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Comparative Analysis of ZnS:Mn~(2+) Nanophosphors Prepared by Hydrothermal and Low Temperature Precipitation Methods

机译:ZnS:Mn〜(2+)纳米磷光剂采用水热量和低温沉淀方法对比分析

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Manganese-doped ZnS nanophosphors were synthesized by two different methods: hydrothermal and low-temperature precipitation methods. The nanophosphors prepared by the hydrothermal precipitation and low-temperature methods had the size of 20 nm and 4 nm, respectively, and both were the cubic phase. The emission intensity of the nanophosphor prepared by the hydrothermal method was optimized at 10 mole % of Mn~(2+) concentration whereas that by low-temperature precipitation method was optimized at 3 mole % of Mn~(2+). The precipitation-prepared nanophosphor, of size 4nm, showed a blueshift in the excitation spectrum and a redshift in the emission spectrum compared to the hydrothermal-prepared 20 nm nanophosphor. These phenomena can be explained in terms of the quantum confinement effect. The decay times especially were lengthened with decreasing particle size. This can be explained in terms of the variation in the transition probability induced from the quantum confinement effect.
机译:通过两种不同的方法合成锰掺杂的ZnS纳米膦:水热和低温沉淀方法。通过水热沉淀和低温方法制备的纳米膦分别分别为20nm和4nm,两者都是立方相。通过水热法制备的纳米磷的发射强度以10摩尔%的Mn〜(2+)浓度优化,而通过低温沉淀法以3摩尔%的Mn〜(2+)优化。沉淀制备的纳米磷,大小为4nm,在激发光谱中显示出蓝色和发射光谱中的红移,与水热制备的20nM纳米磷值相比。这些现象可以在量子限制效果方面解释。粒度较小的衰减时间尤其延长。这可以通过量子限制效果所诱导的过渡概率的变化来解释。

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