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首页> 外文期刊>Journal of Renewable Materials >A New Method for Developing Industrially Viable Nanocrystalline Cellulose-based Nanocomposites via Melt Compounding
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A New Method for Developing Industrially Viable Nanocrystalline Cellulose-based Nanocomposites via Melt Compounding

机译:通过熔融复合开发工业上可行的纳米晶纤维素纳米复合材料的新方法

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摘要

Due to their high crystallinity and aspect ratio, bacterial cellulose nanowhiskers (BCNW) represent an appealing choice for the development of fully biobased nanocomposite materials with high barrier performance. However, their strong tendency to self-associate, together with their highly hydrophilic character, has restricted the production of nanocomposites containing cellulose nanowhiskers by industrial processing techniques such as melt compounding. This article presents an overview of the latest published results carried out within our group and also in other relevant literature, which have led to the development of an efficient strategy for the incorporation of highly dispersed BCNW by melt compounding through the use of electrohydrodynamic processing as a vehicle for the pre-incorporation of relatively high loadings of BCNW. First, a method for the production of highly crystalline and thermally stable BCNW was developed. These BCNW were incorporated into electrospun fibers, optimizing the process in terms of nanofiller dispersion and degree of incorporation. Finally, these hybrid fibers were used as masterbatches for the production of melt compounded nanocomposites, comparing their morphology and barrier properties with the conventional method of adding freeze-dried nanowhiskers. This method was proven to be effective for both hydrophilic and hydrophobic matrices and, thus, it provides a feasible route for the development of high barrier biobased materials.
机译:由于其高结晶度和长径比,细菌纤维素纳米晶须(BCNW)是开发具有高阻隔性能的全生物基纳米复合材料的理想选择。但是,它们强烈的自缔合趋势以及高度亲水的特性限制了通过工业加工技术(例如熔融混合)生产含纤维素纳米晶须的纳米复合材料。本文概述了在我们小组以及其他相关文献中进行的最新发表的结果,这些结果已导致开发出一种有效的策略,该方法通过使用电流体动力学方法作为熔体混合法,掺入高度分散的BCNW。预掺入较高含量BCNW的车辆。首先,开发了一种生产高度结晶和热稳定的BCNW的方法。这些BCNW被掺入到电纺纤维中,就纳米填料的分散和掺入程度而言优化了工艺。最后,这些杂化纤维被用作生产熔融复合纳米复合材料的母料,将其形态和阻隔性能与添加冷冻干燥纳米晶须的常规方法进行了比较。实践证明,该方法对亲水性和疏水性基质均有效,因此为开发高阻隔性生物基材料提供了可行的途径。

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