4.7 Article

Preparation and Characterization of Nanocellulose/Chitosan Aerogel Scaffolds Using Chemical-Free Approach

期刊

GELS
卷 7, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/gels7040246

关键词

aerogel scaffold; cellulose nanofibers; chitosan; green materials; medical applications

资金

  1. Ministry of Higher Education Malaysia for Fundamental Research Grant Scheme-Malaysia Research Star Award (FRGS-MRSA) [FRGS/1/2019/TK05/USM/01/6]
  2. Ministry of Culture and Education of the Republic of Indonesia by World Class Professor (WCP) Program [2817/E4.1/KK.04.05/2021]

向作者/读者索取更多资源

Biopolymer-based aerogels exhibit exceptional properties such as low density, high porosity, high surface area, biocompatibility, and non-cytotoxicity. Pure and binary blended aerogels prepared using a chemical-free approach showed varying porosity, density, and mechanical properties. Mixing cellulose nanofibers and chitosan enhanced the overall mechanical and thermal properties of the aerogels, while reducing water uptake and increasing antibacterial activity.
Biopolymer-based aerogels are open three-dimensional porous materials that are characterized by outstanding properties, such as a low density, high porosity and high surface area, in addition to their biocompatibility and non-cytotoxicity. Here we fabricated pure and binary blended aerogels from cellulose nanofibers (CNFs) and chitosan (CS), using a chemical-free approach that consists of high-pressure homogenization and freeze-drying. The prepared aerogels showed a different porosity and density, depending on the material and mixing ratio. The porosity and density of the aerogels ranged from 99.1 to 90.8% and from 0.0081 to 0.141 g/cm(3), respectively. Pure CNFs aerogel had the highest porosity and lightest density, but it showed poor mechanical properties and a high water absorption capacity. Mixing CS with CNFs significantly enhance the mechanical properties and reduce its water uptake. The two investigated ratios of aerogel blends had superior mechanical and thermal properties over the single-material aerogels, in addition to reduced water uptake and 2-log antibacterial activity. This green fabrication and chemical-free approach could have great potential in the preparation of biopolymeric scaffolds for different biomedical applications, such as tissue-engineering scaffolds.

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