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Y2BaZnO5:Er3+ microcapsules with enhanced upconversion by vanadium ion codoping

机译:Y2BAZNO5:ER3 +微胶囊具有增强的钒离子编码增强

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Microcapsules of Y2BaZnO5:Er3+ nanocrystals were successfully prepared by a simple hydrothermal method using citric acid as chelating agent. The sizes of the spherical microcapsules varied between 1-5 mm with a wall thickness of about 50-100 nm. The underlying microcapsule formation mechanism was discussed using the gas-bubble-assisted Ostwald ripening process. The Y2BaZnO5:Er3+ microcapsules exhibited characteristic upconversion (UC) emissions of Er3+ with intense yellowish orange color under dual laser pumping at 808 nm as well as 980 nm. Concentration dependent studies revealed that the optimum Er3+ concentration for intense UC at 550 nm and 660 nm was 5 mol% and 7 mol%, respectively. In addition, the optimum Er concentration differed from the excitation wavelength indicating a different UC mechanism. Importantly, the optimum amount of the V5+ co-doping into the Y2BaZnO5:Er3+ phosphors intensified the UC intensity by more than 3 fold. The Y2BaZnO5:Er3+, V5+ phosphor exhibited intense yellowish UC pumped by an 808 nm laser and will have potential applications for in vivo biological labelling, and biomedical imaging and therapies.
机译:通过使用柠檬酸作为螯合剂,通过简单的水热法制备Y2BAZNO5:ER3 +纳米晶体的微胶囊。球形微胶囊的尺寸在1-5毫米之间变化,壁厚约为50-100nm。使用气泡辅助的OSTWALD成熟方法讨论了潜在的微胶囊形成机制。 Y2BAZNO5:ER3 +微胶囊在808nm的双激光泵浦下显示出ER3 +的特征上变化(UC)排放,在808nm和980nm下。浓缩依赖性研究表明,在550nm和660nm处的强度Uc的最佳ER3 +浓度分别为5摩尔%和7mol%。另外,最佳ER浓度与指示不同UC机制的激发波长不同。重要的是,V5 +共掺杂进入Y2BAZNO5的最佳量:ER3 +磷光体将UC强度增强超过3倍。 Y2BAZNO5:ER3 +,V5 +磷光体表现出由808nm激光泵浦的强烈黄色UC,并将具有体内生物标记和生物医学成像和疗法的潜在应用。

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  • 来源
    《RSC Advances 》 |2016年第14期| 共8页
  • 作者单位

    Saga Univ Dept Adv Technol Fus Honjo 1 Saga 8508502 Japan;

    Saga Univ Dept Adv Technol Fus Honjo 1 Saga 8508502 Japan;

    Saga Univ Dept Adv Technol Fus Honjo 1 Saga 8508502 Japan;

    Saga Univ Dept Adv Technol Fus Honjo 1 Saga 8508502 Japan;

    Saga Univ Dept Adv Technol Fus Honjo 1 Saga 8508502 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
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