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首页> 外文期刊>Materials transactions >Upconversion Luminescence Properties of Gd2O3: Er3+ Nanospheres and Gd2O3: Er3+@Silica Nanocomposites
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Upconversion Luminescence Properties of Gd2O3: Er3+ Nanospheres and Gd2O3: Er3+@Silica Nanocomposites

机译:Gd2O3:ER3 +纳米球和GD2O3:ER3 + @二氧化硅纳米复合材料的上转化发光性能

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The upconversion luminescence (UCL) of Gd2O3: Er3+ monodisperse nanospheres, synthesized by multistep chemical method, and nanoparticles, produced by combustion synthesis, are presented for comparison. The UCL of nanospheres Gd2O3: Er3+ and Gd2O3: Er3+@Silica have shown strong red or green emission under excitation at 976nm or 980nm by a diode laser with a remarkable increase of the bright red color in the nanospheres. In the core/shell structured nanospheres Gd2O3: Er3+@Silica, we find a higher intensity of upcoversion emission, increased stability and better dispersion capability in solvents and water. The UCL intensities of green and red color while 976nm or 980nm excitation were dependent on the diode laser power. The slope values of Er3+ ion's transitions H-2(11/2)-I-4(15/2), S-4(3/2)-I-4(15/2) and F-4(9/2)-I-4(15/2) in the silica-coated nanospheres are 1.99, 1.62 and 1.66 respectively, which properly indicate the two-photon mechanism of upconversion emission. The synthesized Gd2O3 nanospheres codoped with Yb and Er show strong UCL intensity than those of Gd2O3: Er3+. The obtained Gd2O3: Er3+ nanospheres and nanoparticles, as well as Gd2O3: Yb3+, Er3+ and its silica-coated versions, are promising materials to develop with potential application in high technology and biomedicine.
机译:通过MultiSep化学方法合成的Gd2O3:ER3 +单分散纳米球的上转换发光(UCL),并通过燃烧合成产生的纳米颗粒进行比较。纳米球的UCL Gd2O3:ER3 +和Gd2O3:ER3 + @二氧化硅在激发下在976nm或980nm的激发下显示出强烈的红色或绿色发射,二极管激光在纳米球中具有显着增加的鲜红色增加。在芯/壳结构纳米球中Gd2O3:ER3 + @二氧化硅,我们在溶剂和水中找到更高的上溶剂发射,稳定性和更好的分散能力强度。绿色和红色的UCL强度,而976nm或980nm励磁依赖于二极管激光功率。 ER3 +离子的过渡H-2(11/2)-i-4(15/2),S-4(3/2)-i-4(15/2)和F-4(9/2)的斜率值(9/2二氧化硅涂覆的纳米球中的-I-4(15/2)分别为1.99,1.62和1.66,其适当地表明上增强发射的双光子机制。合成的Gd2O3纳米球,其具有Yb和ER的基于GD2O3:ER3 +的强度强度。所得Gd2O3:ER3 +纳米球和纳米颗粒,以及Gd2O3:YB3 +,ER3 +及其二氧化硅涂层版本,是具有高科技和生物医学中的潜在应用的有希望的材料。

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