Key Laboratory of Marine Materials and Related Technologies, Key Laboratory of Marine Materials and Protective Technologies of Zhejiang Province, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, People's Republic of China.
Nanotechnology. 2017 Nov 24;28(47):475602. doi: 10.1088/1361-6528/aa8e3d.
Due to their high thermal conductivity and insulation performance, boron nitride nanosheets (BNNS) have great promise to fabricate thermal management equipment for application in power electronics. The liquid-phase exfoliation route has been regarded as the most commonly used approach to produce single and few-layered BNNS for many research fields. However, this process takes a long time, and the production yield is extremely low. In this work, an efficient technique to obtain few-layered (mostly < 5 layers), high-yield (∼33%), and plane-defect-free BNNS by the combination of liquid N (L-N) gasification and liquid exfoliation was developed. The as-obtained BNNS suspensions could be vacuum filtered to make a thermal conductive film named a BNNS heat spreader which possessed a superior thermal conductivity of 61.2 W m K at room temperature. In addition, we also proved that the thermal conductivity of the BNNS heat spreader increased with the increase of density, creating an approach for fine tuning the thermal property of this heat spreader.
由于氮化硼纳米片(BNNS)具有较高的导热性和绝缘性能,因此有望用于制造用于电力电子设备的热管理设备。液相剥离法已被认为是最常用于生产各种研究领域中单层和少数层 BNNS 的方法。然而,这个过程需要很长时间,而且产量极低。在这项工作中,我们开发了一种有效的技术,通过液态氮(L-N)气化和液相剥离相结合,获得少层(大多<5 层)、高产率(~33%)和无平面缺陷的 BNNS。所得 BNNS 悬浮液可以通过真空过滤制成一种导热膜,称为 BNNS 热扩散器,在室温下具有 61.2 W m K 的优异导热系数。此外,我们还证明 BNNS 热扩散器的导热系数随密度的增加而增加,为精细调整这种热扩散器的热性能提供了一种方法。