Preparation, Properties, and Mechanism of Flame-Retardant Poly(vinyl alcohol) Aerogels Based on the Multi-Directional Freezing Method

Int J Mol Sci. 2022 Dec 14;23(24):15919. doi: 10.3390/ijms232415919.

Abstract

In this work, exfoliated α-zirconium phosphate (α-ZrP) and phosphated cellulose (PCF) were employed to synthesize poly(vinyl alcohol) composite aerogels (PVA/PCF/α-ZrP) with excellent flame retardancy through the multi-directional freezing method. The peak heat release rate (PHRR), total smoke release (TSR), and CO production (COP) of the (PVA/PCF10/α-ZrP10-3) composite aerogel were considerably decreased by 42.3%, 41.4%, and 34.7%, as compared to the pure PVA aerogel, respectively. Simultaneously, the limiting oxygen index (LOI) value was improved from 18.1% to 28.4%. The mechanistic study of flame retardancy showed evidence that PCF and α-ZrP promoted the crosslinking and carbonization of PVA chains to form a barrier, which not only served as insulation between the material and the air, but also significantly reduced the emissions of combustible toxic gases (CO2, CO). In addition, the multi-directional freezing method further improved the catalytic carbonization process. This mutually advantageous strategy offers a new strategy for the preparation of composite aerogels with enhanced fire resistance.

Keywords: flame retardancy; multi-directional freezing; phosphate cellulose; poly(vinyl alcohol) composite aerogel; α-zirconium phosphate.

MeSH terms

  • Animals
  • Catalysis
  • Cellulose
  • Estrus
  • Flame Retardants*
  • Freezing
  • Polyvinyl Alcohol*

Substances

  • Polyvinyl Alcohol
  • Cellulose
  • Flame Retardants

Grants and funding

This work was funded by Science and Technology Program of Sichuan (grant number 2021YFH0031, 2022YFG0270 and 2022YFG0113) and Postgraduate Innovation Fund of Southwest Petroleum University (2021CXYB41).