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通过氨化纳米纤维素改性提高二醛纤维素-银纳米粒子复合材料的机械和抗菌性能。

Enhancing Mechanical and Antimicrobial Properties of Dialdehyde Cellulose-Silver Nanoparticle Composites through Ammoniated Nanocellulose Modification.

机构信息

Plant Fibril Material Science Research Center, State Key Laboratory of Pulp and Paper Engineering, School of Light Industry and Engineering, South China University of Technology, Guangzhou 510640, China.

Guangdong Provincial Key Laboratory of Plant Resources Biorefinery, Guangzhou 510006, China.

出版信息

Molecules. 2024 Apr 30;29(9):2065. doi: 10.3390/molecules29092065.

Abstract

Given the widespread prevalence of viruses, there is an escalating demand for antimicrobial composites. Although the composite of dialdehyde cellulose and silver nanoparticles (DAC@Ag1) exhibits excellent antibacterial properties, its weak mechanical characteristics hinder its practical applicability. To address this limitation, cellulose nanofibers (CNFs) were initially ammoniated to yield N-CNF, which was subsequently incorporated into DAC@Ag1 as an enhancer, forming DAC@Ag1/N-CNF. We systematically investigated the optimal amount of N-CNF and characterized the DAC@Ag1/N-CNF using FT-IR, XPS, and XRD analyses to evaluate its additional properties. Notably, the optimal mass ratio of N-CNF to DAC@Ag1 was found to be 5:5, resulting in a substantial enhancement in mechanical properties, with a 139.8% increase in tensile elongation and a 33.1% increase in strength, reaching 10% and 125.24 MPa, respectively, compared to DAC@Ag1 alone. Furthermore, the inhibition zones against and were significantly expanded to 7.9 mm and 15.9 mm, respectively, surpassing those of DAC@Ag1 alone by 154.8% and 467.9%, indicating remarkable improvements in antimicrobial efficacy. Mechanism analysis highlighted synergistic effects from chemical covalent bonding and hydrogen bonding in the DAC@Ag1/N-CNF, enhancing the mechanical and antimicrobial properties significantly. The addition of N-CNF markedly augmented the properties of the composite film, thereby facilitating its broader application in the antimicrobial field.

摘要

鉴于病毒的广泛流行,对抗菌复合材料的需求正在不断增加。虽然醛基纤维素和纳米银复合(DAC@Ag1)具有优异的抗菌性能,但它的机械性能较弱,限制了其实际应用。为了解决这一限制,我们首先对纤维素纳米纤维(CNFs)进行氨化,得到 N-CNF,然后将其作为增强剂加入 DAC@Ag1 中,形成 DAC@Ag1/N-CNF。我们系统地研究了 N-CNF 的最佳用量,并通过 FT-IR、XPS 和 XRD 分析对 DAC@Ag1/N-CNF 进行了表征,以评估其附加性能。值得注意的是,N-CNF 与 DAC@Ag1 的最佳质量比为 5:5,这使得机械性能得到了显著提高,拉伸伸长率增加了 139.8%,强度增加了 33.1%,分别达到了 10%和 125.24 MPa,而单独的 DAC@Ag1 则分别为 10%和 125.24 MPa。此外,对 和 的抑制区分别显著扩大到 7.9 毫米和 15.9 毫米,分别比单独的 DAC@Ag1 增加了 154.8%和 467.9%,表明抗菌效果有了显著提高。机制分析强调了 DAC@Ag1/N-CNF 中化学共价键和氢键的协同作用,显著提高了机械和抗菌性能。N-CNF 的加入显著提高了复合膜的性能,从而促进了其在抗菌领域的更广泛应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c78/11085600/be0bb841f491/molecules-29-02065-g001.jpg

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