Mechanochemistry as an Alternative Method of Green Synthesis of Silver Nanoparticles with Antibacterial Activity: A Comparative Study

硝酸银 薰衣草 银纳米粒子 绿色化学 纳米晶材料 材料科学 核化学 透射电子显微镜 化学工程 纳米 纳米技术 化学 纳米颗粒 有机化学 色谱法 精油 反应机理 催化作用 复合材料 工程类
作者
Matěj Baláž,Zdenka Bedlovičová,Nina Daneu,Patrik Siksa,Libor Sokoli,Ľudmila Tkáčiková,Aneta Salayová,Róbert Džunda,Mária Kováčová,Radovan Búreš,Zdenka Lukáčová Bujňáková
出处
期刊:Nanomaterials [Multidisciplinary Digital Publishing Institute]
卷期号:11 (5): 1139-1139 被引量:31
标识
DOI:10.3390/nano11051139
摘要

This study shows mechanochemical synthesis as an alternative method to the traditional green synthesis of silver nanoparticles in a comparative manner by comparing the products obtained using both methodologies and different characterization methods. As a silver precursor, the most commonly used silver nitrate was applied and the easily accessible lavender (Lavandula angustofolia L.) plant was used as a reducing agent. Both syntheses were performed using 7 different lavender:AgNO3 mass ratios. The synthesis time was limited to 8 and 15 min in the case of green and mechanochemical synthesis, respectively, although a significant amount of unreacted silver nitrate was detected in both crude reaction mixtures at low lavender:AgNO3 ratios. This finding is of particular interest mainly for green synthesis, as the potential presence of silver nitrate in the produced nanosuspension is often overlooked. Unreacted AgNO3 has been removed from the mechanochemically synthesized samples by washing. The nanocrystalline character of the products has been confirmed by both X-ray diffraction (Rietveld refinement) and transmission electron microscopy. The latter has shown bimodal size distribution with larger particles in tens of nanometers and the smaller ones below 10 nm in size. In the case of green synthesis, the used lavender:AgNO3 ratio was found to have a decisive role on the crystallite size. Silver chloride has been detected as a side-product, mainly at high lavender:AgNO3 ratios. Both products have shown a strong antibacterial activity, being higher in the case of green synthesis, but this can be ascribed to the presence of unreacted AgNO3. Thus, one-step mechanochemical synthesis (without the need to prepare extract and performing the synthesis as separate steps) can be applied as a sustainable alternative to the traditional green synthesis of Ag nanoparticles using plants.
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