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Synthesis and Characterization of Magnetite/Zinc Oxide and Magnetite/Zinc Manganese Sulfide Core-Shell Heterostructured Nanoparticles .

机译:磁铁矿/氧化锌和磁铁矿/硫化锌锰核壳异质结构纳米粒子的合成与表征。

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摘要

Currently, core-shell heterostructured nanosystems are emerging as next-generation materials due to their potential multifunctionalities in contrast with the more limited single-component counterparts. Systematic investigation of core-shell nanostructures of ZnO and bare-and-doped-Mn2+ ZnS nanocrystals on the surface of magnetite nanoparticles (Fe3O 4) was performed. The magnetite cores were prepared via the co-precipitation method and were next treated with an appropriate surfactant. The Fe3 O4/(S) (S=ZnO and ZnMnS) core-shell nanoparticles were obtained by an aqueous solution method at room temperature. The structural tests were carried out using an x-ray diffractometer (XRD) which showed the development of crystalline phases of cubic Fe3O4, hexagonal ZnO wurtzite and cubic ZnS. These patterns also established the matching between bare and doped-Mn2+ ZnS diffraction peaks. Broadness of the diffraction peaks evidenced the formation of nanosize phases. The transmission electron microscopy (TEM) confirmed the deposition of a semiconductor shell on the surface of superparamagnetic Fe3O4 nanoparticles. The UV-Vis spectra showed the presence of a strong absorption peak and photoluminescence (PL) spectra displayed the emission peak due to excitonic recombination and a very weak defect-related emission peak suggesting the rearrangement of electronic configuration in the core-shell structures when ZnO is surrounding the core. These spectra also displayed the strong emission peak attributed to paramagnetic ion Mn2+ when acted as dopant in the host ZnS structure. The study of the magnetic properties was carried out using a vibrating sample magnetometer (VSM) which evidenced considerable drop in the saturation magnetization of the Fe3O4/ZnO nanoparticles in comparison to individual Fe3O4 ones. For the Fe3O4/ZnMnS system a slight ferromagnetic behavior at room temperature was observed. The chemical composition of these nanomaterials was performed by x-ray photoelectron spectroscopy (XPS). This elemental analysis demonstrated the presence of Zn on the surface of the magnetic seed at an appropriate shell thickness. These core-shell heterostructured nanoparticles are receiving great potential applications in biomedical areas such as photodynamic therapy.
机译:目前,核壳异质结构纳米系统由于具有潜在的多功能性而与单组分对应物更为有限相反,因此正在成为下一代材料。对磁铁矿纳米颗粒(Fe3O 4)表面ZnO和裸露掺杂的Mn2 + ZnS纳米晶体的核壳纳米结构进行了系统研究。通过共沉淀法制备磁铁矿芯,然后用适当的表面活性剂处理。在室温下通过水溶液法获得Fe 3 O 4 /(S)(S = ZnO和ZnMnS)核壳纳米粒子。使用X射线衍射仪(XRD)进行结构测试,结果显示了立方Fe3O4,六方ZnO纤锌矿和立方ZnS的晶相的发展。这些图案还建立了裸露的和掺杂的Mn2 + ZnS衍射峰之间的匹配。衍射峰的宽度证明了纳米相的形成。透射电子显微镜(TEM)证实了超顺磁性Fe3O4纳米颗粒表面上的半导体壳沉积。 UV-Vis光谱显示存在强吸收峰,而光致发光(PL)光谱则显示由于激子复合而产生的发射峰以及与缺陷相关的非常弱的发射峰,表明当ZnO时核壳结构中的电子构型发生了重排围绕核心。这些光谱还显示出在主体ZnS结构中充当掺杂剂时归因于顺磁性离子Mn2 +的强发射峰。使用振动样品磁力计(VSM)进行了磁性能的研究,与单独的Fe3O4相比,Fe3O4 / ZnO纳米粒子的饱和磁化强度明显下降。对于Fe3O4 / ZnMnS系统,在室温下观察到轻微的铁磁行为。这些纳米材料的化学组成通过X射线光电子能谱(XPS)进行。该元素分析表明,在适当的壳厚度下,磁性种子的表面上存在Zn。这些核-壳异质结构纳米粒子在生物医学领域(例如光动力疗法)中具有巨大的潜在应用。

著录项

  • 作者单位

    University of Puerto Rico, Mayaguez (Puerto Rico).;

  • 授予单位 University of Puerto Rico, Mayaguez (Puerto Rico).;
  • 学科 Physics Condensed Matter.;Engineering Materials Science.;Nanotechnology.
  • 学位 M.S.
  • 年度 2010
  • 页码 61 p.
  • 总页数 61
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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