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具有高达1600℃耐高温性能的基于α-AlO纳米片的双相气凝胶。

Alpha AlO Nanosheet-Based Biphasic Aerogels with High-Temperature Resistance up to 1600 °C.

作者信息

Ji Qiyan, Zhang Li, Jiao Xiuling, Chen Dairong

机构信息

National Engineering Research Center for Colloidal Materials, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, P.R. China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 8;15(5):6848-6858. doi: 10.1021/acsami.2c20272. Epub 2023 Jan 24.

Abstract

Alumina aerogels are desirable for lightweight and highly efficient thermal insulation. However, they are typically constrained by brittleness and structural collapse at high temperatures. The manufacture of alumina aerogels with ultralow thermal conductivity and excellent thermal stability at high temperatures beyond 1300 °C is still challenging. Herein, alumina aerogels with superior ultrahigh-temperature-resistant and thermal insulation were successfully prepared by assembling the α-AlO nanosheets with silica sols as the high-temperature binders. Benefiting from the generation of the mullite-covered alumina biphasic structure, the α-AlO nanosheet-based aerogels (ANSAs) exhibit excellent thermal and chemical stabilities even after calcination at as high as 1600 °C. The ANSAs had a low thermal conductivity (0.029 W·m·K at room temperature), structural stability with a measured compressive strength of 0.6 MPa, and good thermal shock resistance. Furthermore, the 2D α-alumina@mullite core-shell sheets were also prepared as assembly units to construct aerogels (AMSAs). This core-shell structure can improve temperature resistance through inter-lattice suppression under continuous energy input at high temperatures. The AMSAs have a linear shrinkage of only 2.7% after calcination at 1600 °C for 30 min, further improving the temperature resistance, making them an ideal super-insulating material for applications at extremely high temperatures.

摘要

氧化铝气凝胶因其轻质和高效隔热性能而备受青睐。然而,它们通常受限于脆性以及在高温下的结构坍塌。制造在超过1300℃的高温下具有超低导热率和优异热稳定性的氧化铝气凝胶仍然具有挑战性。在此,通过将α-AlO纳米片与作为高温粘合剂的硅溶胶组装,成功制备了具有卓越的超高温耐受性和隔热性能的氧化铝气凝胶。受益于莫来石包覆的氧化铝双相结构的生成,基于α-AlO纳米片的气凝胶(ANSA)即使在高达1600℃的煅烧后仍表现出优异的热稳定性和化学稳定性。ANSA具有低导热率(室温下为0.029W·m·K)、结构稳定性,测得的抗压强度为0.6MPa,以及良好的抗热震性。此外,还制备了二维α-氧化铝@莫来石核壳片作为组装单元来构建气凝胶(AMSA)。这种核壳结构可以通过在高温下连续能量输入下的晶格间抑制来提高耐高温性。AMSA在1600℃煅烧30分钟后线性收缩仅为2.7%,进一步提高了耐高温性,使其成为极高温应用的理想超级隔热材料。

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