ACS Applied Polymer Materials· 2026Q1
Hydrophobic, Fire–Resistant, and Compressible Aramid Nanofiber Aerogels Enabled by In Situ Polysiloxane Cross-Linking
- 0citations
- Q1SCImago
- 2026year
Short summary
A new aramid nanofiber aerogel achieves mechanical robustness, superelasticity (96.7% recovery after 100 cycles), and fire resistance (LOI=33) via in situ polysiloxane cross-linking, retaining 92% strength after flame exposure.
AI-generated from the title and abstract; the full text is not read.
Key points
- Developed a mechanically robust, hydrophobic, and fire-resistant aramid nanofiber aerogel using in situ polysiloxane cross-linking.
- Achieved ultralow density (4.62–9.48 mg cm–3) and superelasticity with 96.7% height recovery after 100 compression cycles.
- Demonstrated excellent fire resistance (LOI=33) and retained 92% compressive strength post-combustion due to ceramization into a stable barrier.
- Showcased practical applicability in simulated burning oil spills with high absorption (60–180 g g–1) and rapid self-extinguishing (<30 s).
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Aramid nanofiber (ANF) aerogels are promising candidates for thermal protection and structural applications; however, their practical implementation remains substantially constrained by the intrinsic trade–off between mechanical robustness and fire–resistant functionality. In this study, a mechanically robust, highly hydrophobic, and fire–resistant hybrid aerogel was developed using a green high–pressure homogenization process coupled with in situ polysiloxane cross-linking. Through the construction of a rigid–flexible interpenetrating network, the resulting aerogel overcomes the inherent fragility associated with conventional physical entanglements while achieving an ultralow density of 4.62–9.48 mg cm–3, pronounced superelasticity (96.7% height recovery and 79% modulus retention after 100 cycles), and excellent fire resistance (LOI = 33). Notably, the aerogel exhibits remarkable structural and functional integrity following combustion because in situ ceramization converts the polysiloxane network into a thermally stable Si–O–Si/Si–C barrier, enabling retention of 92% of its compressive strength while preserving substantial surface hydrophobicity, as evidenced by a water contact angle of 132.7° even after direct flame exposure. To demonstrate its practical applicability to fire–prone oil–spill scenarios, the aerogel displays synergistic adsorption and flame–retardant performance in simulated burning oil spills, with a high absorption capacity of 60–180 g g–1 and rapid self–extinguishing behavior (<30 s). These findings establish a versatile design strategy for engineering multifunctional aerogels that integrate mechanical resilience, fire safety, and post–combustion structural integrity.
The authors' abstract, as published at the source. ACS Applied Polymer Materials, 2026 · DOI ↗
The rest is in the Pofolia app
Takeaways and questions to the paper; new summaries every day for your field. Free.
Sign in on the web to openField: Surfaces, Coatings and Films
Surfaces, Coatings and FilmsMaterials Science