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大尺寸取向石墨片用于可扩展热能收集的高性能导热相变复合材料。

High-Performance Thermally Conductive Phase Change Composites by Large-Size Oriented Graphite Sheets for Scalable Thermal Energy Harvesting.

机构信息

Research Center of Solar Power & Refrigeration, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, P. R. China.

University of Michigan-Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, Shanghai, 200240, P. R. China.

出版信息

Adv Mater. 2019 Dec;31(49):e1905099. doi: 10.1002/adma.201905099. Epub 2019 Oct 17.

Abstract

Efficient thermal energy harvesting using phase-change materials (PCMs) has great potential for cost-effective thermal management and energy storage applications. However, the low thermal conductivity of PCMs (K ) is a long-standing bottleneck for high-power-density energy harvesting. Although PCM-based nanocomposites with an enhanced thermal conductivity can address this issue, achieving a higher K (>10 W m K ) at filler loadings below 50 wt% remains challenging. A strategy for synthesizing highly thermally conductive phase-change composites (PCCs) by compression-induced construction of large aligned graphite sheets inside PCCs is demonstrated. The millimeter-sized graphite sheet consists of lateral van-der-Waals-bonded and oriented graphite nanoplatelets at the micro/nanoscale, which together with a thin PCM layer between the sheets synergistically enhance K in the range of 4.4-35.0 W m K at graphite loadings below 40.0 wt%. The resulting PCCs also demonstrate homogeneity, no leakage, and superior phase change behavior, which can be easily engineered into devices for efficient thermal energy harvesting by coordinating the sheet orientation with the thermal transport direction. This method offers a promising route to high-power-density and low-cost applications of PCMs in large-scale thermal energy storage, thermal management of electronics, etc.

摘要

利用相变材料(PCM)进行高效热能收集在具有成本效益的热能管理和能量存储应用方面具有巨大的潜力。然而,PCM 的低导热系数(K)是高功率密度能量收集的长期瓶颈。虽然具有增强导热系数的基于 PCM 的纳米复合材料可以解决这个问题,但在填充负载低于 50wt%的情况下实现更高的 K(>10W m K)仍然具有挑战性。本文展示了一种通过在 PCM 内部压缩诱导构建大尺寸取向石墨片来合成高热导率相变复合材料(PCC)的策略。毫米级的石墨片由横向范德华键合和微/纳米尺度上取向的石墨纳米片组成,与片层之间的薄 PCM 层协同作用,可在 40wt%以下的石墨负载下将 K 提高到 4.4-35.0 W m K 的范围内。所得 PCC 还表现出均匀性、无泄漏和优异的相变行为,通过协调片层取向与热传递方向,可以将其轻松设计到用于高效热能收集的器件中。这种方法为 PCM 在大规模热能存储、电子设备热管理等领域的高功率密度和低成本应用提供了一条有前途的途径。

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