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Nanoscale thermal AFM of polymers: Transient heat flow effects

机译:聚合物的纳米级热原子力显微镜:瞬态热流效应

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Thermal transport around the nanoscale contact area between the heated atomic force microscopy (AFM) probe tip and the specimen under investigation is a central issue in scanning thermal microscopy (SThM). Polarized light microscopy and AFM imaging of the temperature-induced crystallization of poly(ethylene terephthalate) (PET) films in the region near the tip were used in this study to unveil the lateral heat transport. The radius of the observed lateral surface isotherm at 133 °C ranged from 2.2 ± 0.5 to 18.7 ± 0.5 μm for tip-polymer interface temperatures between 200 and 300 °C with contact times varying from 20 to 120 s, respectively. In addition, the heat transport into polymer films was assessed by measurements of the thermal expansion of poly(dimethyl siloxane) (PDMS) films with variable thickness on silicon supports. Our data showed that heat transport in the specimen normal (z) direction occurred to depths exceeding 1000 μm using representative non-steady-state SThM conditions (i.e., heating from 40 to 180 °C at a rate of 10 °C s~(-1)). On the basis of the experimental results, a 1D steady-state model for heat transport was developed, which shows the temperature profile close to the tip-polymer contact. The model also indicates that ≤1% of the total power generated in the heater area, which is embedded in the cantilever end, is transported into the polymer through the tip-polymer contact interface. Our results complement recent efforts in the evaluation and improvement of existing theoretical models for thermal AFM, as well as advance further developments of SThM for nanoscale thermal materials characterization and/or manipulation via scanning thermal lithography (SThL).
机译:加热的原子力显微镜(AFM)探针尖端与所研究样品之间的纳米级接触区域周围的热传输是扫描热显微镜(SThM)的中心问题。在这项研究中,使用偏光显微镜和原子力显微镜对尖端附近区域的聚对苯二甲酸乙二醇酯(PET)薄膜的温度诱导结晶进行了成像,以揭示横向传热。对于尖端聚合物界面温度在200至300°C之间,接触时间分别为20至120 s的情况,在133°C下观察到的侧面等温线的半径范围为2.2±0.5至18.7±0.5μm。另外,通过测量在硅载体上具有可变厚度的聚(二甲基硅氧烷)(PDMS)膜的热膨胀来评估向聚合物膜中的热传递。我们的数据表明,在具有代表性的非稳态SThM条件下(即以10°C s〜(-的速度从40°C加热到180°C),在法向(z)方向上发生的热传递深度超过1000μm 1))。根据实验结果,建立了一个用于热传递的一维稳态模型,该模型显示了靠近尖端聚合物接触的温度分布。该模型还表明,嵌入在悬臂端的加热器区域中产生的总功率的≤1%通过尖端-聚合物接触界面传输到聚合物中。我们的结果补充了对热原子力显微镜现有理论模型的评估和改进方面的最新努力,以及通过纳米热材料表征和/或通过扫描热光刻(SThL)处理的SThM的进一步开发。

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