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具有热超绝热和可调机械性能的多尺度纤维素基新型生物气凝胶复合材料。

Multi-scale cellulose based new bio-aerogel composites with thermal super-insulating and tunable mechanical properties.

机构信息

Université de Bretagne Sud, Laboratoire Ingénierie des Matériaux de Bretagne, BP 92116, 56321 Lorient Cedex, France.

Université de Bretagne Sud, Laboratoire Ingénierie des Matériaux de Bretagne, BP 92116, 56321 Lorient Cedex, France; Cadi Ayyad University, Faculty of Sciences and Technologies, Laboratory of Organometallic and Macromolecular Chemistry, Avenue AbdelkrimElkhattabi, B.P. 549, Marrakech, Morocco.

出版信息

Carbohydr Polym. 2016 Mar 15;138:335-48. doi: 10.1016/j.carbpol.2015.11.032. Epub 2015 Nov 17.

Abstract

Bio-composite aerogels based on bleached cellulose fibers (BCF) and cellulose nanoparticles having various morphological and physico-chemical characteristics are prepared by a freeze-drying technique and characterized. The various composite aerogels obtained were compared to a BCF aerogel used as the reference. Severe changes in the material morphology were observed by SEM and AFM due to a variation of the cellulose nanoparticle properties such as the aspect ratio, the crystalline index and the surface charge density. BCF fibers form a 3D network and they are surrounded by the cellulose nanoparticle thin films inducing a significant reduction of the size of the pores in comparison with a neat BCF based aerogel. BET analyses confirm the appearance of a new organization structure with pores of nanometric sizes. As a consequence, a decrease of the thermal conductivities is observed from 28mWm(-1)K(-1) (BCF aerogel) to 23mWm(-1)K(-1) (bio-composite aerogel), which is below the air conductivity (25mWm(-1)K(-1)). This improvement of the insulation properties for composite materials is more pronounced for aerogels based on cellulose nanoparticles having a low crystalline index and high surface charge (NFC-2h). The significant improvement of their insulation properties allows the bio-composite aerogels to enter the super-insulating materials family. The characteristics of cellulose nanoparticles also influence the mechanical properties of the bio-composite aerogels. A significant improvement of the mechanical properties under compression is obtained by self-organization, yielding a multi-scale architecture of the cellulose nanoparticles in the bio-composite aerogels. In this case, the mechanical property is more dependent on the morphology of the composite aerogel rather than the intrinsic characteristics of the cellulose nanoparticles.

摘要

基于漂白纤维素纤维(BCF)和具有各种形态和物理化学特性的纤维素纳米颗粒的生物复合气凝胶是通过冷冻干燥技术制备的,并进行了表征。将获得的各种复合气凝胶与用作参考的 BCF 气凝胶进行了比较。由于纤维素纳米颗粒的性质(如纵横比、结晶度和表面电荷密度)的变化,通过 SEM 和 AFM 观察到材料形态发生了严重变化。BCF 纤维形成 3D 网络,它们被纤维素纳米颗粒薄膜包围,与纯 BCF 基气凝胶相比,这导致孔的尺寸显著减小。BET 分析证实了具有纳米级孔径的新组织结构的出现。因此,观察到热导率从 28mWm(-1)K(-1)(BCF 气凝胶)降低到 23mWm(-1)K(-1)(生物复合气凝胶),这低于空气的导热率(25mWm(-1)K(-1))。与基于结晶度低和表面电荷高的纤维素纳米颗粒(NFC-2h)的复合材料相比,这种复合材料的热绝缘性能的提高更为明显。它们的绝缘性能的显著提高使得生物复合气凝胶进入了超绝缘材料家族。纤维素纳米颗粒的特性也会影响生物复合气凝胶的机械性能。通过自组织,在压缩下获得了机械性能的显著提高,从而在生物复合气凝胶中产生了纤维素纳米颗粒的多尺度结构。在这种情况下,机械性能更依赖于复合气凝胶的形态,而不是纤维素纳米颗粒的固有特性。

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