Gunya Alexey, Kúdelčík Jozef, Hardoň Štefan, Janek Marián
Department of Physics, Faculty of Electrical Engineering and Information Technology, University of Zilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia.
Department of Astronomy and Astrophysics, Universität Potsdam, Karl-Liebknecht-Straße 24/25, 14476 Potsdam, Germany.
Sensors (Basel). 2025 Jun 29;25(13):4055. doi: 10.3390/s25134055.
This study explores microcomposites' thermodielectric properties-thermal conductivity (keff) and dielectric permittivity (εr)-across filler concentrations from 1 wt% (φ≈0.0035) to 60 wt% (φ≈0.45) spanning the pre- (φ<0.16) and within-percolation threshold (0.16≤φ≤0.29). Thermal measurements were conducted using a newly designed, cost-effective thermal measurement setup. The setup utilised a transient heat pulse methodology with a heater and NTC thermistors, with a precision better than ±0.01 W·m-1·K-1. Dielectric properties were measured using a three-electrode system over a broad frequency and temperature range. The measurements demonstrate an effective thermal conductivity keff of 0.72 W·m-1·K-1 for AlN at φ=0.36 and 0.65 W·m-1·K-1 for wBN already at φ=0.12. Although theoretical models suggest that, considering interfacial Kapitza resistance, it can yield a keff corresponding to approximately 1-3% of the conductivity of pure material filler, the experimental measurements indicate a maximum of around 0.5%. Dielectric measurements show that in comparison to pure polyurethane, the presence of 60% AlN or 40% wBN at 60 °C decreased the loss tangent by 20 times in the condition of a quasistatic electric field.
本研究探索了微复合材料在1 wt%(φ≈0.0035)至60 wt%(φ≈0.45)的填料浓度范围内的热介电性能——热导率(keff)和介电常数(εr),该浓度范围跨越了预渗流阈值(φ<0.16)和渗流阈值范围内(0.16≤φ≤0.29)。热性能测量使用了新设计的、具有成本效益的热测量装置。该装置采用了带有加热器和NTC热敏电阻的瞬态热脉冲方法,精度优于±0.01 W·m-1·K-1。介电性能在宽频率和温度范围内使用三电极系统进行测量。测量结果表明,对于AlN,在φ=0.36时有效热导率keff为0.72 W·m-1·K-1,而对于wBN,在φ=0.12时就已达到0.65 W·m-1·K-1。尽管理论模型表明,考虑到界面卡皮查电阻,其可产生对应于纯材料填料电导率约1 - 3%的keff,但实验测量结果显示最大值约为0.5%。介电测量表明,与纯聚氨酯相比,在60°C的准静态电场条件下,60%的AlN或40%的wBN的存在使损耗角正切降低了20倍。