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Mapping nanoscale thermal transfer in-liquid environment - Immersion scanning thermal microscopy

机译:在液体环境中绘制纳米级热传递图-浸没式扫描热显微镜

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摘要

Nanoscale heat transport is of increasing importance as it often defines performance of modern processors and thermoelectric nanomaterials, and affects functioning of chemical sensors and biosensors. Scanning thermal microscopy (SThM) is the leading tool for nanoscale mapping of thermal properties, but it is often negatively affected by unstable tip-surface thermal contacts. While operating SThM in-liquid environment may allow unimpeded thermal contact and open new application areas, it has so far been regarded as impossible due to increased heat dissipation into the liquid, and the perceived reduced spatial thermal resolution. Nevertheless, in this paper we show that such liquid immersion SThM (iSThM) is fully feasible and, while its thermal sensitivity and spatial resolution is somewhat below that of in-air SThM, it has sufficient thermal contrast to detect thermal conductivity variations in few tens of nm thick graphite nanoflake and metal-polymer nanostructured interconnects. Our results confirm that thermal sensing in iSThM can provide nanoscale resolution on the order of 30 nm, that, coupled with the absence of tip snap-in due to the elimination of capillary forces, opens the possibility for nanoscale thermal mapping in liquids, including thermal phenomena in energy storage devices, catalysts and biosystems.
机译:纳米级热传输越来越重要,因为它经常定义现代处理器和热电纳米材料的性能,并影响化学传感器和生物传感器的功能。扫描热显微镜(SThM)是用于热特性纳米级制图的领先工具,但通常受到不稳定的针尖表面热接触的负面影响。虽然在液体中运行SThM环境可能允许畅通无阻的热接触并打开新的应用领域,但由于增加了向液体中的热量散发以及感觉到的空间热分辨率降低,迄今人们认为这是不可能的。然而,在本文中,我们证明了这种液浸式SThM(iSThM)是完全可行的,尽管其热敏性和空间分辨率略低于空气中的SThM,但它具有足够的热对比度以检测数十个导热系数的变化。纳米厚的石墨纳米薄片和金属-聚合物纳米结构互连。我们的结果证实,iSThM中的热感测可以提供30 nm量级的纳米级分辨率,再加上由于消除了毛细作用力而导致没有尖端吸附,这为在液体中进行纳米级热成像提供了可能性,包括热能量存储设备,催化剂和生物系统中的现象。

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