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Thermally insulating and fire-retardant lightweight anisotropic foams based on nanocellulose and graphene oxide

机译:基于纳米纤维素和氧化石墨烯的隔热阻燃轻质各向异性泡沫

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摘要

High-performance thermally insulating materials from renewable resources are needed to improve the energy efficiency of buildings. Traditional fossil-fuel-derived insulation materials such as expanded polystyrene and polyurethane have thermal conductivities that are too high for retrofitting or for building new, surface-efficient passive houses. Tailored materials such as aerogels and vacuum insulating panels are fragile and susceptible to perforation. Here, we show that freeze-casting suspensions of cellulose nanofibres, graphene oxide and sepiolite nanorods produces super-insulating, fire-retardant and strong anisotropic foams that perform better than traditional polymer-based insulating materials. The foams are ultralight, show excellent combustion resistance and exhibit a thermal conductivity of 15 mW m(-1) K-1, which is about half that of expanded polystyrene. At 30 degrees C and 85% relative humidity, the foams retained more than half of their initial strength. Our results show that nanoscale engineering is a promising strategy for producing foams with excellent properties using cellulose and other renewable nanosized fibrous materials.
机译:需要使用可再生资源的高性能隔热材料来提高建筑物的能源效率。传统的源自化石燃料的绝缘材料,例如膨胀的聚苯乙烯和聚氨酯,具有很高的导热率,因此无法进行翻新或建造新的,表面效率高的被动式房屋。气凝胶和真空绝热板等定制材料易碎,容易打孔。在这里,我们表明,纤维素纳米纤维,氧化石墨烯和海泡石纳米棒的冷冻浇铸悬浮液会产生超绝缘,阻燃和强各向异性的泡沫,其性能要优于传统的基于聚合物的绝缘材料。泡沫是超轻的,具有出色的耐燃性,导热系数为15 mW m(-1)K-1,约为膨胀聚苯乙烯的一半。在30摄氏度和85%的相对湿度下,泡沫塑料保留了其初始强度的一半以上。我们的结果表明,纳米级工程是使用纤维素和其他可再生纳米级纤维材料生产具有优异性能的泡沫的一种有前途的策略。

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