首页> 外文期刊>Journal of Colloid and Interface Science >Preparation of Eu~(3+) doped (Y,Gd)_2O_3 flowers from (Y,Gd)_2(CO_3)_3·nH_2O flowerlike precursors: Microwave hydrothermal synthesis, growth mechanism and luminescence property
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Preparation of Eu~(3+) doped (Y,Gd)_2O_3 flowers from (Y,Gd)_2(CO_3)_3·nH_2O flowerlike precursors: Microwave hydrothermal synthesis, growth mechanism and luminescence property

机译:由(Y,Gd)_2(CO_3)_3·nH_2O花状前驱体制备Eu〜(3+)掺杂(Y,Gd)_2O_3花的步骤:微波水热合成,生长机理和发光性能

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摘要

In this study, (Y,Gd)_2O_3 and (Y,Gd)_2O_3:Eu flowerlike microstructures were prepared through two steps: well-organized 3-dimensional (3D) flowerlike precursors were first synthesized by a facile urea-based microwave hydrothermal method, then followed by heat treatment. The morphology of the 3D flowerlike precursors could be modulated by adjusting the synthetic conditions including concentration of the starting material, reaction time and temperature. Higher the concentration of Y/Gd ions or reaction temperature, earlier the 3D flowerlike precursors were obtained. The samples were characterized by various means. The flowers were found to derive from colloidal spheres, which experienced a dissolution/crystalline, attachment and self-assembly process. Room temperature photoluminescence spectrum of 3D flowerlike (Y,Gd)_2O_3:Eu showed enhanced emission property than the spheres.
机译:在这项研究中,通过两个步骤制备(Y,Gd)_2O_3和(Y,Gd)_2O_3:Eu花状微结构:首先通过简便的基于尿素的微波水热法合成了组织良好的3维(3D)花状前体。 ,然后进行热处理。 3D花状前体的形态可以通过调节合成条件来调节,包括起始原料的浓度,反应时间和温度。 Y / Gd离子的浓度或反应温度越高,越早获得3D花状前体。通过各种手段对样品进行表征。这些花被发现来自胶体球,其经历了溶解/结晶,附着和自组装过程。 3D花状(Y,Gd)_2O_3:Eu的室温光致发光光谱显示出比球形增强的发射特性。

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