Nirwan Viraj P, Kowalczyk Tomasz, Bar Julia, Buzgo Matej, Filová Eva, Fahmi Amir
Faculty of Technology and Bionics, Rhine-Waal University of Applied Science, Marie-Curie-Straβe 1, 47533 Kleve, Germany.
Institute of Fundamental Technological Research, Polish Academy of Sciences (IPPT PAN), Pawinskiego 5B, 02-106 Warsaw, Poland.
Nanomaterials (Basel). 2022 May 27;12(11):1829. doi: 10.3390/nano12111829.
Electrospun hybrid nanofibers, based on functional agents immobilized in polymeric matrix, possess a unique combination of collective properties. These are beneficial for a wide range of applications, which include theranostics, filtration, catalysis, and tissue engineering, among others. The combination of functional agents in a nanofiber matrix offer accessibility to multifunctional nanocompartments with significantly improved mechanical, electrical, and chemical properties, along with better biocompatibility and biodegradability. This review summarizes recent work performed for the fabrication, characterization, and optimization of different hybrid nanofibers containing varieties of functional agents, such as laser ablated inorganic nanoparticles (NPs), which include, for instance, gold nanoparticles (Au NPs) and titanium nitride nanoparticles (TiNPs), perovskites, drugs, growth factors, and smart, inorganic polymers. Biocompatible and biodegradable polymers such as chitosan, cellulose, and polycaprolactone are very promising macromolecules as a nanofiber matrix for immobilizing such functional agents. The assimilation of such polymeric matrices with functional agents that possess wide varieties of characteristics require a modified approach towards electrospinning techniques such as coelectrospinning and template spinning. Additional focus within this review is devoted to the state of the art for the implementations of these approaches as viable options for the achievement of multifunctional hybrid nanofibers. Finally, recent advances and challenges, in particular, mass fabrication and prospects of hybrid nanofibers for tissue engineering and biomedical applications have been summarized.
基于固定在聚合物基质中的功能剂的电纺混合纳米纤维具有独特的综合性能组合。这些性能有利于广泛的应用,包括治疗诊断、过滤、催化和组织工程等。纳米纤维基质中功能剂的组合提供了进入多功能纳米隔室的途径,这些隔室具有显著改善的机械、电学和化学性能,以及更好的生物相容性和生物降解性。本综述总结了近期在含各种功能剂(如激光烧蚀无机纳米颗粒(NPs),包括金纳米颗粒(Au NPs)和氮化钛纳米颗粒(TiNPs)、钙钛矿、药物、生长因子以及智能无机聚合物)的不同混合纳米纤维的制备、表征和优化方面所开展的工作。壳聚糖、纤维素和聚己内酯等生物相容性和生物可降解聚合物作为固定此类功能剂的纳米纤维基质是非常有前景的大分子。将这种具有多种特性的聚合物基质与功能剂同化需要对静电纺丝技术(如共静电纺丝和模板纺丝)采用改进方法。本综述的额外重点是这些方法作为实现多功能混合纳米纤维的可行选择的实施现状。最后,总结了近期的进展和挑战,特别是混合纳米纤维在组织工程和生物医学应用中的大规模制造及前景。