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Multiscale Metal Oxide Particles to Enhance Photocatalytic Antimicrobial Activity against

机译:多尺度金属氧化物颗粒以增强光催化抗菌活性

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摘要

Antimicrobial activity of multiscale metal oxide (MO) particles against Escherichia coli (E. coli) and M13 bacteriophage (phage) was investigated under dual ultraviolet (UV) irradiation. Zinc oxide (ZnO), magnesium oxide (MgO), cuprous oxide (Cu2O), and cupric oxide (CuO) were selected as photocatalytic antimicrobials in MO particles. Physicochemical properties including morphology, particle size/particle size distribution, atomic composition, crystallinity, and porosity were evaluated. Under UV-A and UV-C irradiation with differential UV-C intensities, the antimicrobial activity of MO particles was monitored in E. coli and phage. MO particles had nano-, micro- and nano- to microscale sizes with irregular shapes, composed of atoms as ratios of chemical formulae and presented crystallinity as pure materials. They had wide-range specific surface area levels of 0.40–46.34 m2/g. MO particles themselves showed antibacterial activity against E. coli, which was the highest among the ZnO particles. However, no viral inactivation by MO particles occurred in phage. Under dual UV irradiation, multiscale ZnO and CuO particles had superior antimicrobial activities against E. coli and phage, as mixtures of nano- and microparticles for enhanced photocatalytic antimicrobials. The results showed that the dual UV-multiscale MO particle hybrids exhibit enhanced antibiotic potentials. It can also be applied as a next-generation antibiotic tool in industrial and clinical fields.
机译:在双紫外(UV)辐射下研究了对抗大肠杆菌(大肠杆菌)和M13噬菌体(噬菌体)的多尺度金属氧化物(Mo)颗粒的抗微生物活性。选择氧化锌(ZnO),氧化镁(MgO),氧化镁(Cu 2 O)和氧化铜(CuO)作为Mo颗粒的光催化抗微生物。评估了物理化学性质,包括形态,粒度/粒度分布,原子组合物,结晶度和孔隙率。根据uV-A和UV-C辐射,具有差异UV-C强度,在大肠杆菌和噬菌体中监测Mo颗粒的抗微生物活性。 Mo颗粒具有具有不规则形状的纳米,微型和纳米至微观尺寸,由原子作为化学式的比例组成,并作为纯材料呈现结晶度。它们具有0.40-46.34m2 / g的宽范围的比表面积水平。 Mo颗粒本身显示出对大肠杆菌的抗菌活性,这是ZnO颗粒中最高的。然而,噬菌体中没有Mo颗粒的病毒失活。在双紫外线照射下,多尺度ZnO和CuO颗粒具有优异的抗微生物活性,例如用于增强的光催化抗微生物的纳米和微粒的混合物。结果表明,双紫外线 - 多尺度Mo粒子杂交物表现出增强的抗生素潜力。它还可以作为工业和临床领域的下一代抗生素工具应用。

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