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具有连续相变潜热的三元金属理论可调流体相变材料用于高效热管理。

Fluidic phase-change materials with continuous latent heat from theoretically tunable ternary metals for efficient thermal management.

机构信息

School of Chemistry and Chemical Engineering, Jiangsu Hi-Tech Key Laboratory for Biomedical Research, Southeast University, Nanjing 211189, PR China.

出版信息

Proc Natl Acad Sci U S A. 2022 Aug 2;119(31):e2200223119. doi: 10.1073/pnas.2200223119. Epub 2022 Jul 28.

Abstract

Phase-change materials (PCMs), as important energy storage materials (ESMs), have been widely used in heat dissipation for electronics. However, PCMs are encountering huge challenges since the extremely limited space in microelectronics largely suppresses the applied volume of PCMs, which demands excellent PCMs that can fully utilize the valuable latent heat. This work successfully found a universal strategy toward powerful ESMs from fluidic ternary metals (TMs, GaInSn as a representative TM in this work). TMs exhibit high thermal conductivity (20.3 W m K) and significantly effective latent heat (115 J/cm) and, more important, show continuous phase transition and full utilization of the valuable latent heat. Interestingly, theoretical prediction through ternary phase diagram is carried out to easily tune the melting range, latent heat, and fluidity (viscosity) of TMs to adapt with different service conditions. As a result, thermally conductive silicone grease can be conveniently fabricated via simple shear mixing of TM and polymers. Such thermally conductive TM grease inherits the merits of TM, exhibiting continuous thermal control over daily electronics according to thermal shock performance.

摘要

相变材料(PCM)作为一种重要的储能材料(ESM),已广泛应用于电子产品的散热中。然而,由于微电子学中极其有限的空间极大地限制了 PCM 的应用体积,PCM 正面临着巨大的挑战,这就需要优异的 PCM 来充分利用宝贵的潜热。本工作成功地从流变体三元金属(TM,以 GaInSn 作为本工作中的代表性 TM)中找到了一种通用的策略来制备强大的 ESM。TM 具有高导热系数(20.3 W m K)和显著有效的潜热(115 J/cm),更重要的是,它表现出连续的相变和对有价值的潜热的充分利用。有趣的是,通过三元相图进行理论预测,很容易调整 TM 的熔化范围、潜热和流动性(粘度),以适应不同的使用条件。结果,通过 TM 和聚合物的简单剪切混合,很方便地制备了导热硅脂。这种导热 TM 脂继承了 TM 的优点,根据热冲击性能,对日常电子产品进行连续的热控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f15/9351464/b99401e246c0/pnas.2200223119fig01.jpg

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