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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Original Synthetic Route To Obtain a SrAl2O4 Phosphor by the Molten Salt Method: Insights into the Reaction Mechanism and Enhancement of the Persistent Luminescence
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Original Synthetic Route To Obtain a SrAl2O4 Phosphor by the Molten Salt Method: Insights into the Reaction Mechanism and Enhancement of the Persistent Luminescence

机译:熔融盐法获得SrAl2O4荧光粉的原始合成路线:深入了解持久发光的反应机理和增强作用

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摘要

SrAl2O4:Eu2+, Dy3+ has been extensively studied for industrial applications in the luminescent materials field, because of its excellent persistent luminescence properties and chemical stability. Traditionally, this strontium aluminate material is synthesized in bulk form and/or fine powder by the classic solid-state method. Here, we report an original synthetic route, a molten salt assisted process, to obtain highly crystalline SrAl2O4 powder with nanometer-scale crystals. The main advantages of salt addition are the increase of the reaction rate and the significant reduction of the synthesis temperature because of much higher mobility of reactants in the liquid medium than in the solid-state method. In particular, the formation mechanism of SrAl2O4, the role of the salt, and the phase's evolution have been explored as a function of temperature and time. Phosphorescent powders based on SrAl2O4:Eu2+, Dy3+ with high crystallinity are obtained after 1 h treatment at 900 degrees C. This work could promote further interest in adopting the molten salt strategy to process high-crystallinity materials with enhanced luminescence to design technologically relevant phosphors.
机译:由于SrAl2O4:Eu2 +,Dy3 +具有出色的持久发光性能和化学稳定性,因此已经在发光材料领域的工业应用中进行了广泛的研究。传统上,这种铝酸锶材料是通过经典的固态方法以块状和/或细粉形式合成的。在这里,我们报告了一种原始的合成路线,一种熔融盐辅助工艺,以获得具有纳米级晶体的高度结晶的SrAl2O4粉末。加盐的主要优点是反应速率的提高和合成温度的显着降低,这是因为反应物在液体介质中的迁移率比固态方法高得多。尤其是,已探究了SrAl2O4的形成机理,盐的作用以及相的演变与温度和时间的关系。在900摄氏度下处理1小时后,获得了具有高结晶度的基于SrAl2O4:Eu2 +,Dy3 +的磷光粉末。这项工作可能会引起人们进一步对采用熔融盐策略来加工具有增强发光性的高结晶度材料以设计技术上相关的磷光体的兴趣。

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