Process optimization for green synthesis of iron nanoparticles by extract of fenugreek (Trigonella foenum-graecum L.) seeds

Q3 Medicine
R. Ghafarzadegan, M. Yaghoobi, S. Momtaz, Nasim Ashoory, Mona Ghiaci Yekta, R. Hajiaghaee
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引用次数: 2

Abstract

Background: The green synthesis of nanoparticles using plants presents important advantages over other biological systems. Natural compounds present in plant extracts can reduce metal ions to nanoparticles in a single-step green synthesis process. Seeds of fenugreek with various compounds and antioxidant activity are suitable for green synthesis. Objective: In this study, the performance of fenugreek seeds extract was evaluated for iron nanoparticles production. Methods: The fenugreek ( Trigonella foenum-graecum L.) seeds were extracted with a distilled water solution at environmental temperature and this aqueous extract was used for the iron nanoparticles synthesis. Response surface methodology was applied to optimize nanoparticle production by considering three independent variables: the extract to metal ion ratio (1.5-6.5), incubation time (30-90 min), and temperature (35-65 °C). Results: Mixing the fenugreek seeds extract and iron salt solution with a volume ratio of 1.5 at 36.5 °C for 90 min led to the optimization of iron nanoparticle production with the narrowest size distribution. At the optimized condition, the nanoparticle size was in the range of 20-40 nm. Conclusion: Iron nanoparticles were successfully synthesized with fenugreek seed extract. Physical parameters such as time, temperature, and mixing volume ratio of the extract to metal ions can control the average size of the synthesized green iron nanoparticles.
胡芦巴籽提取物绿色合成纳米铁的工艺优化
背景:与其他生物系统相比,利用植物绿色合成纳米颗粒具有重要优势。植物提取物中存在的天然化合物可以在一步绿色合成过程中将金属离子还原为纳米颗粒。胡芦巴种子具有多种化合物和抗氧化活性,适合绿色合成。目的:评价胡芦巴种子提取物制备纳米铁的性能。方法:采用蒸馏水溶液在环境温度下提取胡芦巴种子,并将其用于铁纳米粒子的合成。响应面法通过考虑三个自变量来优化纳米颗粒的生产:提取物与金属离子的比例(1.5-6.5)、培养时间(30-90分钟)和温度(35-65°C)。结果:将胡芦巴种子提取物和铁盐溶液以1.5的体积比在36.5°C下混合90分钟,可以优化铁纳米颗粒的生产,使其尺寸分布最窄。在优化的条件下,纳米颗粒的尺寸在20-40nm的范围内。结论:以胡芦巴种子提取物为原料成功合成了铁纳米粒子。物理参数,如时间、温度和提取物与金属离子的混合体积比,可以控制合成的绿铁纳米颗粒的平均尺寸。
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来源期刊
Journal of Medicinal Plants
Journal of Medicinal Plants Medicine-Complementary and Alternative Medicine
CiteScore
1.60
自引率
0.00%
发文量
0
期刊介绍: The Journal of Medicinal Plants is published quarterly. This journal contains articles in the fields of basic and clinical sciences related to medicinal plants including pharmacognosy, basic and clinical pharmacology, basic and clinical toxicology, and pharmacology.
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