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Characterization of aluminum, aluminum oxide and titanium dioxide nanomaterials using a combination of methods for particle surface and size analysis

机译:铝,氧化铝和二氧化钛纳米材料的表征,使用粒子表面和尺寸分析方法的组合

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摘要

The application of appropriate analytical techniques is essential for nanomaterial (NM) characterization. In this study, we compared different analytical techniques for NM analysis. Regarding possible adverse health effects, ionic and particulate NM effects have to be taken into account. As NMs behave quite differently in physiological media, special attention was paid to techniques which are able to determine the biosolubility and complexation behavior of NMs. Representative NMs of similar size were selected: aluminum (Al-0) and aluminum oxide (Al2O3), to compare the behavior of metal and metal oxides. In addition, titanium dioxide (TiO2) was investigated. Characterization techniques such as dynamic light scattering (DLS) and nanoparticle tracking analysis (NTA) were evaluated with respect to their suitability for fast characterization of nanoparticle dispersions regarding a particle's hydrodynamic diameter and size distribution. By application of inductively coupled plasma mass spectrometry in the single particle mode (SP-ICP-MS), individual nanoparticles were quantified and characterized regarding their size. SP-ICP-MS measurements were correlated with the information gained using other characterization techniques, i.e. transmission electron microscopy (TEM) and small angle X-ray scattering (SAXS). The particle surface as an important descriptor of NMs was analyzed by X-ray diffraction (XRD). NM impurities and their co-localization with biomolecules were determined by ion beam microscopy (IBM) and confocal Raman microscopy (CRM). We conclude advantages and disadvantages of the different techniques applied and suggest options for their complementation. Thus, this paper may serve as a practical guide to particle characterization techniques.
机译:适当的分析技术的应用是纳米材料(NM)特点是很有必要。在这项研究中,我们比较了NM分析不同的分析技术。对于可能的不良健康效应,离子和颗粒NM效应必须加以考虑。作为网管生理媒体表现完全不同,特别注意了这是能够确定NMS的生物溶解度和络合行为的技术。选择类似大小的代表NMS:铝(Al-0)和氧化铝(氧化铝),以比较的金属和金属氧化物的行为。此外,二氧化钛(TiO2)进行了研究。表征技术如动态光散射(DLS)和纳米颗粒跟踪分析(NTA)相对于它们的适用性用于与一个粒子的流体动力学直径和粒度分布的纳米粒子分散体的快速表征进行了评价。通过在单个粒子模式(SP-ICP-MS)电感耦合等离子体质谱法的应用,单独的纳米颗粒进行定量和表征关于它们的大小。 SP-ICP-MS测量与使用其他表征技术获得(SAXS)的信息,即透射电子显微镜(TEM)和小角度X射线散射相关。颗粒表面作为NMS的一个重要的描述符是由X射线衍射(XRD)分析。 NM杂质和它们的共定位与生物分子通过离子束显微镜(IBM)和共焦拉曼显微镜(CRM)确定。我们的结论优点和不同的技术应用的缺点,并提出自己的补充选项。因此,该纸可以用作实用指南颗粒表征技术。

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  • 来源
    《RSC Advances》 |2018年第26期|共12页
  • 作者单位

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    Univ Leipzig Inst Med Phys &

    Biophys Hartelstr 16-18 D-04275 Leipzig Germany;

    German Fed Inst Risk Assessment BfR Dept Food Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    BAM Fed Inst Mat Res &

    Testing Unter Eichen 87 D-12205 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    Univ Leipzig Inst Med Phys &

    Biophys Hartelstr 16-18 D-04275 Leipzig Germany;

    Univ Rennes 1 MRIC TEM BIOSIT 2 Av Pro Leon Bernard Rennes France;

    Univ Rennes CNRS ISCR UMR6226 F-35000 Rennes France;

    Univ Rennes CNRS ISCR UMR6226 F-35000 Rennes France;

    ANSES French Agcy Food Environm &

    Occupat Hlth &

    Safety Fougeres Lab 10B Rue Claude Bourgelat F-35306 Fougeres France;

    Univ Leipzig Div Nucl Solid State Phys Fac Phys &

    Geosci Felix Bloch Inst Solid State Phys Linnestr 5 D-04103 Leipzig Germany;

    German Fed Inst Risk Assessment BfR Dept Food Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Food Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    BAM Fed Inst Mat Res &

    Testing Unter Eichen 87 D-12205 Berlin Germany;

    BAM Fed Inst Mat Res &

    Testing Richard Willstatter Str 11 D-12489 Berlin Germany;

    ANSES French Agcy Food Environm &

    Occupat Hlth &

    Safety Fougeres Lab 10B Rue Claude Bourgelat F-35306 Fougeres France;

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Food Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

    German Fed Inst Risk Assessment BfR Dept Chem &

    Prod Safety Max Dohrn Str 8-10 D-10589 Berlin Germany;

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  • 正文语种 eng
  • 中图分类 化学;
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