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Polymer-based composites by electrospinning: Preparation & functionalization with nanocarbons

机译:通过静电纺丝基基复合材料:用纳米碳制备和官能化

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Electrospinning is a straightforward yet versatile technique for the preparation of polymeric nanofibers with diameters in the range of nanometers to micrometers, and has been rapidly developed in the last two decades. Nanocarbon materials, usually referring to carbon nanotubes, graphene, and fullerenes with their derivatives including quantum dots, nanofibers, and nanoribbons, have received increasing attention due to their unique structural characteristics and outstanding physico-chemical properties. Incorporation of nanocarbons in electrospun polymeric fibers has been used to increase the functionality of fibers, for example, to improve the mechanical, electrical, and thermal properties, as well as confer biofunctionality as scaffolds in tissue engineering and sensors, when the advantageous properties given by the encapsulated materials are transferred to the fibers. In this review, we provide an overview of polymer-based composites reinforced with nanocarbons via the electrospinning technique. After a brief introduction of various types of nanocarbons, we summarize the latest progress of the design and fabrication of electrospun polymeric nanofibers with nanocarbon fillers. With regard to the preparation of composites, we focus on functionalization strategies of nanocarbons and the production of random & aligned polymeric nanocomposites. Then, the physical properties such as mechanical, electrical, and thermal properties are also reviewed for electrospun nanocomposite nanofibers reinforced with nanocarbons, especially carbon nanotubes. Benefiting from the exceptional properties including superior electric conductivity, high porosities, unique mat structure, etc. the polymeric composite nanofibers have demonstrated numerous advantages and promising properties in the fields of tissue engineering and sensors. In the application section, we will give state-of-the-art examples to demonstrate the advantages of electrospun polymer-based nanocomposites. Finally, the conclusion and challenge of the polymer based nanocomposites are also presented. We believe the efforts made in this review would promote the understanding of the methods of preparation and unique physical and chemical properties of nanocarbon reinforced polymer-based nanocomposites. (C) 2018 Elsevier B.V. All rights reserved.
机译:静电纺丝是一种直接但多功能的技术,用于制备具有直径的聚合物纳米纤维在纳米范围内的直径,并且在过去的二十年中已经迅速发展。通常参考碳纳米管,石墨烯和富勒烯与包含量子点,纳米纤维和纳米纤维的衍生物的纳米碳材料,由于其独特的结构特征和出色的物理化学性质而受到越来越长。掺入电梭织聚合物纤维中的纳米碳酸纤维用于增加纤维的功能,例如,改善机械,电气和热性能,以及在组织工程和传感器中的支架上赋予生物功能性,当通过将包封的材料转移到纤维中。在本文中,我们通过静电纺丝技术提供了用纳米碳加固的基于聚合物基复合材料的概述。简要介绍了各种类型的纳米碳,我们总结了用纳米碳填料的电纺聚合物纳米纤维的设计和制造的最新进展。关于复合材料的制备,我们专注于纳米碳的功能化策略和随机和对准聚合物纳米复合材料的制备。然后,还通过用纳米碳,尤其是碳纳米管增强的电纺纳米复合材料纳米纤维来检查诸如机械,电和热性质的物理性质。受益于包括卓越的电导率,高孔孔,独特的垫结构等特殊性的特性。聚合物复合纳米纤维在组织工程和传感器领域中表现出许多优点和有希望的性质。在申请部分中,我们将提供最先进的实例以证明耐电纺聚合物基纳米复合材料的优点。最后,还介绍了聚合物基纳米复合材料的结论和挑战。我们相信本综述中所做的努力将促进了解纳米碳增强聚合物基纳米复合材料的制备方法和独特的物理和化学性质。 (c)2018 Elsevier B.v.保留所有权利。

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