Mikaeeli Ameneh, Korte Dorota, Cabrera Humberto, Chomicki Dariusz, Dziczek Dariusz, Kharchenko Oksana, Song Peng, Liu Junyan, Wieck Andreas D, Pawlak Michal
Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Torun, Grudziadzka 5, 87-100 Torun, Poland.
Chair of Applied Solid-State Physics, Faculty of Physics and Astronomy, Ruhr-University Bochum, Universitaetsstrasse 150, D-44780 Bochum, Germany.
Materials (Basel). 2023 Sep 20;16(18):6312. doi: 10.3390/ma16186312.
Measurement of thermal properties of thin films is challenging. In particular, thermal characterization is very difficult in semi-transparent samples. Here, we use two photothermal methods to obtain information about the thermal diffusivity as well as thermal conductivity of azoheteroarene functionalized polymer thin layers. The photothermal beam deflection (PBD) method is employed to gather data directly on thermal conductivity and thermal diffusivity, while the thermal lens (TL) method is employed to measure the effective thermal diffusivity. Consequently, the thermal diffusivity of the layers is indirectly estimated from the effective thermal diffusivity using a well-established theoretical relationship. Despite the utilization of distinct methods, our study reveals a remarkable consistency in the highly accurate results obtained from both approaches. This remarkable agreement reaffirms the reliability and mutual compatibility of the employed methods, highlighting their shared ability to provide accurate and congruent outcomes.
薄膜热性能的测量具有挑战性。特别是,在半透明样品中进行热表征非常困难。在这里,我们使用两种光热方法来获取有关偶氮杂芳烃功能化聚合物薄层的热扩散率和热导率的信息。采用光热光束偏转(PBD)方法直接收集热导率和热扩散率的数据,而采用热透镜(TL)方法测量有效热扩散率。因此,利用一个成熟的理论关系,从有效热扩散率间接估计层的热扩散率。尽管使用了不同的方法,但我们的研究表明,两种方法获得的高精度结果具有显著的一致性。这种显著的一致性再次证实了所采用方法的可靠性和相互兼容性,突出了它们共同提供准确和一致结果的能力。