Lu Ping, Ding Bin
Fiber and Polymer Science, University of California, One Shields Avenue, Davis, CA 95616 USA.
Recent Pat Nanotechnol. 2008;2(3):169-82. doi: 10.2174/187221008786369688.
The simplicity of the electrospinning fabrication process, the diversity of electrospinnable materials, and the unique features associated with electrospun fibers make this technique and resultant structures attractive for various applications. The past few years witnessed the significant progresses in the application areas of electrospun fibers, which were demonstrated by the numbers of the recent published patents on electrospinning. It is very apparent that the current focus has been shifted from studying the modification of the electrospinning conditions and apparatus for obtaining fibers with different sizes, shapes, morphologies, structures, alignments before 2000 to looking for the possible applications of these resultant nanofibers with broad functionalities after 2001. The current paper presents a systematic review on the recent applications of electrospun nanofibers in a broad range of fields including biomedical applications such as drug delivery, tissue engineering, wound dressing and cosmetics, functional materials and devices such as composite reinforcement, filters, protective clothing and smart textiles, and energy and electronics such as batteries/cells and capacitors, sensors and catalysts. Although some of these applications may be still remained in the laboratory in the current stage, plenty of successful examples have proved that electrospun nanofibers have a bright future in a variety of industries.
静电纺丝制造工艺的简单性、可静电纺丝材料的多样性以及与静电纺丝纤维相关的独特特性,使得这项技术及其所得结构在各种应用中颇具吸引力。过去几年见证了静电纺丝纤维应用领域的重大进展,近期关于静电纺丝的已发表专利数量就证明了这一点。很明显,当前的重点已从2000年之前研究用于获得不同尺寸、形状、形态、结构、排列的纤维的静电纺丝条件和设备的改进,转向2001年之后寻找这些具有广泛功能的所得纳米纤维的可能应用。本文对静电纺纳米纤维在广泛领域的近期应用进行了系统综述,这些领域包括生物医学应用,如药物递送、组织工程、伤口敷料和化妆品;功能材料和器件,如复合增强材料、过滤器、防护服和智能纺织品;以及能源和电子领域,如电池/电芯和电容器、传感器和催化剂。尽管其中一些应用目前可能仍处于实验室阶段,但大量成功案例已证明,静电纺纳米纤维在各种行业中有着光明的前景。