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            美國布魯克海文儀器公司>資料下載>Nanobrook Omni測量應用案例-79

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            Nanobrook Omni測量應用案例-79

            閱讀:175          發(fā)布時間:2019-2-28
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             文獻名:Sizing and simultaneous quantification of nanoscale titanium dioxide and a dissolved titanium form by single particle inductively coupled plasma mass spectrometry 

             

            作者: Janja Vidmara,b, Radmila Mila?i?a,b, Janez Š?an?ara,b

            a Department of Environmental Sciences, Jo?ef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia

            b Jo?ef Stefan International Postgraduate School, Jamova 39, 1000 Ljubljana, Slovenia

             

            摘要:As a consequence of their widespread use, titanium dioxide nanoparticles (TiO2NPs) have been released into the environment where they can act as stressors towards biota. For the assessment of the environmental impact of these NPs it is important to quantitatively determine their concentration, size distribution and the dissolved Ti fraction in different water samples. In the present work, a new analytical approach was applied for sizing and quantitative determination of TiO2NPs (anatase and rutile) and dissolved Ti in aqueous samples by the use of single particle inductively coupled plasma mass spectrometry (SP-ICP-MS). The accuracy of the quantification of TiO2NPs by SP-ICP-MS was verified by calculating the recoveries between the determined and expected Ti concentrations (90100%). The size distributions of TiO2NPs calculated by SP-ICP-MS (108 ± 10 nm for rutile, 29 ± 2 nm for anatase) were in a good agreement with data obtained by TEM (96106 nm for rutile, 2138 nm for anatase) and DLS (117 ± 22 nm for rutile, 42 ± 30 nm for anatase). The influence of different dwell times on the sizing and quantification of nanoscale titanium dioxide was also examined. Low limits of detection for NP diameter (37 nm) and NP concentration (3.69 × 103 ng Ti mL1 for rutile and 0.058 × 103 ng Ti mL1 for anatase) were obtained. In order to apply the procedure developed for the sizing and quantification of TiO2NPs in environmental waters, the severe Ca isobaric interference at m/z 48 was overcome by measuring the Ti on m/z 47. It was demonstrated that the procedure optimized for the determination of Ti in environmental waters can be applied in the sizing and quantification of TiO2NPs in river water samples spiked with nanoscale anatase and rutile.

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