首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Multicolor output and shape controlled synthesis of lanthanide-ion doped fluorides upconversion nanoparticles
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Multicolor output and shape controlled synthesis of lanthanide-ion doped fluorides upconversion nanoparticles

机译:镧系离子掺杂氟化物上转换纳米粒子的多色输出和形状控制合成

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摘要

A general and facile approach for tailoring the multicolor output and shapes of lanthanide-ion doped fluoride upconversion nanoparticles (UCNPs) within a given composition is presented. By adjusting the temperature and time in the thermolysis procedure, the color output and shapes of NaYF _4:20%Yb, 2%Er UCNPs can be readily manipulated. The nanoparticles were characterized through the use of transmission electron microscopy (TEM), powder X-ray diffraction (XRD) and upconversion luminescence spectroscopy. It is shown that the relative intensities of green emissions gradually increased with the rise of temperature and prolongation of growth time under excitation of 980 nm, which resulted in multicolor output of NaYF_4:20%Yb, 2%Er UCNPs. Simultaneously, the shapes for UCNPs can also be controlled. TEM images, estimated micro-stress by Williamson-Hall methodology and a series of control experiments and analyses reveal that crystallinity is mainly responsible for the multicolor output of UCNPs. Based on the above method, the tailoring of color output is also successfully realized in Ho~(3+) and Tm~(3+) ions. It is expected that this method may be used to tune the physical properties of other nanoparticles, and these multicolored UCNPs are promising for applications in multiplexed bioimaging, biodetection, display, other optical technologies, etc.
机译:提出了一种通用且简便的方法,可在给定的组成范围内定制镧系元素离子掺杂的氟化物上转换纳米粒子(UCNP)的多色输出和形状。通过在热解过程中调节温度和时间,可以轻松控制NaYF _4:20%Yb,2%Er UCNP的颜色输出和形状。通过使用透射电子显微镜(TEM),粉末X射线衍射(XRD)和上转换发光光谱对纳米颗粒进行了表征。结果表明,随着温度的升高和在980 nm激发下生长时间的延长,绿色发射的相对强度逐渐增加,从而导致NaYF_4:20%Yb,2%Er UCNPs的多色输出。同时,也可以控制UCNP的形状。 TEM图像,通过Williamson-Hall方法估算的微应力以及一系列对照实验和分析表明,结晶度是UCNPs多色输出的主要原因。基于上述方法,在Ho〜(3+)和Tm〜(3+)离子中也成功实现了色彩输出的定制。预计该方法可用于调整其他纳米粒子的物理性质,并且这些彩色的UCNPs有望用于多重生物成像,生物检测,显示,其他光学技术等。

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