Wu Kai, Wang Jiemin, Liu Dingyao, Lei Chuxin, Liu Dan, Lei Weiwei, Fu Qiang
Key Laboratory for Soft Chemistry and Functional Materials of Ministry of Education, Department of Polymer Science and Engineering, School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.
College of Polymer Science and Engineering, Sichuan University, Chengdu, 610065, P. R. China.
Adv Mater. 2020 Feb;32(8):e1906939. doi: 10.1002/adma.201906939. Epub 2020 Jan 16.
Polymer-based thermal management materials have many irreplaceable advantages not found in metals or ceramics, such as easy processing, low density, and excellent flexibility. However, their limited thermal conductivity and unsatisfactory resistance to elevated temperatures (<200 °C) still prevent effective heat dissipation during applications with high-temperature conditions or powerful operation. Therefore, herein highly thermoconductive and thermostable polymer nanocomposite films prepared by engineering 1D aramid nanofiber (ANF) with worm-like microscopic morphologies into rigid rod-like structures with 2D boron nitride nanosheets (BNNS) are reported. With no coils or entanglements, the rigid polymer chain enables a well-packed crystalline structure resulting in a 20-fold (or greater) increase in axial thermal conductivity. Additionally, strong interfacial interactions between the weaved ANF rod and the stacked BNNS facilitate efficient heat flux through the 1D/2D configuration. Hence, unprecedented in-plane thermal conductivities as high as 46.7 W m K can be achieved at only 30 wt% BNNS loading, a value of 137% greater than that of a worm-like ANF/BNNS counterpart. Moreover, the thermally stable nanocomposite films with light weight (28.9 W m K /10 (kg m )) and high strength (>100 MPa, 450 °C) enable effective thermal management for microelectrodes operating at temperatures beyond 200 °C.
基于聚合物的热管理材料具有许多金属或陶瓷所没有的不可替代的优点,如易于加工、低密度和优异的柔韧性。然而,它们有限的热导率和对高温(<200°C)的不令人满意的耐受性仍然阻碍了在高温条件或强大运行的应用过程中的有效散热。因此,本文报道了通过将具有蠕虫状微观形态的一维芳纶纳米纤维(ANF)设计成与二维氮化硼纳米片(BNNS)形成的刚性棒状结构来制备高导热和热稳定的聚合物纳米复合薄膜。刚性聚合物链没有线圈或缠结,能够形成排列良好的晶体结构,导致轴向热导率提高20倍(或更高)。此外,编织的ANF棒与堆叠的BNNS之间的强界面相互作用促进了通过一维/二维结构的高效热通量。因此,在仅30 wt%的BNNS负载量下,就可以实现高达46.7 W m K的前所未有的面内热导率,该值比蠕虫状ANF/BNNS对应物高137%。此外,具有轻质(28.9 W m K /10 (kg m ))和高强度(>100 MPa,450°C)的热稳定纳米复合薄膜能够对在200°C以上温度下运行的微电极进行有效的热管理。