Direct-write 3D printing of polyimide-silica aerogel composites

被引:0
|
作者
Wang L. [1 ]
Men J. [1 ]
Feng J. [1 ]
Jiang Y. [1 ]
Feng J. [1 ]
机构
[1] Science and Technology on Advanced Ceramic Fibers and Composites Laboratory, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha
关键词
3D printing; aerogel; composite; polyimide; silica;
D O I
10.13801/j.cnki.fhclxb.20230726.001
中图分类号
学科分类号
摘要
The specific geometry has a crucial impact on the function of aerogel materials in application scenarios. However, conventional manufacturing technology remains challenging in the customized shaping of aerogels due to the fragility of aerogels, time-consuming manufacturing cycles, and poor designability of molds. Direct-write 3D printing technology has been applied to achieve the on-demand shaping of aerogels, imparting aerogels with compatible material composition and functional characteristics. In this work, a direct-write 3D printing strategy based on dual-channel intermixing extrusion was proposed to prepare polyimide-silica (OBS) aerogel composites. Benefiting from the efficient fluid diffusion intermixing between inks and catalysts during extrusion processes, chemical imidization solidification can be successfully achieved, and 3D-printed OBS aerogel composites show high structural integrity and high shape fidelity. Depending on the advantages of the spatial assembly of direct-write 3D printing technology, OBS aerogel composites have formed multi-scale morphologies of millimeters, micrometers, and nanometers. In micron scale, the composite structure enables 3D-printed OBS aerogel composites to display excellent mechanical properties (Young's modulus up to 14.4 MPa). Meanwhile, nanoscale pore structure features, such as low density (0.208 g·cm−3), high surface area (373 m2·g−1), and concentrated poren diameter distribution (20-30 nm), impart 3D-printed OBS aerogel composites with excellent thermal insulation performance (thermal conductivity as low as 21.25 mW·m−1·K−1). Although our work only focuses on OBS aerogel composites, the successful implementation of this 3D printing strategy would provide guidelines for additive manufacturing of other aerogel composites. © 2024 Beijing University of Aeronautics and Astronautics (BUAA). All rights reserved.
引用
收藏
页码:1879 / 1889
页数:10
相关论文
共 39 条
  • [1] GURAV J L, JUNG I K, PARK H H, Et al., Silica aerogel: Synthesis and applications[J], Journal of Nanomaterials, 2010, (2010)
  • [2] KISTLER S S., Coherent expanded aerogels and jellies[J], Nature, 127, 3211, (1931)
  • [3] SOLEIMANI DORCHEH A, ABBASI M H., Silica aerogel: Synthesis, properties and characterization[J], Journal of Materials Processing Technology, 199, 1-3, pp. 10-26, (2008)
  • [4] LINHARES T, PESSOA DE AMORIM M T, DURAES L., Silica aerogel composites with embedded fibres: A review on their preparation, properties and applications[J], Journal of Materials Chemistry A, 7, 40, pp. 22768-22802, (2019)
  • [5] LI C D, CHEN Z F, DONG W F, Et al., A review of silicon-based aerogel thermal insulation materials: Performance optimization through composition and microstructure[J], Journal of Non-Crystalline Solids, 553, (2021)
  • [6] ZHANG Ming, Research progress of reinforced SiO<sub>2</sub> aerogel composites, Acta Materiae Compositae Sinica, 37, 11, pp. 2674-2683, (2020)
  • [7] HASAN M A, SANGASHETTY R, ESTHER A M, Et al., Prospect of thermal insulation by silica aerogel: A brief review[J], Journal of the Institution of Engineers (India): Series D, 98, 2, pp. 297-304, (2017)
  • [8] GRONAUER M, FRICKE J., Acoustic properties of microporous SiO<sub>2</sub> aerogel[J], Acta Acustica United with Acustica, 59, 3, pp. 177-181, (1986)
  • [9] DIAZ D D, KUHBECK D, KOOPMANS R J., Stimuli-responsive gels as reaction vessels and reusable catalysts[J], Chemical Society Reviews, 40, 1, pp. 427-448, (2011)
  • [10] TABATA M, ADACHI I, KAWAI H, Et al., Recent progress in silica aerogel Cherenkov radiator[J], Physics Procedia, 37, pp. 642-649, (2012)