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电纺压电纤维用于生物相容器件。

Electrospinning Piezoelectric Fibers for Biocompatible Devices.

机构信息

Laboratory for Atomistic and Molecular Mechanics (LAMM), Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

Department of Civil and Industrial Engineering, University of Pisa, Pisa, 56122, Italy.

出版信息

Adv Healthc Mater. 2020 Jan;9(1):e1901287. doi: 10.1002/adhm.201901287. Epub 2019 Nov 8.

Abstract

The field of nanotechnology has been gaining great success due to its potential in developing new generations of nanoscale materials with unprecedented properties and enhanced biological responses. This is particularly exciting using nanofibers, as their mechanical and topographic characteristics can approach those found in naturally occurring biological materials. Electrospinning is a key technique to manufacture ultrafine fibers and fiber meshes with multifunctional features, such as piezoelectricity, to be available on a smaller length scale, thus comparable to subcellular scale, which makes their use increasingly appealing for biomedical applications. These include biocompatible fiber-based devices as smart scaffolds, biosensors, energy harvesters, and nanogenerators for the human body. This paper provides a comprehensive review of current studies focused on the fabrication of ultrafine polymeric and ceramic piezoelectric fibers specifically designed for, or with the potential to be translated toward, biomedical applications. It provides an applicative and technical overview of the biocompatible piezoelectric fibers, with actual and potential applications, an understanding of the electrospinning process, and the properties of nanostructured fibrous materials, including the available modeling approaches. Ultimately, this review aims at enabling a future vision on the impact of these nanomaterials as stimuli-responsive devices in the human body.

摘要

由于纳米技术在开发具有前所未有性能和增强生物响应的新一代纳米级材料方面的潜力,该领域取得了巨大成功。使用纳米纤维尤其令人兴奋,因为它们的机械和形貌特性可以接近天然存在的生物材料的特性。静电纺丝是制造具有多功能特性的超细纤维和纤维网的关键技术,例如压电性,可在更小的长度尺度上实现,因此可与亚细胞尺度相媲美,这使得它们在生物医学应用中越来越受欢迎。这些应用包括作为智能支架、生物传感器、能量收集器和纳米发电机的基于纤维的生物相容性纤维设备,用于人体。本文全面回顾了目前专注于制造专为生物医学应用设计或有可能转化为生物医学应用的超精细聚合物和陶瓷压电纤维的研究。它提供了生物相容性压电纤维的应用和技术概述,包括实际和潜在的应用、对静电纺丝过程的理解以及纳米结构纤维材料的特性,包括可用的建模方法。最终,本综述旨在为这些纳米材料作为人体中响应刺激的设备的未来前景提供一个展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81d2/6949425/92aba4f315f7/nihms-1059238-f0001.jpg

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