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Continuous Strong Porous Silk Firoin-Based Aerogel Fibers toward Textile Thermal Insulation

机译:连续的坚固的多孔的基于丝白蛋白的气凝胶纤维可实现纺织品隔热

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摘要

Aerogel fiber, with the characteristics of ultra-low density, ultra-high porosity, and high specific surface area, is the most potential candidate for manufacturing wearable thermal insulation material. However, aerogel fibers generally show weak mechanical properties and complex preparation processes. Herein, through firstly preparing a cellulose acetate/polyacrylic acid (CA/PAA) hollow fiber using coaxial wet-spinning followed by injecting the silk fibroin (SF) solution into the hollow fiber, the CA/PAA-wrapped SF aerogel fibers toward textile thermal insulation were successfully constructed after freeze-drying. The sheath (CA/PAA hollow fiber) possesses a multiscale porous structure, including micropores (11.37 ± 4.01 μm), sub-micron pores (217.47 ± 46.16 nm), as well as nanopores on the inner (44.00 ± 21.65 nm) and outer (36.43 ± 17.55 nm) surfaces, which is crucial to the formation of a SF aerogel core. Furthermore, the porous CA/PAA-wrapped SF aerogel fibers have many advantages, such as low density (0.21 g/cm ), high porosity (86%), high strength at break (2.6 ± 0.4 MPa), as well as potential continuous and large-scale production. The delicate structure of multiscale porous sheath and ultra-low-density SF aerogel core synergistically inhibit air circulation and limit convective heat transfer. Meanwhile, the high porosity of aerogel fibers weakens heat transfer and the SF aerogel cellular walls prevent infrared radiation. The results show that the mat composed of these aerogel fibers exhibits excellent thermal insulating properties with a wide working temperature from −20 to 100 °C. Therefore, this SF-based aerogel fiber can be considered as a practical option for high performance thermal insulation.
机译:气凝胶纤维具有超低密度,超高孔隙率和高比表面积的特性,是制造耐磨隔热材料的最有可能的选择。然而,气凝胶纤维通常显示出较弱的机械性能和复杂的制备过程。在此,首先通过使用同轴湿纺法制备醋酸纤维素/聚丙烯酸(CA / PAA)中空纤维,然后将丝素蛋白(SF)溶液注入中空纤维中,将CA / PAA包裹的SF气凝胶纤维朝纺织品方向加热。冷冻干燥后成功地建造了隔热层。护套(CA / PAA中空纤维)具有多尺度的多孔结构,包括微孔(11.37±4.01μm),亚微米孔(217.47±46.16 nm)以及内部(44.00±21.65 nm)和外部的纳米孔(36.43±17.55 nm)表面,这对形成SF气凝胶芯至关重要。此外,多孔的CA / PAA包裹的SF气凝胶纤维具有许多优势,例如低密度(0.21 g / cm),高孔隙率(86%),高断裂强度(2.6±0.4 MPa)以及潜在的连续性和大规模生产。多尺度多孔护套和超低密度SF气凝胶芯的微妙结构可协同抑制空气循环并限制对流传热。同时,气凝胶纤维的高孔隙率削弱了热传递,而SF气凝胶细胞壁可防止红外辐射。结果表明,由这些气凝胶纤维组成的垫层在20至100°C的宽工作温度下具有出色的隔热性能。因此,可以将这种基于SF的气凝胶纤维视为高性能隔热的实用选择。

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