Next generation materials for thermal interface and high density energy storage applications via liquid phase sintering

J. Liu, P. Rottman, S. Dutta, P. Kumar, R. Raj, M. Renavikar, I. Dutta
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引用次数: 12

Abstract

With the continuing increase in power dissipation requirements of electronic devices, there is a need to develop new thermal interface materials (TIM) with much higher thermal conductivity (K) than that available from conventional TIMs. Recently, liquid phase sintering (LPS) has been proposed as a new paradigm for designing next generation composite-solder TIMs with a radically different microstructure from those of conventional solder-TIMs. LPS metallic composites are also attractive as phase change materials (PCM) for thermal energy storage, where the latent heat absorbed by the one of the phases upon melting can be stored for later retrieval and/or conversion to other forms of energy. The principal advantage of metallic PCMs over other materials include: (i) much greater energy storage per unit volume than organic PCMs; and (ii) much higher thermal conductivity than both organics and inorganic salt PCMs, which allow rapid heating and energy capture. This paper presents recent results on the development of metallic TIM and PCMs for energy storage, processed by LPS of a high melting phase (HMP) with a low melting phase (LMP). A discussion of processing issues, resultant properties, and modeling results expounding the benefits of these materials is presented.
通过液相烧结的下一代热界面和高密度储能应用材料
随着电子器件功耗要求的不断提高,需要开发比传统热界面材料具有更高导热系数(K)的新型热界面材料(TIM)。最近,液相烧结(LPS)被提出作为设计下一代复合钎料TIMs的新范式,其微观结构与传统钎料TIMs完全不同。LPS金属复合材料作为相变材料(PCM)也很有吸引力,用于热能储存,其中一个相在熔化时吸收的潜热可以储存起来,供以后回收和/或转换为其他形式的能量。与其他材料相比,金属pcm的主要优势包括:(i)单位体积的能量存储比有机pcm大得多;(ii)导热性比有机和无机盐pcm高得多,可以快速加热和捕获能量。本文介绍了用高熔点(HMP)和低熔点(LMP)的LPS加工的用于储能的金属TIM和pcm的最新进展。讨论了加工问题,所得性质和建模结果,阐述了这些材料的优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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