Sreedharan Smitha Mony, Singh Surinder Pal, Singh Rajni
1Amity Institute of Microbial Biotechnology, Amity University, Sector-125, Noida, Uttar Pradesh 201313 India.
2National Physical Laboratory, Dr. K.S. Krishnan Marg, New Delhi, 110012 India.
Indian J Microbiol. 2019 Sep;59(3):321-327. doi: 10.1007/s12088-019-00804-2. Epub 2019 Apr 24.
Microbes can serve as mediators for the fabrication of complicated nano-structures, obviating the tedious and time-consuming methods of synthesis. The shape of a nanoparticle has a very prominent role in defining the functionality in prospective arenas. So, the flower shaped nanoparticles are in focus nowadays due to their enhanced electrocatalytic and optical properties as compared to the spherical ones. We present the biosynthesis of flower shaped gold nanoparticles by RSB64 and process parameters optimization using central composite design. The two well-separated scattering spectra showing absorption peaks at 540 nm and 750 nm indicate the presence of anisotropic gold nanoparticles and the results were corroborated by transmission electron microscopy analysis. The presence of gold nanoparticles was further confirmed by energy dispersive X-ray studies. The functional groups responsible for the stability of gold nanoparticles were predicted by Fourier transform infrared spectroscopy. The gold nanoparticles biosynthesis were collective effects of three experimental process parameters viz pH, temperature and precursor concentration. These three parameters were statistically optimized wherein pH 11.0, substrate concentration 1:1 (v/v) and temperature of 50 °C resulted in the synthesis of stable flower shaped gold nanoparticles of 50 nm size. The results indicated the tailored biosynthesis of gold nanoparticles with a flower like morphology by multi process parameter analysis to finalize robust conditions for the synthesis using RSB64. These gold nanoflowers demonstrate increased surface area efficiency/reactivity and could be employed for sustained and controlled delivery of drugs.
微生物可作为制造复杂纳米结构的媒介,省去了繁琐且耗时的合成方法。纳米颗粒的形状在确定预期领域的功能方面起着非常突出的作用。因此,与球形纳米颗粒相比,花状纳米颗粒因其增强的电催化和光学性质而成为当下的研究热点。我们展示了通过RSB64生物合成花状金纳米颗粒以及使用中心复合设计优化工艺参数的过程。两个在540纳米和750纳米处显示吸收峰的明显分离的散射光谱表明存在各向异性金纳米颗粒,透射电子显微镜分析证实了该结果。能量色散X射线研究进一步证实了金纳米颗粒的存在。通过傅里叶变换红外光谱预测了负责金纳米颗粒稳定性的官能团。金纳米颗粒的生物合成是三个实验工艺参数即pH值、温度和前驱体浓度共同作用的结果。对这三个参数进行了统计优化,其中pH值为11.0、底物浓度为1:1(v/v)以及温度为50°C时,合成出了尺寸为50纳米的稳定花状金纳米颗粒。结果表明,通过多工艺参数分析可定制生物合成具有花状形态的金纳米颗粒,从而确定使用RSB64进行合成的稳健条件。这些金纳米花展示出更高的表面积效率/反应性,可用于药物的持续和可控递送。