Polyimide Aerogel Fibers with Controllable Porous Microstructure for Super-Thermal Insulation Under Extreme Environments

Tiantian Xue, Chenyu Zhu, Xueling Feng, Qamar Wali, Wei Fan, Tianxi Liu

Advanced Fiber Materials ›› 2022, Vol. 4 ›› Issue (5) : 1118-1128.

Advanced Fiber Materials ›› 2022, Vol. 4 ›› Issue (5) : 1118-1128. DOI: 10.1007/s42765-022-00145-8
Research Article

Polyimide Aerogel Fibers with Controllable Porous Microstructure for Super-Thermal Insulation Under Extreme Environments

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Abstract

Application of aerogel fibers in thermal insulating garments have sparked a substantial interest. However, achieving a high porosity and low thermal conductivity for aerogel fibers remain challenging, despite the innovative designs of porous structure. Herein, we fabricated lightweight and super-thermal insulating polyimide (PI) aerogel fibers via freeze-spinning by using polyvinyl alcohol (PVA) as a pore regulator. The high affinity of PVA with water enables it to accelerate the ice crystal nucleation, adjust pore formation, and construct a controllable porous structure of PI aerogel fiber. The as-fabricated PI aerogel fiber has a considerable reduced pore size, high porosity (95.6%), improved flexibility and mechanical strength, and can be woven into fabrics. The PI aerogel fabric exhibits low thermal conductivity and excellent thermal insulation in a wide range of temperature (from − 196 to 300 °C). Furthermore, the PI aerogel fabrics can be easily functionalized to expand their applications, such as in intelligent temperature regulation and photothermal conversion. These results demonstrate that the aerogel fibers/fabric are promising materials for next-generation textile materials for personal thermal management.

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Tiantian Xue, Chenyu Zhu, Xueling Feng, Qamar Wali, Wei Fan, Tianxi Liu. Polyimide Aerogel Fibers with Controllable Porous Microstructure for Super-Thermal Insulation Under Extreme Environments. Advanced Fiber Materials, 2022, 4(5): 1118‒1128 https://doi.org/10.1007/s42765-022-00145-8
Funding
National Natural Science Foundation of China(52073053); Shanghai Rising-Star Program(21QA1400300); Shanghai Municipal Education Commission(2021-01-07-00-03-E00108); Science and Technology Commission of Shanghai Municipality(20520741100); Postdoctoral Research Foundation of China(2021M690596)

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