Su Kai-Han, Su Cherng-Yuh, Chi Po-Wei, Chandan Prem, Cho Cheng-Ta, Chi Wan-Yu, Wu Maw-Kuen
Institute of Mechatronic Engineering, National Taipei University of Technology, 1, Section 3, Zhongxiao E. Road, Taipei 106, Taiwan.
Institute of Physics, Academia Sinica, 128, Section 2, Academia Road, Taipei 115, Taiwan.
Materials (Basel). 2021 Jan 6;14(2):238. doi: 10.3390/ma14020238.
Thermal management has become one of the crucial factors in designing electronic equipment and therefore creating composites with high thermal conductivity is necessary. In this work, a new insight on hybrid filler strategy is proposed to enhance the thermal conductivity in Thermoplastic polyurethanes (TPU). Firstly, spherical aluminium oxide/hexagonal boron nitride (ABN) functional hybrid fillers are synthesized by the spray drying process. Then, ABN/TPU thermally conductive composite material is produced by melt mixing and hot pressing. Then, ABN/TPU thermally conductive composite material is produced by melt mixing and hot pressing. Our results demonstrate that the incorporation of spherical hybrid ABN filler assists in the formation of a three-dimensional continuous heat conduction structure that enhances the thermal conductivity of the neat thermoplastic TPU matrix. Hence, we present a valuable method for preparing the thermal interface materials (TIMs) with high thermal conductivity, and this method can also be applied to large-scale manufacturing.
热管理已成为电子设备设计中的关键因素之一,因此制备具有高导热性的复合材料是必要的。在这项工作中,提出了一种关于混合填料策略的新见解,以提高热塑性聚氨酯(TPU)的导热性。首先,通过喷雾干燥工艺合成了球形氧化铝/六方氮化硼(ABN)功能性混合填料。然后,通过熔融共混和热压制备了ABN/TPU导热复合材料。我们的结果表明,球形混合ABN填料的加入有助于形成三维连续热传导结构,从而提高纯热塑性TPU基体的导热性。因此,我们提出了一种制备高导热性热界面材料(TIMs)的有价值方法,该方法也可应用于大规模制造。