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Linking the Physicochemical Properties of Calcined Titania Nanoparticles with Their Biocidal Activity

机译:将煅烧的二氧化钛纳米颗粒的理化特性与其杀生物活性联系起来

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Titanium dioxide nanoparticles (nTiO2) show biocidal activity when exposed to UV illumination. Modification of their physical properties can expand their photoresponse region toward visible light. In this study, such modification was made through a sol-gel synthesis followed by calcination at a range of temperatures (250–900 °C), generating a series of nTiO2 particles with different crystal phases, sizes, porosities, zeta potentials, and BET surface areas. The unique properties of nTiO2 were linked to their toxicity to the marine bacterium, Vibrio fischeri. A modified “Flash” high-through put assay was used to test the viability of these marine organisms after short term (15–60 min) exposure under visible light only to the individual groups of nTiO2 (500–2000 μg/mL). Linear regression analysis indicated that across all concentrations and time points, high biocidal activity correlated with the amorphous and anatase crystal phases, high BET surface area, high pore volume and small crystal size. The linkage between physicochemistry and nanotoxicity would be helpful for future design of more efficient and sustainable nTiO2.
机译:二氧化钛纳米颗粒(nTiO2)暴露于紫外线照射下显示出杀菌活性。改变它们的物理性质可以将它们的光响应区域扩展到可见光。在这项研究中,这种修饰是通过溶胶-凝胶合成,随后在一定温度范围(250–900°C)下煅烧进行的,产生了一系列具有不同晶相,尺寸,孔隙率,ζ电位和BET的nTiO2颗粒。表面积。 nTiO2的独特性质与其对海洋细菌费氏弧菌的毒性有关。经过改良的“ Flash”高通量分析法仅在可见光下仅短期暴露于单个nTiO2(500-2000μg/ mL)组之后,才用于测试这些海洋生物的生存能力。线性回归分析表明,在所有浓度和时间点上,高杀菌活性与无定形和锐钛矿晶体相,高BET表面积,高孔体积和小晶体尺寸相关。物理化学和纳米毒性之间的联系将有助于未来设计更有效和可持续的nTiO2。

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