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A novel green synthesis approach for improved photocatalytic activity and antibacterial properties of zinc sulfide nanoparticles using plant extract of Acalypha indica and Tridax procumbens

机译:一种新型绿色合成方法,用于改善光催化活性和硫化锌纳米颗粒的抗菌性能使用植物提取物的植物提取物和Tridax Procumbens

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摘要

In this present work, improved photocatalytic activity and antibacterial properties of zinc sulfide (ZnS) nanoparticles using plant extract of Acalypha indica (A:ZnS) and Tridax procumbens (T:ZnS) via novel green synthesis route had been reported. X-ray diffraction (XRD), transmission electron microscopy (TEM), and Energy dispersive X-ray spectroscopy (EDX) were used to investigate the crystal structure, surface morphology, and elemental composition analysis, respectively. The optical properties and functional group analysis of the samples were done using UV-visible, photoluminescence, and Fourier transform infrared spectroscopy (FTIR). The influence of Acalypha indica (A:ZnS) and Tridax procumbens (T:ZnS) plant extract concentration on the structural, surface morphology, optical, antibacterial, and photocatalytic activity has been systematically investigated. XRD results are suggested that ZnS hexagonal wurtzite crystal structure formed during biosynthesis process. TEM and SAED images show the hexagonal- and spherical-shaped structure in morphology with average diameter around 5-20 nm which is good agreement with the grain size calculated from XRD. Optical properties were found to have considerable red shift in the absorption edge and decreasing band gap was observed for A:ZnS/T:ZnS (2.96 eV) when compared to pure ZnS (3.36 eV). The antibacterial properties of ZnS/A:ZnS/T:ZnS nanoparticles were investigated using in vitro disk diffusion method against human pathogenic microorganisms. The inhibition zone of biosynthesized ZnS nanoparticles increased by increasing plant extracts concentration. This result conformed that A:ZnS/T:ZnS nanoparticles have more potential as antibiotic when compared with pure ZnS. Besides, Biosynthesized T:ZnS (40 ml) nanoparticles showed high surface area (131.84 m~2/g) and larger pore size (12.15 nm) than pure ZnS sample; this high surface area may offer more active sites to enhance photocatalytic ability. The dye degradation properties of methylene blue dye (MBD) were investigated using the ZnS/A:ZnS/T:ZnS nanoparticles under visible light irradiation. The results show that T:ZnS (40 ml) has excellent photocatalytic performance towards MBD such as high degradation efficiency (98%) and more cyclic stability than other ZnS samples. The role of plant extract on dye degradation properties was discussed based on the possible inhibition of photogenerated electron-hole pair recombination during dye degradation under visible light irradiation.
机译:在本发明的工作中,已经报道了通过新颖的绿色合成途径使用植物提取物的硫化锌硫化锌(ZnS)纳米颗粒的改善的光催化活性和抗菌性能,并通过新的绿色合成途径进行植物提取物。使用X射线衍射(XRD),透射电子显微镜(TEM)和能量分散X射线光谱(EDX)分别研究晶体结构,表面形态和元素成分分析。样品的光学性质和官能团分析使用UV可见光,光致发光和傅立叶变换红外光谱(FTIR)进行。已经系统地研究了acalypha indica(A:ZnS)和Tridax procumbens(T:ZnS)植物提取物浓度对结构,表面形态,光学,抗菌和光催化活性的影响。 XRD结果建议在生物合成过程中形成的ZnS六边形紫立岩晶体结构。 TEM和SAED图像显示六边形和球形结构,其形态学,平均直径约为5-20nm,与XRD计算的晶粒尺寸良好。发现光学性质在与纯ZNS(3.36eV​​)相比时,观察到吸收边缘和ZnS / T:ZnS(2.96eV)的ZnS(2.96eV)在吸收边缘中具有相当大的红移。使用体外盘扩散法研究ZnS / A:ZnS / T:ZnS纳米颗粒的抗菌性质,用于对人致病微生物进行体外盘扩散法研究。通过增加植物提取物浓度增加生物合成ZnS纳米粒子的抑制区。该结果符合A:ZnS / T:与纯ZnS相比,ZnS / T:ZnS纳米粒子具有更大的抗生素潜力。此外,生物合成的T:ZnS(40mL)纳米颗粒显示出高表面积(131.84m〜2 / g)和较大的孔径(12.15nm),而不是纯ZnS样品;这种高表面积可以提供更多的活性位点以增强光催化能力。使用ZnS / A:ZnS / T:ZnS纳米颗粒在可见光照射下研究了亚甲基蓝染料(MBD)的染料降解性质。结果表明,T:ZnS(40mL)对MBD具有优异的光催化性能,如高降解效率(98%)和比其他ZNS样品更多的循环稳定性。植物提取物在可见光照射下染料降解期间的光发性电子 - 空穴对重组的可能抑制,讨论了植物提取物对染料降解性质的作用。

著录项

  • 来源
    《Journal of materials science》 |2020年第12期|9846-9859|共14页
  • 作者单位

    Department of Electronics Nehru Arts and Science College Coimbatore Tamilnadu India;

    Department of Electronics Nehru Arts and Science College Coimbatore Tamilnadu India;

    Department of Electronics Nehru Arts and Science College Coimbatore Tamilnadu India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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