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THERMAL CONDUCTANCE OF NANOPARTICLES: A STUDY OF PHONON TRANSPORT IN FUNCTIONALIZED NANODIAMOND SUSPENSIONS

机译:纳米粒子的热敏电流:官能化纳米胺悬架中的声子输送研究

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Nanoparticle additives, with their anomalous thermal conductivity, have attracted attention in research and industry as a novel mode of enhancing the heat transfer mediums. Most studies conducted on nanoparticle suspensions in liquids, pastes, or composites at present have relied on constitutive relations using properties of the bulk substance and of the nanoparticle to explain the effective thermal conductivity. In order to utilize nanoparticles in real world engineering applications, chemical functionalization of the surface of the nanoparticle is frequently employed, either to suspend in liquid applications or to stabilize in arrays. In this study, we have sought to explain the underlying mechanisms of thermal conductivity enhancement taking into consideration the nanoscale effects, such as phonon transport in the nanoparticle coupled with vibrational modes of the surface functional molecules, in order to tailor the functional groups not only for suspension stability but also for minimizing Kapitza resistance at the surface of the nanoparticle. Density functional theory simulations in SIESTA and equilibrium transport theory analysis via GOLLUM2 were used in tandem to evaluate the thermal transport at the nanoparticle to surface ligand junction. By treating the nanoparticle surface and the polymer or acid coating as distinct homogeneous substrates, a model for thermal conductivity becomes more tractable.
机译:纳米粒子添加剂具有异常的导热性,引起了研究和工业的注意力作为增强传热介质的新模式。目前在液体,糊剂或复合材料中对纳米颗粒悬浮液进行的大多数研究依赖于使用散装物质和纳米颗粒的性质来解释有效导热性的本构关系。为了利用现实世界工程应用中的纳米颗粒,经常使用纳米粒子表面的化学官能化,以悬浮在液体应用中或稳定在阵列中。在这项研究中,我们试图考虑到纳米粒子的纳米粒子的纳米粒子效果,例如与表面功能分子的振动模式相结合的纳米级效应来解释导热率增强的潜在机制,以便不仅定制官能团悬浮稳定性,但也可以最小化纳米粒子表面的Kapitza电阻。串联使用胶瘤和均衡器均衡和平衡运输理论分析的密度函数理论模拟,以评价纳米粒子的热传输到表面配体结。通过将纳米颗粒表面和聚合物或酸涂层作为不同的均匀基板,热导率的模型变得更加易无。

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