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由纤维素纳米晶体稳定的皮克林高内相乳液制备的具有分级多孔结构的超轻气凝胶。

Ultralight Aerogels with Hierarchical Porous Structures Prepared from Cellulose Nanocrystal Stabilized Pickering High Internal Phase Emulsions.

作者信息

Qiao Min, Yang Xiaocang, Zhu Yun, Guerin Gerald, Zhang Shengmiao

机构信息

Key Laboratory for Ultrafine Materials of Ministry of Education, Shanghai Key Laboratory of Advanced Polymeric Materials, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.

出版信息

Langmuir. 2020 Jun 16;36(23):6421-6428. doi: 10.1021/acs.langmuir.0c00646. Epub 2020 Jun 4.

Abstract

Cellulose nanocrystal (CNC)-based aerogels with extremely low density and hierarchical porous structure were constructed via a facile Pickering-emulsion-templated strategy. In this method, aminated CNCs (CNC-NH) were synthesized to stabilize o/w Pickering high internal phase emulsions (Pickering HIPEs). Amino groups were introduced to CNCs to decrease the net surface charges of CNCs, enhance their aggregation, and therefore achieve Pickering HIPEs stabilized by the particles of ultralow content (∼0.1 wt %). A series of CNC aerogels was then obtained by freeze drying these emulsions. The resulting aerogels were ultralight with a density that reached ca. 0.5 mg/cm (an order of magnitude lower than that previously reported for CNC aerogels) and an ultrahigh porosity (up to 99.969%). Contributed to the extremely low density, the thermal conductivity of the aerogels was around 0.021 W/(m·K) which is lower than that of air (0.024 W/(m·K)). This novel strategy could be applied to other materials, such as graphene and carbon nanotubes, to prepare ultralight aerogels with controllable porous structures and unique properties.

摘要

通过一种简便的皮克林乳液模板策略构建了具有极低密度和分级多孔结构的纤维素纳米晶体(CNC)基气凝胶。在该方法中,合成了胺化CNC(CNC-NH)以稳定水包油型皮克林高内相乳液(皮克林HIPEs)。将氨基引入CNC以降低CNC的净表面电荷,增强其聚集,从而实现由超低含量(约0.1 wt%)的颗粒稳定的皮克林HIPEs。然后通过冷冻干燥这些乳液获得了一系列CNC气凝胶。所得气凝胶超轻,密度达到约0.5 mg/cm³(比先前报道的CNC气凝胶低一个数量级)且具有超高孔隙率(高达99.969%)。由于密度极低,气凝胶的热导率约为0.021 W/(m·K),低于空气的热导率(0.024 W/(m·K))。这种新颖的策略可应用于其他材料,如石墨烯和碳纳米管,以制备具有可控多孔结构和独特性能的超轻气凝胶。

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