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在 SiBCN 陶瓷气凝胶中原位形成 TiCN 相,使其在 1800°C 下具有优异的热稳定性和结构稳定性。

In Situ Formation of the TiCN Phase in SiBCN Ceramic Aerogels Enabling Superior Thermal and Structural Stability up to 1800 °C.

机构信息

Key Laboratory of Advanced Ceramics and Machining Technology of Ministry of Education, School of Materials Science and Engineering, Tianjin University, Tianjin 300350, China.

Shenzhen Institute of Information Technology, Shenzhen 518172, China.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 8;15(9):12221-12231. doi: 10.1021/acsami.2c22601. Epub 2023 Feb 24.

Abstract

Ceramic aerogels show excellent thermal insulation and functional performance for their unique nanoporous structure. However, conventional ceramic aerogels often undergo structural collapse and performance deterioration in high-temperature environments due to sintering, crystallization, and/or phase transition. Here, we designed a TiCN/SiBCN ceramic aerogel in which the TiCN phase was in situ formed through a carbothermal reaction during pyrolysis. Benefiting from its unique pearl-necklace-like structure, the TiCN/SiBCN aerogel exhibits a high specific surface area (248 m/g), a low thermal conductivity (0.08 W/m·K), and a considerable compressive strength (2.2 MPa). The formation of a stable TiCN phase endows the aerogel with significant resistance to thermal decomposition and crystallization up to 1800 °C. Moreover, the TiCN/SiBCN aerogel retains high surface area and low thermal conductivity after thermal treatment, indicative of the stability and reliability of the nanoporous structure. The TiCN/SiBCN ceramic aerogel with superior thermal and structural stability is an ideal candidate for structural and functional applications in high-temperature environments.

摘要

陶瓷气凝胶因其独特的纳米多孔结构而表现出优异的隔热和功能性能。然而,由于烧结、结晶和/或相变,传统的陶瓷气凝胶在高温环境下经常会发生结构塌陷和性能恶化。在这里,我们设计了一种 TiCN/SiBCN 陶瓷气凝胶,其中 TiCN 相通过热解过程中的碳热反应原位形成。得益于其独特的珍珠项链状结构,TiCN/SiBCN 气凝胶具有高比表面积(248 m/g)、低热导率(0.08 W/m·K)和相当高的压缩强度(2.2 MPa)。稳定的 TiCN 相的形成赋予气凝胶在高达 1800°C 的温度下具有显著的抗热分解和抗结晶能力。此外,TiCN/SiBCN 气凝胶在热处理后仍保持高比表面积和低热导率,表明纳米多孔结构的稳定性和可靠性。具有优异热稳定性和结构稳定性的 TiCN/SiBCN 陶瓷气凝胶是高温环境下结构和功能应用的理想候选材料。

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