子设备中使用的基于聚合物的热界面材料(TIM)存在显著的火灾隐患,但往往被忽视。此外,高填充量会导致机械、热和加工性能的急剧恶化,限制了传统聚合物基 TIM 的进一步应用。在这项工作中,提出了一种以环氧树脂(EP)为基体、银纳米线(AgNWs)和少量阻燃功能化石墨烯(GP-DOPO)的三元 TIM,以解决上述问题。简而言之,首先使用一种聚合物作为主链和阻燃分子作为支链的简单“支化”策略对还原氧化石墨烯(RGO)进行功能化,以提高阻燃接枝率和 RGO 在基体中的相容性,然后将所得的 GP-DOPO 原位引入到 EP/AgNW 复合材料中。正如预期的那样,在非常低的 AgNW 负载量(4 体积%)下,加入 2wt%的 GP-DOPO 可将导热率提高到 1.413 W/(m·K),与纯 EP 和 EP/AgNW 相比,分别提高了 545%和 56%。导热率的显著提高归因于 AgNW 和 GP-DOPO 的协同效应,即通过添加 GP-DOPO 改善了 AgNW 的分散性和桥接作用。此外,GP-DOPO 具有较高的阻燃接枝量和良好的相容性,对 EP 基体具有很强的催化炭化作用,进一步通过 AgNW 和石墨烯网络形成了坚固的保护性炭层。因此,通过引入 GP-DOPO 显著提高了 EP/AgNW 的阻燃性能,与 EP/AgNW 相比,峰值放热率、总放热量和总烟释放量分别降低了 27.0%、32.4%和 30.9%。

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