Suzhou Institute of Nano-Tech and Nano Bionics, Chinese Academy of Sciences, Suzhou, 215123, China.
Division of Surgery & Interventional Science, University College London, London, NW3 2PF, UK.
Adv Sci (Weinh). 2023 Mar;10(9):e2205762. doi: 10.1002/advs.202205762. Epub 2023 Jan 19.
Aerogel fibers garner tremendous scientific interest due to their unique properties such as ultrahigh porosity, large specific surface area, and ultralow thermal conductivity, enabling diverse potential applications in textile, environment, energy conversion and storage, and high-tech areas. Here, the fabrication methodologies to construct the aerogel fibers starting from nanoscale building blocks are overviewed, and the spinning thermodynamics and spinning kinetics associated with each technology are revealed. The huge pool of material choices that can be assembled into aerogel fibers is discussed. Furthermore, the fascinating properties of aerogel fibers, including mechanical, thermal, sorptive, optical, and fire-retardant properties are elaborated on. Next, the nano-confining functionalization strategy for aerogel fibers is particularly highlighted, touching upon the driving force for liquid encapsulation, solid-liquid interface adhesion, and interfacial stability. In addition, emerging applications in thermal management, smart wearable fabrics, water harvest, shielding, heat transfer devices, artificial muscles, and information storage, are discussed. Last, the existing challenges in the development of aerogel fibers are pointed out and light is shed on the opportunities in this burgeoning field.
气凝胶纤维因其独特的性质,如超高孔隙率、大比表面积和超低导热系数,引起了极大的科学兴趣,在纺织、环境、能源转换和存储以及高科技领域具有多样化的潜在应用。本文综述了从纳米尺度构建气凝胶纤维的方法,并揭示了每种技术相关的纺丝热力学和纺丝动力学。讨论了可以组装成气凝胶纤维的大量材料选择。此外,阐述了气凝胶纤维引人入胜的特性,包括机械、热学、吸附、光学和阻燃性能。接下来,特别强调了气凝胶纤维的纳米限域功能化策略,涉及液体封装的驱动力、固-液界面附着力和界面稳定性。此外,还讨论了在热管理、智能可穿戴织物、水收集、屏蔽、传热装置、人造肌肉和信息存储等方面的新兴应用。最后,指出了气凝胶纤维发展中存在的挑战,并探讨了这一新兴领域的机遇。