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Biomimetic Synthesis of Silver Nanoparticles Using Bhimkol (Musa balbisiana) Peel Extract as Biological Waste: Its Antibacterial Activity and Role of Ripen Stage of the Peel

机译:使用Bhimkol(Musa Balbisiana)剥皮提取物作为生物废物的仿生合成银纳米粒子:其抗菌活性和剥皮成熟阶段的作用

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Background: Utilization of plant extracts and agricultural waste has a great impact for the synthesis of AgNPs. Banana peels are such important agro waste which attracted us to use for the synthesis of silver nanoparticles. The biochemicals present in it have attracted us to use such banana peels. Methods: Thus, we report herein a cost-effective and environment-friendly synthesis of silver nanoparticles using Bhimkal (Musa balbisiana) peel aqueous extract as biological waste. About 5 g of freshly dried peels taken in 100 mL of water were shaken and heated at 80°C for 1 hour. The filtrate from the resultant solution was stored at 4°C and used as reducing as well as stabilizing agent for the preparation of AgNPs from AgNO3. We monitored the formation of silver nanoparticles by various spectroscopic techniques. Results: All the particles are almost spherical in morphology and the diameter of the mostly monodispersed AgNPs is in the range of 30-70 nm with an average size of 44.24 nm. Among the three stages of development (unripe, ripe, and blacken), we have found the ripening stage as most efficient in the highest yielding of AgNPs because of maximum presence of phenol containing biological macromolecules. The synthesized AgNPs showed moderate antibacterial activity against both gram negative bacteria as well as gram positive bacteria. Conclusion: The advantage of our biomimetic route to silver nanoparticles lies in the fact that we utilize peels as biological waste material both for the generation and stabilization of silver nanoparticles.
机译:背景:植物提取物和农业废物的利用对agnps的合成产生了很大的影响。香蕉皮是如此重要的农业废物,吸引我们用于合成银纳米颗粒。目前的生物化学产品吸引了我们使用此类香蕉皮。方法:因此,我们在本文中报告了使用Bhimkal(Musa Balbisiana)剥水提取物作为生物废物的具有成本效益和环保的银纳米粒子的合成。在100ml水中振荡约5克的新干果,并在80℃下加热1小时。将来自所得溶液的滤液在4℃下储存并用作从AgNO 3制备AgNP的稳定剂。我们通过各种光谱技术监测银纳米粒子的形成。结果:所有颗粒几乎是形态学的球形,并且大多数单分散的AgNP的直径在30-70nm的范围内,平均尺寸为44.24nm。在发展的三个阶段(未成熟,成熟和变黑)中,由于含苯酚的生物大分子的最大存在,我们发现成熟阶段最有效的agnps的最高产量。合成的agnps显示针对革兰氏阴性细菌以及革兰氏阳性细菌的中度抗菌活性。结论:我们对银纳米粒子的仿生途径的优点在于我们利用剥离作为生物废料,用于生成和稳定银纳米粒子。

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