Bao Yaqian, Lyu Jing, Liu Zengwei, Ding Yi, Zhang Xuetong
Nano Science and Technology Institute, University of Science and Technology of China, Suzhou 215123, China.
Suzhou Institute of Nano-tech and Nano-bionics, Chinese Academy of Sciences, Suzhou 215123, China.
ACS Nano. 2021 Sep 28;15(9):15180-15190. doi: 10.1021/acsnano.1c05693. Epub 2021 Aug 23.
Smart and functional fibers have demonstrated great potentials in a wide range of applications including wearable devices and other high-tech fields, but design and fabrication of smart fibers with manageable structures as well as versatile functions are still a great challenge. Herein, an ingenious bending-stiffness-directed strategy is developed to fabricate smart phase-change fibers with different bending stiffnesses for diverse applications. Specifically, the hydrophobic Kevlar aerogel-confined paraffin wax fibers (PW@H-KAF) are fabricated by employing hydrophobic Kevlar aerogel fibers (H-KAFs) as the porous host and paraffin as the functional guest, where the H-KAF is obtained by applying a two-step process to functionalize Kevlar nanofibers (KNFs) with a special coagulation bath containing a mixture of ethanol and -bromobutane. The prepared PW@H-KAFs exhibit high latent heat (135.1-172 J/g), outstanding thermal cyclic stability and satisfactory mechanical properties (30 MPa in tensile strength and 30% in tensile strain). In addition, the PW@H-KAFs with bending stiffness was lower than the critical one (1.22 × 10 N·m) even in a solid state of paraffin wax exhibits high flexibility, washable performance, and high thermal management capability, showing great potential for smart temperature-regulating fabrics. PW@H-KAFs with a bending stiffness higher than the critical one at a solid state of paraffin wax can be utilized as shape memory materials, attributed to the transition between rigidity and flexibility caused by the phase transition. As a proof of concept, a dynamic gripper is designed based on the PW@H-KAF (400 μm in diameter) for transporting items by gripping in the rigid state and releasing in the flexible state. This work realizes versatile applications with the PW@H-KAFs through the bending stiffness-directed method, providing ideas for the application of phase-change composites.
智能且功能性的纤维在包括可穿戴设备和其他高科技领域在内的广泛应用中展现出了巨大潜力,但设计和制造具有可控结构以及多功能的智能纤维仍然是一项巨大挑战。在此,开发了一种巧妙的基于弯曲刚度导向的策略来制造具有不同弯曲刚度的智能相变纤维,以用于多种应用。具体而言,通过采用疏水性芳纶气凝胶纤维(H-KAF)作为多孔主体,石蜡作为功能客体,制备了疏水性芳纶气凝胶限制石蜡纤维(PW@H-KAF),其中H-KAF是通过两步法用含有乙醇和溴丁烷混合物的特殊凝固浴对芳纶纳米纤维(KNF)进行功能化而获得的。所制备的PW@H-KAF表现出高潜热(135.1 - 172 J/g)、出色的热循环稳定性和令人满意的机械性能(拉伸强度为30 MPa,拉伸应变达30%)。此外,即使在石蜡呈固态时弯曲刚度低于临界值(1.22×10 N·m)的PW@H-KAF也表现出高柔韧性、可洗涤性能和高热管理能力,在智能调温织物方面显示出巨大潜力。在石蜡呈固态时弯曲刚度高于临界值的PW@H-KAF可作为形状记忆材料,这归因于相变引起的刚性和柔韧性之间的转变。作为概念验证,基于直径为400μm的PW@H-KAF设计了一种动态夹具(dynamic gripper),用于在刚性状态下抓取并在柔性状态下释放来运输物品。这项工作通过弯曲刚度导向方法实现了PW@H-KAF的多功能应用,为相变复合材料的应用提供了思路。