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用于生物医学、传感和能量收集功能的电纺纳米纤维。

Electrospun Nanofibers for Biomedical, Sensing, and Energy Harvesting Functions.

作者信息

Demir Didem, Bolgen Nimet, Vaseashta Ashok

机构信息

Chemistry and Chemical Process Technologies Department, Mersin Tarsus Organized Industrial Zone Technical Sciences Vocational School, Tarsus University, Mersin 33100, Türkiye.

Chemical Engineering Department, Faculty of Engineering, Mersin University, Mersin 33110, Türkiye.

出版信息

Polymers (Basel). 2023 Oct 29;15(21):4253. doi: 10.3390/polym15214253.

Abstract

The process of electrospinning is over a century old, yet novel material and method achievements, and later the addition of nanomaterials in polymeric solutions, have spurred a significant increase in research innovations with several unique applications. Significant improvements have been achieved in the development of electrospun nanofibrous matrices, which include tailoring compositions of polymers with active agents, surface functionalization with nanoparticles, and encapsulation of functional materials within the nanofibers. Recently, sequentially combining fabrication of nanofibers with 3D printing was reported by our group and the synergistic process offers fiber membrane functionalities having the mechanical strength offered by 3D printed scaffolds. Recent developments in electrospun nanofibers are enumerated here with special emphasis on biomedical technologies, chemical and biological sensing, and energy harvesting aspects in the context of e-textile and tactile sensing. Energy harvesting offers significant advantages in many applications, such as biomedical technologies and critical infrastructure protection by using the concept of finite state machines and edge computing. Many other uses of devices using electrospun nanofibers, either as standalone or conjoined with 3D printed materials, are envisaged. The focus of this review is to highlight selected novel applications in biomedical technologies, chem.-bio sensing, and broadly in energy harvesting for use in internet of things (IoT) devices. The article concludes with a brief projection of the future direction of electrospun nanofibers, limitations, and how synergetic combination of the two processes will open pathways for future discoveries.

摘要

静电纺丝工艺已有一个多世纪的历史了,然而新型材料和方法的成果,以及后来在聚合物溶液中添加纳米材料,激发了具有多种独特应用的研究创新显著增加。在静电纺丝纳米纤维基质的开发方面已经取得了重大进展,其中包括用活性剂定制聚合物组成、用纳米颗粒进行表面功能化以及将功能材料封装在纳米纤维内。最近,我们小组报道了将纳米纤维制造与3D打印顺序结合,这种协同工艺提供了具有3D打印支架所具有的机械强度的纤维膜功能。本文列举了静电纺丝纳米纤维的最新进展,特别强调了电子纺织品和触觉传感背景下的生物医学技术、化学和生物传感以及能量收集方面。能量收集在许多应用中具有显著优势,例如通过使用有限状态机和边缘计算的概念用于生物医学技术和关键基础设施保护。设想了许多其他使用静电纺丝纳米纤维的设备的用途,无论是单独使用还是与3D打印材料结合使用。本综述的重点是突出生物医学技术、化学生物传感以及广泛用于物联网(IoT)设备的能量收集中的选定新型应用。文章最后简要预测了静电纺丝纳米纤维的未来发展方向、局限性,以及这两种工艺的协同结合将如何为未来的发现开辟道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62a4/10648854/8f6d22d9a294/polymers-15-04253-g001.jpg

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