Lu Wenjiang, Deng Qixuan, Liu Minsu, Ding Baofu, Xiong Zhiyuan, Qiu Ling
Tsinghua Shenzhen International Graduate School (TSIGS), Tsinghua University, Shenzhen, 518055, People's Republic of China.
Monash Suzhou Research Institute (MSRI), Monash University, Suzhou, 215000, People's Republic of China.
Nanomicro Lett. 2023 Nov 20;16(1):25. doi: 10.1007/s40820-023-01236-w.
Hexagonal boron nitride nanosheets (BNNSs) exhibit remarkable thermal and dielectric properties. However, their self-assembly and alignment in macroscopic forms remain challenging due to the chemical inertness of boron nitride, thereby limiting their performance in applications such as thermal management. In this study, we present a coaxial wet spinning approach for the fabrication of BNNSs/polymer composite fibers with high nanosheet orientation. The composite fibers were prepared using a superacid-based solvent system and showed a layered structure comprising an aramid core and an aramid/BNNSs sheath. Notably, the coaxial fibers exhibited significantly higher BNNSs alignment compared to uniaxial aramid/BNNSs fibers, primarily due to the additional compressive forces exerted at the core-sheath interface during the hot drawing process. With a BNNSs loading of 60 wt%, the resulting coaxial fibers showed exceptional properties, including an ultrahigh Herman orientation parameter of 0.81, thermal conductivity of 17.2 W m K, and tensile strength of 192.5 MPa. These results surpassed those of uniaxial fibers and previously reported BNNSs composite fibers, making them highly suitable for applications such as wearable thermal management textiles. Our findings present a promising strategy for fabricating high-performance composite fibers based on BNNSs.
六方氮化硼纳米片(BNNSs)具有卓越的热性能和介电性能。然而,由于氮化硼的化学惰性,它们以宏观形式进行自组装和排列仍然具有挑战性,从而限制了它们在热管理等应用中的性能。在本研究中,我们提出了一种同轴湿法纺丝方法,用于制备具有高纳米片取向的BNNSs/聚合物复合纤维。复合纤维是使用基于超强酸的溶剂体系制备的,呈现出一种层状结构,包括芳纶芯和芳纶/BNNSs鞘层。值得注意的是,与单轴芳纶/BNNSs纤维相比,同轴纤维表现出显著更高的BNNSs排列,这主要是由于在热拉伸过程中,芯鞘界面处施加了额外的压缩力。当BNNSs的负载量为60 wt%时,所得同轴纤维表现出优异的性能,包括高达0.81的超高赫尔曼取向参数、17.2 W m K的热导率和192.5 MPa的拉伸强度。这些结果超过了单轴纤维和先前报道的BNNSs复合纤维,使其非常适合用于可穿戴热管理纺织品等应用。我们的研究结果为制备基于BNNSs的高性能复合纤维提供了一种有前景的策略。