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Biosynthesis and characterization of zinc, magnesium and titanium nanoparticles: an eco-friendly approach

机译:锌,镁和钛纳米颗粒的生物合成和表征:一种生态友好的方法

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In the present study, zinc (Zn), magnesium (Mg) and titanium (Ti) nanoparticles synthesized using fungus by employing various precursor salts of sulfate salts, nitrate salts, chloride salts and oxide salts. To access the nanoparticle production potential, over a hundreds of fungi were isolated from the soil and tested with precursor salts of the Zn, Mg and Ti. Out of which, only 14 fungal isolates were identified, having potential to reduce metal salt into metal nanoparticles. Upon molecular identification, six were identified as Aspergillus flavus, two each as Aspergillus terreus and Aspergillus tubingensis and one each as Aspergillus niger, Rhizoctonia bataticola, Aspergillus fumigatus, and Aspergillus oryzae. Factors responsible for more production of monodispersed Zn, Mg and Ti nanoparticles were optimized. It was concluded that 0.01?mM precursor salt concentration, 72?h of incubation at pH 5.5 and temperature 28?°C resulted smaller nanoparticles obtained. The biosynthesized functional Zn and Ti nanoparticles can be stored up to 90?days and Mg nanoparticles up to 105?days in its nanoform. Bio-transformed products were analyzed using valid characterization technique i.e. dynamic light scattering, transmission electron microscopy, atomic force microscopy, energy dispersive X-ray spectroscopy to confirm size, shape, surface morphology and elemental composition. It was found that the average size of developed nano Zn was 8.2?nm, with surface charge of ?5.70?mV and 98?% particles were of Zn metal only. Similarly, the average size of Mg nanoparticles was 6.4?nm with surface charge of ?6.66 and 97.4?% Mg metal yield, whereas, Ti nanoparticles size were found in the ranges between 1.5 and 30?nm with surface charge of ?6.25?mV and 98.6?% Ti metal yield.
机译:在本研究中,锌(Zn),镁(Mg)和钛(Ti)纳米颗粒是使用真菌通过硫酸盐,硝酸盐,氯化物盐和氧化物盐的各种前体盐合成的。为了获得纳米颗粒的生产潜力,从土壤中分离出数百种真菌,并用Zn,Mg和Ti的前体盐进行测试。其中仅鉴定出14种真菌分离物,它们具有将金属盐还原为金属纳米颗粒的潜力。通过分子鉴定,鉴定出6种为黄曲霉,两种分别为土曲霉和管曲霉,一种分别为黑曲霉,巴氏根瘤菌,烟曲霉和米曲霉。优化了产生更多单分散的Zn,Mg和Ti纳米颗粒的因素。结论是0.01 µmM的前体盐浓度,在pH 5.5下孵育72 µh和在28°C的温度下孵育可获得较小的纳米颗粒。生物合成的功能性Zn和Ti纳米颗粒可以纳米形式储存长达90天,而Mg纳米颗粒可以储存长达105天。使用有效的表征技术(即动态光散射,透射电子显微镜,原子力显微镜,能量色散X射线光谱法)分析了生物转化的产品,以确认尺寸,形状,表面形态和元素组成。发现所显影的纳米Zn的平均尺寸为8.2μm,表面电荷为〜5.70μmV,并且98%的颗粒仅由Zn金属制成。同样,Mg纳米粒子的平均尺寸为6.4μm,表面电荷为6.66%,Mg金属产率为97.4%,而Ti纳米粒子的平均尺寸为1.5至30μnm,表面电荷为6.25μmV。 Ti的产率为98.6%。

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