<p>In recent years, ceramic fiber aerogel have been one of the most attractive insulating materials due to its low thermal conductivity, excellent mechanical properties and heat resistance. However, the high radiation heat transfer limits its practical application at high temperatures. In this study, a novel SiO<sub>2</sub>-ZrO<sub>2</sub> fiber aerogel/TiO<sub>2</sub> composite (SZTFAs) was successfully designed and prepared through an air-assisted electrospinning technique in conjunction with the hydrolysis of TiCl<sub>4</sub>. The SZTFAs exhibits anatase TiO<sub>2</sub> nanocoating on the fiber surface. The SZTFAs have low density (14&#xa0;mg/cm<sup>3</sup>), good mechanical properties (up to 80% compressive strain, 105.6 KPa), excellent high temperature stability (1200&#xa0;°C) and fatigue resistance (after 1000 cycles, the maximum stress and Young’s modulus of the SZTFAs remain above 60%) and low thermal conductivity (0.0292&#xa0;W/(m·K)). After 10&#xa0;min of exposure to a butane flame, the backside temperature of the SZTFAs was 165&#xa0;°C, which was approximately 40&#xa0;°C lower than that of the samples without added TiO<sub>2</sub>. Due to the porous layered three-dimensional structure of SiO<sub>2</sub>-ZrO<sub>2</sub> fibers aerogel and TiO<sub>2</sub> nanolayer with shielding infrared radiation, the SZTFAs exhibit excellent heat resistance and thermal insulation properties. This study provides a method for developing ceramic fiber aerogels with excellent thermal insulation and mechanical properties at high temperatures.</p>

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Ultra-light, flame-retardant nano-TiO2 coated silica-zirconia ceramic fiber aerogel for thermal insulation

  • Minhang Han,
  • Mingyuan Hao,
  • Zhuohang Li,
  • Sihao Jian,
  • Chao Ma,
  • Yang Miao

摘要

In recent years, ceramic fiber aerogel have been one of the most attractive insulating materials due to its low thermal conductivity, excellent mechanical properties and heat resistance. However, the high radiation heat transfer limits its practical application at high temperatures. In this study, a novel SiO2-ZrO2 fiber aerogel/TiO2 composite (SZTFAs) was successfully designed and prepared through an air-assisted electrospinning technique in conjunction with the hydrolysis of TiCl4. The SZTFAs exhibits anatase TiO2 nanocoating on the fiber surface. The SZTFAs have low density (14 mg/cm3), good mechanical properties (up to 80% compressive strain, 105.6 KPa), excellent high temperature stability (1200 °C) and fatigue resistance (after 1000 cycles, the maximum stress and Young’s modulus of the SZTFAs remain above 60%) and low thermal conductivity (0.0292 W/(m·K)). After 10 min of exposure to a butane flame, the backside temperature of the SZTFAs was 165 °C, which was approximately 40 °C lower than that of the samples without added TiO2. Due to the porous layered three-dimensional structure of SiO2-ZrO2 fibers aerogel and TiO2 nanolayer with shielding infrared radiation, the SZTFAs exhibit excellent heat resistance and thermal insulation properties. This study provides a method for developing ceramic fiber aerogels with excellent thermal insulation and mechanical properties at high temperatures.