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用于制备具有增强热导率的新型形状稳定相变复合材料的氮化硼和多壁碳纳米管的多元素协同效应

Multielement Synergetic Effect of Boron Nitride and Multiwalled Carbon Nanotubes for the Fabrication of Novel Shape-Stabilized Phase-Change Composites with Enhanced Thermal Conductivity.

作者信息

Xia Yongpeng, Li Qiuting, Ji Rong, Zhang Huanzhi, Xu Fen, Huang Pengru, Zou Yongjin, Chu Hailiang, Lin Xiangcheng, Sun Lixian

机构信息

School of Material Science & Engineering, Guilin University of Electronic Technology, 1# Jinji Road, Guilin 541004, P.R. China.

Guangxi Key Laboratory of Information Materials and Guangxi Collaborative Innovation Center of Structure and Property for New Energy and Materials, Guilin University of Electronic Technology, Guilin 541004, P.R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Sep 16;12(37):41398-41409. doi: 10.1021/acsami.0c11002. Epub 2020 Sep 1.

DOI:10.1021/acsami.0c11002
PMID:32820892
Abstract

Shape-stabilized phase-change composites (SSPCCs) have been widely applied for thermal energy storage and thermal management because of their excellent properties. To further improve their thermal conductivity and thermal cycling stability, we successfully designed and synthesized a series of SSPCCs with three-dimensional (3D) thermally conductive networks by exploiting the synergistic effect between one-dimensional (1D) carbon nanotubes (CNTs) and two-dimensional (2D) hexagonal boron nitride (h-BN). The interconnected thermally conductive network composed of h-BN and multiwalled carbon nanotubes (MWCNTs) enhanced the SSPCC performance. The micromorphologies of the prepared SSPCCs revealed that well-dispersed MWCNTs, hydroxylated h-BN, and polyethylene glycol (PEG) molecular chains effectively bonded into a 3D cross-linking structure of the SSPCCs. Moreover, the chemical and crystalline structural and thermal properties and thermal cycling stability of the novel SSPCCs were systematically investigated by various characterization techniques. The presence of a 3D thermally conductive network in the as-synthesized SSPCCs evidently improved the shape stability, phase-change behavior, and thermal stability. Benefiting from the 3D nanostructural uniqueness of SSPCCs, the thermal conductivity of SSPCC-2 was up to 1.15 W m K, which represented a significant enhancement of 239.7% compared with that of pure PEG. Meanwhile, the efficient synergistic effect of h-BN and MWCNTs remarkably enhanced the heat-transfer rate of the SSPCCs. These results demonstrate that the prepared SSPCCs have potential for applications in thermal energy storage and thermal management systems. This study opens a new avenue toward the development of SSPCCs with good comprehensive properties.

摘要

形状稳定相变复合材料(SSPCCs)因其优异的性能而被广泛应用于热能存储和热管理领域。为了进一步提高其热导率和热循环稳定性,我们通过利用一维(1D)碳纳米管(CNTs)和二维(2D)六方氮化硼(h-BN)之间的协同效应,成功设计并合成了一系列具有三维(3D)导热网络的SSPCCs。由h-BN和多壁碳纳米管(MWCNTs)组成的相互连接的导热网络提高了SSPCCs的性能。制备的SSPCCs的微观形貌表明,分散良好的MWCNTs、羟基化的h-BN和聚乙二醇(PEG)分子链有效地结合成SSPCCs的三维交联结构。此外,通过各种表征技术系统地研究了新型SSPCCs的化学结构、晶体结构、热性能和热循环稳定性。合成的SSPCCs中三维导热网络的存在明显改善了形状稳定性、相变行为和热稳定性。受益于SSPCCs的三维纳米结构独特性,SSPCC-2的热导率高达1.15 W m K,与纯PEG相比显著提高了239.7%。同时,h-BN和MWCNTs的有效协同效应显著提高了SSPCCs的传热速率。这些结果表明,制备的SSPCCs在热能存储和热管理系统中具有应用潜力。本研究为开发具有良好综合性能的SSPCCs开辟了一条新途径。

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