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Shape-controllable hydrothermal synthesis of NaTbF4:Eu3+ microcrystals with energy transfer from Tb to Eu and multicolor luminescence properties

机译:从Tb到Eu的能量转移和多色发光特性的NaTbF4:Eu3 +微晶的形状可控的水热合成

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Hexagonal NaTbF4 microplates have been successfully synthesized through a simple hydrothermal method. X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), high-resolution transmission electron microscopy (HRTEM), inductively coupled high frequency plasma atomic emission spectroscopy (ICP-AES), photoluminescence (PL) and luminescence decay curves were used to characterize the samples. By optimizing the experimental conditions, such as Na-citrate consumption, pH value, reaction time and hydrothermal temperature, we obtained the samples with different components (NaTbF4, TbF3), crystal phases (alpha-NaTbF4, beta-NaTbF4), and morphologies. A possible formation mechanism for the samples with different structures was proposed. In addition, the monodisperse hexagonal NaTbF4 microplates, which can be used as an excellent host lattice for Eu3+ ions, and the multicolor luminescence properties of NaTbF4 with various Eu3+ doping concentrations have been studied. At the same time, the energy transfer from Tb3+ to Eu3+ in NaTbF4: x% Eu3+ (x = 0-1) was also investigated. The color of the NaTbF4: x% Eu3+ (x = 0-1) samples can be varied from green to red by adjusting the doping concentration of Eu3+, which exhibits a good advantage of multicolor emissions in the visible region, and endows this material with potential application in many fields, such as light display systems, optoelectronic devices and biological imaging. Such a simple synthetic method is also useful for the synthesis of other complex rare earth fluorides with hexagonal architectures.
机译:六角形NaTbF4微孔板已通过简单的水热方法成功合成。 X射线衍射(XRD),扫描电子显微镜(SEM),透射电子显微镜(TEM),高分辨率透射电子显微镜(HRTEM),电感耦合高频等离子体原子发射光谱(ICP-AES),光致发光(PL)用发光衰减曲线表征样品。通过优化实验条件,例如柠檬酸钠消耗量,p​​H值,反应时间和水热温度,我们获得了具有不同组分(NaTbF4,TbF3),晶相(α-NaTbF4,β-NaTbF4)和形态的样品。提出了不同结构样品的可能形成机理。此外,还研究了可以用作Eu3 +离子优良基质晶格的单分散六角形NaTbF4微孔板,并研究了不同Eu3 +掺杂浓度的NaTbF4的多色发光性能。同时,还研究了NaTbF4中从Tb3 +到Eu3 +的能量转移:x%Eu3 +(x = 0-1)。通过调整Eu3 +的掺杂浓度,可以将NaTbF4:x%Eu3 +(x = 0-1)样品的颜色从绿色变为红色,这在可见光区域显示了多色发射的良好优势,并使这种材料具有在许多领域的潜在应用,例如光显示系统,光电设备和生物成像。这种简单的合成方法还可用于合成其他具有六方结构的复杂稀土氟化物。

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