4.7 Article

Evolution of the novel C/SiO2/SiC ternary aerogel with high specific surface area and improved oxidation resistance

期刊

CHEMICAL ENGINEERING JOURNAL
卷 330, 期 -, 页码 1022-1034

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2017.08.052

关键词

C/SiO2/SiC ternary aerogel; Heat treatment; Structural evolution; Thermal conductivity; Oxidation resistance

资金

  1. Industry Program of Science and Technology Support Project of Jiangsu Province [BE2014128]
  2. Prospective Joint Research Program of Jiangsu Province [BY2015005-01]
  3. Major Program of Natural Science Fund in Colleges and Universities of Jiangsu Province [15KJA430005]
  4. Aeronautical Science Foundation of China [201452T4001]
  5. Ministry of Education of China [IRT_15R35]
  6. Jiangsu Collaborative Innovation Center for Advanced Inorganic Function Composites
  7. Priority Academic Program Development of Jiangsu Higher Education Institutions
  8. Brand Major Program Development of Jiangsu Higher Education Institutions [PPZY2015B128]
  9. Graduate research and innovation projects in Jiangsu Province

向作者/读者索取更多资源

A novel C/SiO2/SiC ternary aerogel is derived from catechol-formaldehyde/silica hybrid aerogel (CF/SiO2) via a one-step sol-gel method followed by carbonization and carbothermal reduction processes under flowing argon. The effects of the carbon/silica molar ratios on the physicochemical properties of the C/SiO2 binary and C/SiO2/SiC ternary aerogel are investigated. The mechanism of the textural and structural evolution for the novel C/SiO2/SiC ternary aerogel is further discussed based on the experimental results and the calculated Gibbs free energy changes at different SiO partial pressure. The SiC layer is first formed on the surface of the composite aerogel via the solid-vapor reaction at 1400 degrees C while SiC nanoparticles form at 1500 degrees C. The C/SiO2/SiC ternary aerogel possesses a rather high specific surface area (746.87 m(2)/g), a high micropore volume (0.2279 cm(3)/g) and a high porosity (89.10%). The oxidation resistance is improved for 100 degrees C when compared with the carbon based aerogel. The ternary aerogel obtains a high compressive strength (1.86 MPa) and a low thermal conductivity (0.053 W/m*K), which is suitable for high efficient thermal insulation uses both in inert and oxidative atmosphere.

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