4.4 Article

Thermal stability and pyrolysis characteristics of MTMS aerogels prepared in pure water

Journal

JOURNAL OF NANOPARTICLE RESEARCH
Volume 22, Issue 10, Pages -

Publisher

SPRINGER
DOI: 10.1007/s11051-020-05062-8

Keywords

MTMS aerogels; Thermal stability; Oxidation kinetic; Thermodynamic; Pyrolysis process; Thermal hazard

Funding

  1. National Natural Science Foundation of China [51904336]
  2. Natural Science Foundation of Hunan Province [2020JJ4714]
  3. Fundamental Research Funds for the Central Universities [202501003, 202045001]
  4. InnovationDriven Project of Central South University [2018CX025]
  5. Independent Exploration and Innovation Project for Graduate Students of Central South University [2020zzts704]

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Silica aerogel (SA) is a nanoporous material and has attracted increasing attention in the field of thermal insulation in recent years. In this work, the thermal stability and pyrolysis characteristics of the methyltrimethoxysilane (MTMS) silica aerogel (MSA) prepared in pure water were investigated experimentally. The MSA shows a high thermal stability with the onset and peak temperature (T-onset and T-peak) about 417 degrees C and 476 degrees C, respectively, in the pyrolysis process. The oxidation kinetics reveals that the pyrolysis of MSA can be divided into three stages with the average apparent activation energy (E) of each stage being 382.8 kJ/mol, 364.4 kJ/mol, and 328.9 kJ/mol, respectively. The pre-exponential factor (A) has the same tendency with the E. The TG-FTIR analysis demonstrates that the CO2 and H2O are the main volatiles during the pyrolysis process and all of them increase against the temperature. It is further observed that the production of CO2 presents a linear increase, and the H2O shows an obvious two-stage form along with the temperature. Compared with other hydrophobic SAs, the MSA has a larger T-onset and T-peak and much larger E, indicating better thermal safety. The research outcomes provide a technical guide to analyze the thermal pyrolysis of hydrophobic SA and put a new insight to reduce their thermal hazards, which is beneficial to the development of higher-performance nanoporous silica aerogels for the thermal insulation field.

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