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Simultaneous green synthesis and in-situ impregnation of silver nanoparticles into organic nanofibers by Lythrum salicaria extract: Morphological, thermal, antimicrobial and release properties

机译:千屈菜提取物同时绿色合成和将银纳米粒子原位浸渍到有机纳米纤维中:形态,热,抗菌和释放特性

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摘要

This research has revealed the promising, green and one-pot approach for fabrication of antimicrobial nanohybrids based on organic nanofibers including cellulose (CNF), chitosan (CHNF), and lignocellulose (LCNF) nanofibers impregnated with silver nanoparticles (AgNPs). Lythrum salicaria extract was used as a reducing agent as well as a capping agent. Formation of the spherical AgNPs ranging between 45 and 65 rim was proved by UV-Vis spectroscopy, transmission electron microscopy (TEM), and dynamic light scattering (DLS). Biomaterials supported AgNPs were characterized and compared for their morphological, thermal, release, and antimicrobial properties. The considerable influence of the phenolic compounds of L.salicaria extract on the synthesis and uniform distribution of AgNPs on nanofibers was confirmed by field emission electron microscopy (FE-SEM). Energy dispersive X-ray spectroscopy (EDX) and ICP-OES analysis of nanohybrids, reflected a high loading capacity for LCNF and also CHNF in contrast to CNF. The release of AgNPs from LCNF substrate was lower than other nanofibers but the order of antimicrobial activity of nanohybrids against E.coli and S.aureus was as this: CHNF (>) LCNF (>) CNF. Generally, this research suggested that the efficiency of CHNF and LCNF as immobilizing support of AgNPs is higher than CNF and L.salicaria extract was proposed as a high potential reducing and capping agent.
机译:这项研究揭示了一种有前途的,绿色的,一锅法的方法,该方法用于制造基于有机纳米纤维(包括纤维素(CNF),壳聚糖(CHNF)和浸渍了银纳米颗粒(AgNPs)的木质纤维素(LCNF)纳米纤维)的抗菌纳米混杂物。千屈菜提取物被用作还原剂和封端剂。紫外-可见光谱,透射电子显微镜(TEM)和动态光散射(DLS)证明了球形AgNP的形成范围在45至65 rim之间。表征并比较了生物材料支持的AgNPs的形态,热,释放和抗菌性能。场发射电子显微镜(FE-SEM)证实了鸢尾提取物的酚类化合物对AgNP在纳米纤维上的合成和均匀分布的重大影响。能量分散X射线能谱(EDX)和ICP-OES分析纳米杂化物,与CNF相比,反映出LCNF和CHNF的高负载能力。 AgNPs从LCNF底物中的释放低于其他纳米纤维,但纳米杂化物对大肠杆菌和金黄色葡萄球菌的抗菌活性顺序为:CHNF(>)LCNF(>)CNF。总体而言,这项研究表明,CHNF和LCNF固定化AgNPs的效率要高于CNF,而拟南芥提取物被认为是一种高潜力的还原和封端剂。

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