Preparation of multifunctional silicone rubber composites with silver-coated phase change microcapsules for advanced thermal management

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Zhenxu Nie , Huan Zhang , Zhaoyu Lu , Letian Zhou , Junyan Wang , Shui Hu , Jingchao Li , Yonglai Lu
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Abstract

The miniaturization of electronic components and logic circuits has led to a significant increase in power consumption and heat generation. To ensure safe and reliable operation, there is an urgent demand for high-performance thermal interface materials (TIM) to facilitate effective heat dissipation. Although phase change materials (PCM) exhibit desirable properties, such as heat storage and temperature control, they face challenges, including low thermal conductivity and potential leakage during utilization. Herein, we prepared graphene oxide (GO) coated n-docosane particles using the Pickering emulsion template method, followed by the deposition of a silver layer on the surface to produce double-shell D-GO@Ag microcapsules, which enhanced the thermal conductivity while preventing leakage. By incorporating these microcapsules into silicone rubber, we successfully developed a highly thermally conductive PDMS/D-GO@25Ag composite, exhibiting a phase change enthalpy of 65.69 J/g and a thermal conductivity of 0.61 W/(m·K), along with excellent compliance properties. When utilized as a TIM, this composite significantly reduces device operating temperatures while maintaining strong stability. This work presents a promising strategy for developing multifunctional, thermally conductive elastomer-based PCM for efficient thermal management.

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来源期刊
Composites Science and Technology
Composites Science and Technology 工程技术-材料科学:复合
CiteScore
16.20
自引率
9.90%
发文量
611
审稿时长
33 days
期刊介绍: Composites Science and Technology publishes refereed original articles on the fundamental and applied science of engineering composites. The focus of this journal is on polymeric matrix composites with reinforcements/fillers ranging from nano- to macro-scale. CSTE encourages manuscripts reporting unique, innovative contributions to the physics, chemistry, materials science and applied mechanics aspects of advanced composites. Besides traditional fiber reinforced composites, novel composites with significant potential for engineering applications are encouraged.
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