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Crystal structure and optical properties of erbium- and neodymium-doped zirconia nanoparticles

机译:掺and和钕的氧化锆纳米粒子的晶体结构和光学性质

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摘要

We report the synthesis, characterization, and optical properties of high-temperature stable lanthanide-doped luminescent zirconia nanoparticles via a novel method using carbon black as template. Dopant concentrations were varied from 1 to 5% of Er~(3+) or Nd~(3+) and annealing temperatures were varied from 650 to 1100℃. The effects of the dopant concentration on crystal structure and emission properties were evaluated using x-ray powder diffraction and fluorescence spectroscopy, respectively. The lanthanide cations were found to stabilize the tetragonal phase of zirconia over the monoclinic phase as dopant concentration was increased to 5%. Increasing the annealing temperature to 1100℃ had the opposite effect and was found to stabilize the monoclinic phase of zirconia. The luminescence intensity of the Nd-doped zirconia was enhanced by two orders of magnitude over the undoped or Er-doped zirconia. In all cases, the luminescence spectra revealed increasing intensity with increasing annealing temperature. Zirconia luminescence at near-infrared wavelengths is likely caused by oxygen vacancies. This work demonstrates that the spectral signatures of fluorescent zirconia nanoparticles can be modified with small lanthanide dopant concentration. These particles will have utility in fluorescent sensors and tags, as well as new in refractory materials.
机译:我们通过使用炭黑为模板的新方法报告了高温稳定镧掺杂的发光氧化锆纳米粒子的合成,表征和光学性质。掺杂剂的浓度在Er〜(3+)或Nd〜(3+)的1%至5%之间变化,退火温度在650至1100℃之间变化。分别使用X射线粉末衍射和荧光光谱法评估了掺杂剂浓度对晶体结构和发射性质的影响。发现随着掺杂剂浓度增加到5%,镧系元素阳离子在单斜晶相上稳定了氧化锆的四方相。将退火温度提高到1100℃具有相反的效果,并发现可以稳定氧化锆的单斜晶相。 Nd掺杂的氧化锆的发光强度比未掺杂或Er掺杂的氧化锆提高了两个数量级。在所有情况下,发光光谱都显示出随着退火温度的升高强度增加。氧空位可能会导致近红外波长的氧化锆发光。这项工作表明荧光氧化锆纳米粒子的光谱特征可以用少量的镧系元素掺杂剂浓度进行修饰。这些颗粒将在荧光传感器和标签以及耐火材料中得到应用。

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  • 来源
    《Journal of Materials Research 》 |2010年第3期| 500-509| 共10页
  • 作者单位

    The Johns Hopkins University, Applied Physics Laboratory, Laurel, Maryland 20723;

    rnThe Johns Hopkins University, Advanced Technology Laboratory, Baltimore, Maryland 20723;

    rnThe Johns Hopkins University, Applied Physics Laboratory, Laurel, Maryland 20723 University of Maryland, Baltimore, Maryland 21201;

    rnThe Johns Hopkins University, Applied Physics Laboratory, Laurel, Maryland 20723;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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