Green fabrication of fully bio-based poly (vinyl alcohol)/phytic acid composite aerogels with robust 3D networks for sustainable thermal insulation and fire safety
Article
| Article Title | Green fabrication of fully bio-based poly (vinyl alcohol)/phytic acid composite aerogels with robust 3D networks for sustainable thermal insulation and fire safety |
|---|---|
| ERA Journal ID | 214253 |
| Article Category | Article |
| Authors | Gao, Suliang, Huo, Siqi, Wang, Ruiping, Xu, Miaojun, Li, Sheng and Li, Bin |
| Journal Title | Surfaces and Interfaces |
| Journal Citation | 81 |
| Article Number | 108453 |
| Number of Pages | 12 |
| Year | 2026 |
| Publisher | Elsevier |
| Place of Publication | Netherlands |
| ISSN | 2468-0230 |
| Digital Object Identifier (DOI) | https://doi.org/10.1016/j.surfin.2026.108453 |
| Web Address (URL) | https://www.sciencedirect.com/science/article/pii/S2468023026000404 |
| Abstract | The development of sustainable thermal insulation materials that combine light weight, high strength, and fire retardancy is essential to support global carbon neutrality goals. Herein, fully bio-based polyvinyl alcohol/phytic acid (PVA/PA) composite aerogels were fabricated through an environmentally benign refrigerator-assisted freezing process without the use of toxic solvents. The strong reactivity of bio-based phytic acid enabled the formation of a robust micro-nano three-dimensional (3D) network, yielding an aerogel with low density (0.075 g cm–3), high porosity (94.21%), and ultralow thermal conductivity (33.1 mW·m–1·K–1). Benefiting from its micro-nano 3D network, the aerogel exhibited excellent mechanical robustness, with compressive strength and specific modulus increasing by 125.7% and 194.5%, respectively. Due to the formation of intrinsic intumescent flame retardant (IFR) system, the aerogel achieved an extremely high limiting oxygen index (LOI) of 41.9% and a UL 94 V–0 rating (self-extinguishing time of only 1.8 s) with significantly reduced heat and smoke release during combustion. Furthermore, a solvent-free thermal chemical vapor deposition (CVD) treatment imparted durable hydrophobicity (water contact angle = 145.6°). This work provides a green and scalable strategy for producing multifunctional bio-based aerogels with great potential for high-performance and sustainable thermal insulation applications. |
| Keywords | Bio-based polyvinyl alcohol; Phytic acid; Composite aerogel; Thermal insulation; Fire safety |
| Contains Sensitive Content | Does not contain sensitive content |
| ANZSRC Field of Research 2020 | 401609. Polymers and plastics |
| Byline Affiliations | Northeast Forestry University, China |
| School of Engineering | |
| Centre for Future Materials |
https://research.usq.edu.au/item/100xx5/green-fabrication-of-fully-bio-based-poly-vinyl-alcohol-phytic-acid-composite-aerogels-with-robust-3d-networks-for-sustainable-thermal-insulation-and-fire-safety
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