Developments of Core/Shell Chitosan-Based Nanofibers by Electrospinning Techniques: A Review

Author:

Taokaew Siriporn1ORCID,Chuenkaek Tapanee2

Affiliation:

1. Department of Materials Science and Bioengineering, School of Engineering, Nagaoka University of Technology, Nagaoka 940-2188, Niigata, Japan

2. Department of Science of Technology Innovation, Nagaoka University of Technology, Nagaoka 940-2188, Niigata, Japan

Abstract

This review is focused on the recent development of various chitosan-based nanofibers (membranes, patches, mats, and scaffolds) that have been designed into core and shell structures using emulsion and coaxial electrospinning techniques. Chitosan, a promising polysaccharide derived from natural sources, holds potential for diverse applications, including nanofiber production, aimed at fostering sustainability. Core/shell chitosan-based nanofibers offer appealing features, including drug encapsulation and sustained release capabilities, with a higher efficiency than uniaxial fibers. The fabrication of core/shell chitosan-based nanofibers, including the co-spinning agents and various spinning parameters, such as spinning voltage, needle size, spinning flow rate, distance from needle tip to collector, temperature, and humidity, is summarized in this work. The review also explores updated applications in various fields, such as textiles, medical dressings, drug release systems, filtration membranes, and food packaging. It highlights the current advancements in core/shell chitosan-based nanofibers produced via electrospinning techniques. The innovative insights presented in the recent literature and the challenges associated with these sustainable materials are thoroughly examined, offering valuable contributions to the field.

Publisher

MDPI AG

Reference197 articles.

1. Xue, C., and Wilson, L.D. (2021). An Overview of the Design of Chitosan-Based Fiber Composite Materials. J. Compos. Sci., 5.

2. UN Environment Programme (2023, November 29). Our Planet is Choking on Plastic. Available online: https://www.unep.org/interactives/beat-plastic-pollution/.

3. OECD (2023, November 29). Plastic Pollution is Growing Relentlessly as Waste Management and Recycling Fall Short, Says OECD. Available online: https://www.oecd.org/environment/plastic-pollution-is-growing-relentlessly-as-waste-management-and-recycling-fall-short.htm.

4. Lin, Z., Chen, H., Li, S., Li, X., Wang, J., and Xu, S. (2023). Electrospun Food Polysaccharides Loaded with Bioactive Compounds: Fabrication, Release, and Applications. Polymers, 15.

5. Hameed, A.Z., Raj, S.A., Kandasamy, J., Baghdadi, M.A., and Shahzad, M.A. (2022). Chitosan: A Sustainable Material for Multifarious Applications. Polymers, 14.

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