Cabrera-Barjas Gustavo, González Cristian, Nesic Aleksandra, Marrugo Kelly P, Gómez Oscar, Delattre Cédric, Valdes Oscar, Yin Heng, Bravo Gaston, Cea Juan
Unidad de Desarrollo Tecnológico, Parque Industrial Coronel, Universidad de Concepción, Concepción 3349001, Chile.
Facultad de Ingeniería, Universidad del Bío-Bío, Concepción 4051381, Chile.
Mar Drugs. 2021 Mar 26;19(4):184. doi: 10.3390/md19040184.
β-chitin was isolated from marine waste, giant Humboldt squid , and further converted to nanofibers by use of a collider machine under acidic conditions (pH 3). The FTIR, TGA, and NMR analysis confirmed the efficient extraction of β-chitin. The SEM, TEM, and XRD characterization results verified that β-chitin crystalline structure were maintained after mechanical treatment. The mean particle size of β-chitin nanofibers was in the range between 10 and 15 nm, according to the TEM analysis. In addition, the β-chitin nanofibers were converted into films by the simple solvent-casting and drying process at 60 °C. The obtained films had high lightness, which was evidenced by the CIELAB color test. Moreover, the films showed the medium swelling degree (250-290%) in aqueous solutions of different pH and good mechanical resistance in the range between 4 and 17 MPa, depending on film thickness. The results obtained in this work show that marine waste can be efficiently converted to biomaterial by use of mild extractive conditions and simple mechanical treatment, offering great potential for the future development of sustainable multifunctional materials for various industrial applications such as food packaging, agriculture, and/or wound dressing.
β-几丁质是从海洋废弃物洪堡大鱿鱼中分离出来的,并在酸性条件(pH 3)下通过对撞机进一步转化为纳米纤维。傅里叶变换红外光谱(FTIR)、热重分析(TGA)和核磁共振(NMR)分析证实了β-几丁质的有效提取。扫描电子显微镜(SEM)、透射电子显微镜(TEM)和X射线衍射(XRD)表征结果证实,机械处理后β-几丁质的晶体结构得以保留。根据透射电子显微镜分析,β-几丁质纳米纤维的平均粒径在10至15纳米之间。此外,通过简单的溶剂浇铸和在60°C下干燥的过程,β-几丁质纳米纤维被转化为薄膜。CIELAB颜色测试证明,所得薄膜具有高亮度。此外,根据薄膜厚度,这些薄膜在不同pH值的水溶液中显示出中等溶胀度(250 - 290%),并且在4至17兆帕的范围内具有良好的机械抗性。这项工作获得的结果表明,利用温和的提取条件和简单的机械处理,可以将海洋废弃物有效地转化为生物材料,为食品包装、农业和/或伤口敷料等各种工业应用中可持续多功能材料的未来发展提供了巨大潜力。