首页> 外文期刊>chemistryselect >Red-Emitting Magnetic Nanocomposites Assembled from Ag-Decorated Fe3O4@SiO2 and Y2O3:Eu3+: Impact of Iron-Oxide/Silver Nanoparticles on Eu3+ Emission
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Red-Emitting Magnetic Nanocomposites Assembled from Ag-Decorated Fe3O4@SiO2 and Y2O3:Eu3+: Impact of Iron-Oxide/Silver Nanoparticles on Eu3+ Emission

机译:由Ag-Decorated Fe3O4@SiO2和Y2O3:Eu3+组装的发光磁性纳米复合材料:氧化铁/银纳米颗粒对Eu3+发射的影响

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摘要

The new multistep approach for co-assembling magnetic iron oxide nanoflowers with red-emitting Y2O3:Eu3+ to form luminescent and magnetic nanocomposites was reported. The Fe3O4 core prepared by solvothermal method was layered by SiO2 shell and decorated with small size spherical Ag nanoparticles as well as further coated with Y2O3:Eu3+ luminophore. The nanoflower shape Fe3O4 core of size similar to 110 nm and crystalline cubic structure of bifunctional iron-oxide@Y2O3:Eu3+, Fe3O4@SiO2@Y2O3:Eu3+ and Fe3O4@SiO2-Ag@Y2O3:Eu3+ (1 mol) nanomaterials were confirmed from X-rays diffraction, EDS spectra and transmission electron microscopy (TEM) images. The static magnetic measurements supported and manifested nonsuperparamagnetic behavior of the materials at 300 K. The iron oxides are usually luminescence quenchers. In order to rationalize this effect, their optical properties based on their emission spectral data and luminescence decay curves were studied. Experimental intensity parameters (Wl), lifetimes (t), intrinsic quantum yield (Q(Ln)(Ln)) as well as radiative (Arad) and non-radiative (Anrad) decay rates were calculated to probe the local chemical environment of the Eu3+ ion and to better understand the phenomena of iron oxide induced luminescence quenching. The highest value of the intrinsic quantum yield (Q(Ln)(Ln) = 74) for the alpha-Fe2O3@Y2O3:Eu3+ (1 mol) among all the luminescent and magnetic nanocomposites suggests that alpha-Fe2O3 phase induces a lower luminescence quenching then Fe3O4/g-Fe2O3. The SiO2 thin layer leads to improve the luminescence efficiency, whereas the Ag nanoparticles act as luminescence quencher. These novel Eu3+ nanomaterials may act as a red emitting layer for magnetic and light converting molecular devices.
机译:报道了将磁性氧化铁纳米花与发光的Y2O3:Eu3+共组装形成发光和磁性纳米复合材料的多步骤方法。溶剂热法制备的Fe3O4核心采用SiO2壳层状,并用小尺寸球形Ag纳米颗粒装饰,并进一步包覆Y2O3:Eu3+发光团。通过X射线衍射、EDS光谱和透射电子显微镜(TEM)图像证实了尺寸与110 nm相似的纳米花形Fe3O4核心和双功能铁-oxide@Y2O3:Eu3+、Fe3O4@SiO2@Y2O3:Eu3+和Fe3O4@SiO2-Ag@Y2O3:Eu3+(1 mol%)纳米材料的立方晶体结构。静态磁测量支持并表现出材料在300 K下的非超顺磁行为。氧化铁通常是发光淬灭剂。为了合理化这种效应,研究了基于其发射光谱数据和发光衰减曲线的光学特性。计算了实验强度参数(Wl)、寿命(t)、本征量子产率(Q(Ln)(Ln))以及辐射衰变速率(Arad)和非辐射衰变速率,以探究Eu3+离子的局部化学环境,并更好地了解氧化铁诱导发光猝灭现象。在所有发光和磁性纳米复合材料中,α-Fe2O3@Y2O3:Eu3+(1 mol%)的本征量子产率(Q(Ln)(Ln) = 74%)的最高值表明,α-Fe2O3相诱导的发光猝灭程度低于Fe3O4/g-Fe2O3。SiO2薄层提高了发光效率,而Ag纳米颗粒则起到了发光猝灭剂的作用。这些新型Eu3+纳米材料可以作为磁性和光转换分子器件的红色发光层。

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