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Biogenic ZnO nanoparticles: a study of blueshift of optical band gap and photocatalytic degradation of reactive yellow 186 dye under direct sunlight

机译:生物源性ZnO纳米粒子:在直射下阳光下的反应黄186染料的光学带隙和光催化降解的研究

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Synthesis of nanoparticles (NPs) using plant extracts has been suggested as an environmentally friendly alternative to chemical synthesis of semiconductor NPs. In the present study, ZnO NPs were synthesized by a simple and cost-effective method using Coriandrum sativum leaf extract and zinc acetate as precursors. The as-synthesized ZnO NPs were characterized by UV-visible spectroscopy, transmission electron microscopy (TEM), Fourier transform infrared (FTIR) spectroscopy, X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM) and energy dispersive X-ray (EDX) analysis. The results confirmed the formation of ZnO NPs with a wurtzite structure, spherical shape and average particle size of 24 nm. The photocatalytic degradation of reactive yellow 186 (RY 186) dye was carried out under direct sunlight irradiation and its degradation efficiency and apparent rate constant (K'_(app) ) of reaction were calculated to be 93.38%, and 0.0019 min~(-1), respectively. The optical band gap value of the as-synthesized ZnO NPs was found to be 3.4 eV, which indicates the presence of blueshift. Owing to the presence of blueshift and a wide band gap of synthesized biogenic ZnO NPs, the overall absorption of sunlight irradiation will be enhanced, which leads to higher degradation efficiency of the dye. The current study thus highlights the optical band gap properties of biogenic ZnO NPs and their significance as a heterogeneous catalyst for the purification of polluted water.
机译:已经建议使用植物提取物的纳米颗粒(NPS)的合成作为半导体NPS的化学合成的环保替代品。在本研究中,通过使用Coriandrum叶子提取物和醋酸锌作为前体的简单且经济高效的方法合成ZnO NP。通过UV可见光谱,透射电子显微镜(TEM),傅里叶变换红外(FTIR)光谱,X射线衍射(XRD),场发射扫描电子显微镜(FESEM)和能量分散X-的AS合成ZnO NPS。射线(EDX)分析。结果证实了ZnO NP的形成,具有紫立岩结构,球形和平均粒度为24nm。在直接阳光照射下进行反应性黄色186(RY186)染料的光催化降解,反应的反应的降解效率和表观速率常数(K'_(APP))为93.38%,0.0019分钟〜( - 1)分别。发现AS合成的ZnO NP的光带间隙值为3.4eV,这表明了BlueShift的存在。由于BlueShift的存在和合成的生物ZnO NPS的宽带隙,整体将提高阳光照射的吸收,这导致染料的降解效率更高。因此,目前的研究突出了生物ZnO NP的光学带隙性能及其作为净化污染水纯化的异质催化剂的重要性。

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