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纳米/微米尺度热场分布:利用加热的原子力显微镜探针进行热解型聚合物的热分解

Nano/Microscale Thermal Field Distribution: Conducting Thermal Decomposition of Pyrolytic-Type Polymer by Heated AFM Probes.

作者信息

Li Bo, Geng Yanquan, Yan Yongda

机构信息

Key Laboratory of Micro-systems and Micro-structures Manufacturing of Ministry of Education, Harbin Institute of Technology, Harbin 150001, China.

Center for Precision Engineering, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Nanomaterials (Basel). 2020 Mar 7;10(3):483. doi: 10.3390/nano10030483.

Abstract

In relevant investigations and applications of the heated atomic force microscope (AFM) probes, the determination of the actual thermal distribution between the probe and the materials under processing or testing is a core issue. Herein, the polyphthalaldehyde (PPA) film material and AFM imaging of the decomposition structures (pyrolytic region of PPA) were utilized to study the temperature distribution in the nano/microscale air gap between heated tips and materials. Different sizes of pyramid decomposition structures were formed on the surface of PPA film by the heated tip, which was hovering at the initial tip-sample contact with the preset temperature from 190 to 220 °C for a heating duration ranging from 0.3 to 120 s. According to the positions of the 188 °C isothermal surface in the steady-state probe temperature fields, precise 3D boundary conditions were obtained. We also established a simplified calculation model of the 3D steady-state thermal field based on the experimental results, and calculated the temperature distribution of the air gap under any preset tip temperature, which revealed the principle of horizontal (<700 nm) and vertical (<250 nm) heat transport. Based on our calculation, we fabricated the programmable nano-microscale pyramid structures on the PPA film, which may be a potential application in scanning thermal microscopy.

摘要

在热原子力显微镜(AFM)探针的相关研究和应用中,确定探针与正在加工或测试的材料之间的实际热分布是一个核心问题。在此,利用聚邻苯二甲醛(PPA)薄膜材料和对分解结构(PPA的热解区域)的AFM成像,来研究加热探针与材料之间纳米/微米尺度气隙中的温度分布。加热探针在与样品初始接触时以190至220°C的预设温度悬停0.3至120秒的加热持续时间,在PPA薄膜表面形成了不同尺寸的金字塔形分解结构。根据稳态探针温度场中188°C等温面的位置,获得了精确的三维边界条件。我们还基于实验结果建立了三维稳态热场的简化计算模型,并计算了在任何预设探针温度下气隙的温度分布,揭示了水平(<700纳米)和垂直(<250纳米)热传输的原理。基于我们的计算,我们在PPA薄膜上制造了可编程的纳米/微米尺度金字塔结构,这在扫描热显微镜中可能具有潜在应用。

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