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April 15, 2026Journal of Non-Crystalline Solids17 citationsOpen Access

A review of thermal hazard formation mechanisms and regulation strategies of hydrophobic silica aerogels

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MLMiao LiuCentral South UniversityZHZhiyu HuoCentral South UniversityQWQiao Wang

Key Points

  • To investigate the formation mechanisms of thermal hazards in hydrophobic silica aerogels and review strategies for enhancing their flame retardancy.
  • Reviewed synthesis methods of hydrophobic silica aerogels (HSA)
  • Analyzed the origins of thermal hazards and flammability
  • Critically evaluated current flame retardant strategies and their effectiveness
  • Outlined future research directions for safer applications in thermal insulation
  • Identified that organic groups contribute to the flammability of HSA
  • Compared effectiveness of various flame retardant strategies
  • Confirmed that modification techniques can improve thermal stability
  • Proposed future research avenues to enhance fire safety in HSA applications

Abstract

• Recent advances in HSA: synthesis, thermal hazards, and flame retardant strategies. • Organic groups introduced by hydrophobic modification are the origin of HSA flammability. • Current strategies to enhance thermal stability and flame retardancy are compared. • Future directions are outlined for safer thermal insulation applications of HSA. Hydrophobic silica aerogels (HSA) are a class of nanoporous materials characterized by low density, high porosity, and ultralow thermal conductivity. Owing to these outstanding properties, HSA have demonstrated great potential as high-performance thermal insulation materials in applications such as building insulation, petrochemical engineering, thermal management for new energy systems, and aerospace. However, with the continuous expansion of their thermal insulation applications, increasing attention has been drawn to the potential thermal hazards introduced by organic moieties grafted during hydrophobic modification. The inherent flammability of HSA severely limits their further application in thermal insulation scenarios with high fire safety requirements. To address this challenge, extensive efforts have been made to investigate the pyrolysis and combustion mechanisms of HSA, which have confirmed that their flammability primarily originates from the introduction of organic groups. Based on this understanding, various strategies, including reducing the content of organic groups, incorporating flame retardants, and applying heat treatment strategy, have been developed to enhance the thermal stability and flame retardancy of HSA. This review systematically summarizes the synthesis methods of HSA, elucidates the origins of their thermal hazards, and critically reviews the current strategies for improving their thermal safety. Furthermore, future research directions are discussed, aiming to provide theoretical guidance and new insights for the safe and efficient application of HSA in thermal insulation fields.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69df2a99e4eeef8a2a6af9bbhttps://doi.org/10.1016/j.jnoncrysol.2026.124109
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