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通过吸收环境 CO2,增强纳米银悬浮液中 Ag(+) 离子的释放。

Enhanced Ag(+) Ion Release from Aqueous Nanosilver Suspensions by Absorption of Ambient CO2.

机构信息

†Particle Technology Laboratory, Institute of Process Engineering, Department of Mechanical and Process Engineering, ETH Zurich, Sonneggstrasse 3, CH-8092 Zurich, Switzerland.

‡Department of Environmental Health, School of Public Health, Harvard University, 665 Huntington Avenue, Boston, Massachusetts 02115, United States.

出版信息

Langmuir. 2015 May 19;31(19):5284-90. doi: 10.1021/la504946g. Epub 2015 May 8.

Abstract

Nanosilver with closely controlled average particle diameter (7-30 nm) immobilized on nanosilica is prepared and characterized by X-ray diffraction, N2 adsorption, and transmission electron microscopy. The presence of Ag2O on the as-prepared nanosilver surface is confirmed by UV-vis spectroscopy and quantified by thermogravimetric analysis and mass spectrometry. The release of Ag(+) ions in deionized water is monitored electrochemically and traced quantitatively to the dissolution of a preexisting Ag2O monolayer on the nanosilver surface. During this dissolution, the pH of the host solution rapidly increases, suppressing dissolution of the remaining metallic Ag. When, however, a nanosilver suspension is exposed to a CO2-containing atmosphere, like ambient air during its storage or usage, then CO2 is absorbed by the host solution decreasing its pH and contributing to metallic Ag dissolution and further leaching of Ag(+) ions. So the release of Ag(+) ions from the above closely sized nanosilver solutions in the absence and presence of CO2 as well as under synthetic air containing 200-1800 ppm of CO2 is investigated along with the solution pH and related to the antibacterial activity of nanosilver.

摘要

采用 X 射线衍射、N2 吸附和透射电子显微镜对平均粒径(7-30nm)得到严格控制的纳米银进行固定化纳米二氧化硅进行了制备和表征。通过紫外可见光谱证实了所制备的纳米银表面上存在 Ag2O,并通过热重分析和质谱法进行了定量。通过电化学监测并定量跟踪了在去离子水中 Ag(+)离子的释放,这归因于纳米银表面上预先存在的 Ag2O 单层的溶解。在此溶解过程中,主体溶液的 pH 值迅速升高,抑制了剩余金属 Ag 的溶解。然而,当纳米银悬浮液暴露于含有 CO2 的气氛中时,例如在储存或使用过程中处于环境空气中,那么 CO2 会被主体溶液吸收,从而降低 pH 值并促进金属 Ag 的溶解和进一步的 Ag(+)离子浸出。因此,研究了在不存在和存在 CO2 以及在含有 200-1800ppm CO2 的合成空气中,上述紧密尺寸的纳米银溶液中 Ag(+)离子的释放情况,以及溶液 pH 值与纳米银的抗菌活性的关系。

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