TY - JOUR
T1 - TiO2 nanowire aerogels with interlocking network structure
T2 - Achieving ultra-low density and superior strength for thermal insulation
AU - Luo, Yaxuan
AU - Wang, Yanwei
AU - Liao, Yalong
AU - Qiang, Ruo
AU - Yuan, Ye
AU - Ma, Yu
AU - Sun, Xianxian
AU - Xu, Huibin
AU - Zhang, Enshuang
AU - Li, Yibin
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/3/1
Y1 - 2025/3/1
N2 - The substantial porosity and adaptability of ceramic aerogels render them promising for various applications. Nonetheless, the conventional compromise among volume density, mechanical properties and thermal stability constrains their applicability in specific contexts. In this study, we have developed and synthesized TiO2 nanowire aerogels featuring a three-dimensional interlocking network structure. This design imparts the aerogels with exceptional characteristics, including ultra-lightness, high specific strength, and low thermal conductivity. The ceramic aerogels were synthesized through a straightforward hydrothermal reaction process. The resultant TiO2 nanowire aerogels demonstrate exceptionally low volume densities, reaching values as low as 10 mg/cm3. They exhibit specific strengths up to 11 MPa/(g/cm3) and possess remarkable thermal insulation properties, maintaining mechanical stability across a broad temperature range from −196 to 800 °C. Additionally, they feature an ultra-low thermal conductivity of 0.023 W/(m·K) in air. This study aims to advance the development of innovative designs for high-performance ceramic aerogels, thereby enhancing their applicability across various fields.
AB - The substantial porosity and adaptability of ceramic aerogels render them promising for various applications. Nonetheless, the conventional compromise among volume density, mechanical properties and thermal stability constrains their applicability in specific contexts. In this study, we have developed and synthesized TiO2 nanowire aerogels featuring a three-dimensional interlocking network structure. This design imparts the aerogels with exceptional characteristics, including ultra-lightness, high specific strength, and low thermal conductivity. The ceramic aerogels were synthesized through a straightforward hydrothermal reaction process. The resultant TiO2 nanowire aerogels demonstrate exceptionally low volume densities, reaching values as low as 10 mg/cm3. They exhibit specific strengths up to 11 MPa/(g/cm3) and possess remarkable thermal insulation properties, maintaining mechanical stability across a broad temperature range from −196 to 800 °C. Additionally, they feature an ultra-low thermal conductivity of 0.023 W/(m·K) in air. This study aims to advance the development of innovative designs for high-performance ceramic aerogels, thereby enhancing their applicability across various fields.
KW - Ceramic nanowires aerogels
KW - High specific strength
KW - Hydrothermal reaction
KW - Thermal insulation
KW - Ultralight
UR - https://www.scopus.com/pages/publications/85217640650
U2 - 10.1016/j.cej.2025.160453
DO - 10.1016/j.cej.2025.160453
M3 - 文章
AN - SCOPUS:85217640650
SN - 1385-8947
VL - 507
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 160453
ER -