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Reduction of hazardous reactive oxygen species (ROS) production of ZnO through Mn inclusion for possible UV-radiation shielding application

机译:通过Mn包含ZnO的危险反应性氧物种(ROS)生产用于可能的紫外线屏蔽屏蔽应用

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摘要

Mnx - ZnO(1-x) nanopowders were successfully synthesised through a simple sol-gel method. The samples were annealed at 300 °C to enhance their crystallinity. The lattice structure, morphology and optical properties of the prepared powdered samples were extensively studied using different characterization techniques, confirming the formation of Mnx - ZnO(1-x). The inclusion of Mn did not cause any change to the wurtzite structure of ZnO; however slight peak shifting and increase in lattice parameters were indicated. The normal absorption spectra pointed to a cut-off edge extending beyond the UV region and a Burstein- Moss type band gap broadening induced by the Mn doping. ZnO showed excellent photodegradation activity against methylene blue (MB) upon UV irradiation. Intensifying the dopant concentration resulted in further diminution of photoactivity against MB. This reduction of photocatalytic activity of ZnO upon doping can be drawn to be due to the presence of Mn in the ZnO lattice, which acted as recombination sites for the photogenerated charge carriers. The results demonstrated that doping ZnO with Mn can be used to suppress the oxidative stress induced by reduced oxygen species (ROS) through generation of recombination centres. The suppression of toxic ROS generation implies possible application in fabrics and ointments for UV shielding applications.
机译:通过简单的溶胶方法成功地合成MNX - ZnO(1-X)纳米粉末。将样品在300℃下退火以增强它们的结晶度。使用不同的表征技术广泛研究制备的粉末样品的晶格结构,形态和光学性质,确认MNX - ZnO(1-X)的形成。包含Mn对ZnO的紫立茨结构没有造成任何变化;然而,表明了略微峰值偏移和晶格参数的增加。正常吸收光谱指向截止边缘,其延伸超过UV区域,以及由Mn掺杂引起的Burstein-Moss型带隙扩展。 ZnO在紫外线照射时显示出对亚甲基蓝(MB)的优异光降解活性。强化掺杂剂浓度导致进一步减少对MB的光脱敏。 ZnO在掺杂时的光催化活性的这种降低可以绘制,这是由于ZnO晶格中的Mn存在,其用作光催化的电荷载体的重组位点。结果表明,掺杂ZnO与Mn的ZnO可用于抑制通过产生重组中心的减少的氧物种(ROS)诱导的氧化应激。抑制有毒的ROS生成意味着在紫外线屏蔽应用中的织物和软膏中可能应用。

著录项

  • 期刊名称 Heliyon
  • 作者单位
  • 年(卷),期 2020(6),6
  • 年度 2020
  • 页码 e04186
  • 总页数 8
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:材料科学;纳米技术;光催化;半导体金属氧化物;重组中心;电子/孔对;

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