首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >The thermal conductivity of polymethylsilsesquioxane aerogels and xerogels with varied pore sizes for practical application as thermal superinsulators
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The thermal conductivity of polymethylsilsesquioxane aerogels and xerogels with varied pore sizes for practical application as thermal superinsulators

机译:具有不同孔径的聚甲基倍半硅氧烷气凝胶和干凝胶的热导率,可实际用作热超级绝热材料

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摘要

High-performance thermal insulating materials are desired especially from the viewpoint of saving energy for a sustainable society. Aerogel is the long-awaited material for extended applications due to its excellent thermal insulating ability. These materials are, however, seriously fragile against even small mechanical stress due to their low density, and their poor mechanical properties inhibit their practical use as superinsulators. in this paper, we report relationships between the thermal conductivity, pore size and mechanical properties of organic-inorganic hybrid polymethylsilsesquioxane (PMSQ) aerogels with improved mechanical properties and controllable pore sizes from ~50 nm to 3 μm. The dependency of thermal conductivity on gas pressure and pore properties can be well explained by the thermal conduction theory of porous materials. These PMSQ aerogels show improved mechanical properties due to their elastic networks, which enable easier handling compared to conventional aerogels and facile production by simple ambient pressure drying. An aerogel-tike "xerogel" monolithic panel has been successfully prepared via ambient pressure drying, which shows a low thermal conductivity (0.015 W m~(-1) K~(-1)) comparable with those of the corresponding PMSQ aerogel and conventional silica aerogels. These results would open the gate for practical applications of these porous materials.
机译:从节约能源以实现可持续发展社会的角度出发,特别需要高性能的隔热材料。气凝胶具有出色的绝热能力,是人们期待已久的扩展应用材料。然而,由于这些材料的低密度,它们即使在很小的机械应力下也非常易碎,并且它们较差的机械性能阻碍了它们作为超级绝缘体的实际应用。在本文中,我们报告了具有改善的机械性能和可控制的孔径(〜50 nm至3μm)的有机-无机杂化聚甲基倍半硅氧烷(PMSQ)气凝胶的热导率,孔径与机械性能之间的关系。多孔材料的导热理论可以很好地解释导热系数对气压和孔隙性质的依赖性。这些PMSQ气凝胶由于具有弹性网络而显示出改进的机械性能,与常规气凝胶相比,它们更易于处理,并且通过简单的环境压力干燥即可轻松生产。通过环境压力干燥已成功制备了气凝胶状的“干凝胶”整体式面板,与相应的PMSQ气凝胶和传统的PMSQ气凝胶相比,它具有较低的导热率(0.015 W m〜(-1)K〜(-1))。二氧化硅气凝胶。这些结果将为这些多孔材料的实际应用打开大门。

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