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首页> 外文期刊>Applied Surface Science >Rational design of Ag-ZnO-Fe_3O_4 nanocomposite with promising antimicrobial activity under LED light illumination
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Rational design of Ag-ZnO-Fe_3O_4 nanocomposite with promising antimicrobial activity under LED light illumination

机译:具有LED光照射下有前景抗微生物活性的Ag-ZnO-Fe_3O_4纳米复合材料的理性设计

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Surface plasmon resonance effect, Fenton's reaction, plant extract, and nanoparticles have all proven to be efficient in killing or reducing the activity of numerous microorganisms. To study the synergetic effects among these key parameters, Ag-ZnO-Fe3O4 nanocomposites have been synthesized via solution combustion approach in the presence of aqueous extract of Thymus vulgaris leaves. The successful construction of Ag-ZnO-Fe3O4 nanocomposite and its purity were confirmed by X-ray diffraction, X-ray photoelectron spectra, and energy dispersive X-Ray spectroscopy analyses. Dynamic light scattering and transmission electron microscopy measurements showed that the size of the obtained particles is in the nanoscale. The synthesized nanocomposite showed broad inhibition against the selected bacteria and yeast under LED light. UV-vis absorption measurement showed that the heterostructure exhibits broad plasmonic peak centered around 434 nm. Hot charge carriers are generated in Ag under LED light illumination and separated through Ag-ZnO heterojunction resulting in the production of a considerable amount of (OH)-O-center dot radicals as confirmed by ESR analysis. Moreover, Ag acts as H2O2 donator and photogenerated electrons provider for the Fenton's reaction, resulting in the generation of much more (OH)-O-center dot radicals. Therefore, Ag-ZnO-Fe3O4 nanocomposite shows improved microbial activity under LED light illumination.
机译:表面等离子体共振效应,Fenton的反应,植物提取物和纳米颗粒都已证明是有效的杀害或减少许多微生物的活性。为了研究这些关键参数中的协同作用,通过溶液燃烧方法在胸腺紫色叶片的水提取物存在下通过溶液燃烧方法合成了Ag-ZnO-Fe3O4纳米复合材料。通过X射线衍射,X射线光电子和能量分散X射线光谱分析确认了Ag-ZnO-Fe3O4纳米复合材料的成功构建及其纯度。动态光散射和透射电子显微镜测量显示,所得颗粒的尺寸是纳米级。合成的纳米复合物在LED光下对所选细菌和酵母的宽度抑制较大。 UV-Vis吸收测量表明,异质结构表现出宽的等离子体峰,其中心为中心约434nm。在LED光照射下在AG中产生热电荷载流子,并通过Ag-ZnO异质结分离,导致通过ESR分析证实的相当量的(OH)-O-中心点基团的产生。此外,AG充当芬顿反应的H2O2捐助剂和光发生的电子提供者,导致产生更多(OH)-O中心点自由基。因此,Ag-ZnO-Fe3O4纳米复合材料显示LED光照射下的改善的微生物活性。

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