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1. 南京大学, 配位化学国家重点实验室, 江苏, 南京, 210093
2. 广东轻工职业技术学院, 广东, 广州, 510300
收稿日期:2008-05-24,
修回日期:2008-08-01,
纸质出版日期:2008-11-20
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周亮, 周永慧, 郑佑轩, 游效曾. &beta;-Zn<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub>:Mn<sup>2+</sup>,B<sup>3+</sup>长余辉发光材料的性能[J]. 发光学报, 2008,29(6): 1008-1012
ZHOU Liang, ZHOU Yong-hui, ZHENG You-xuan, YOU Xiao-zeng. Long Lasting Phosphorescent Properties of &beta;-Zn<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub>:Mn<sup>2+</sup>,B<sup>3+</sup> Materials[J]. Chinese Journal of Luminescence, 2008,29(6): 1008-1012
周亮, 周永慧, 郑佑轩, 游效曾. &beta;-Zn<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub>:Mn<sup>2+</sup>,B<sup>3+</sup>长余辉发光材料的性能[J]. 发光学报, 2008,29(6): 1008-1012 DOI:
ZHOU Liang, ZHOU Yong-hui, ZHENG You-xuan, YOU Xiao-zeng. Long Lasting Phosphorescent Properties of &beta;-Zn<sub>3</sub>(PO<sub>4</sub>)<sub>2</sub>:Mn<sup>2+</sup>,B<sup>3+</sup> Materials[J]. Chinese Journal of Luminescence, 2008,29(6): 1008-1012 DOI:
采用高温固相法分别合成了-Zn
3
(PO
4
)
2
:Mn
2+
和不同HBO
3
含量的-Zn
3
(PO
4
)
2
:Mn
2+
B
3+
红色长余辉材料.XRD结果表明
HBO
3
的加入对于-Zn
3
(PO
4
)
2
物相的形成和结晶温度并没有显著影响.从不同样品的激发和发射光谱可以看出
HBO
3
的加入并没有改变其激发和发射光谱位置
而对其强度有一定影响.对于Zn
2.8
(P
1-x/2
O
4
)
2
:Mn
0.15
2+
B
x
3+
来说
当B
3+
加入量为
x
=0.0时发光强度最强;而对其余辉衰减光谱来说
HBO
3
的加入明显提高了材料的余辉性能
并且当B
3+
加入量为
x
=0.1时余辉性能最强
这是由于B
3+
的不等价取代增加了材料中的陷阱而导致的结果.
Red Long lasting phosphorescent(LLP)materials -Zn
3
(PO
4
)
2
:Mn
0.15
2+
and -Zn
3
(PO
4
)
2
:Mn
0.15
2+
B
x
3+
were prepared by high temperature solid-state method
respectively.The XRD results showed that the addition of HBO3 has no notable effects on the formation of Zn
3
(PO
4
)2 crystal structure.The excitation and emission spectra of series doped materials were studied.The materials show red long lasting phosphorescence and the highest emission peak is located at 616 nm.From the excitation and emission spectra results it could be observed that the doping of HBO
3
didn't change the spectral shape and position of -Zn
3
(PO
4
)
2
:Mn
2+
but changed the luminescence intensities.When the doping concentration of B3+ is x=0.05
the luminescence intensity is the strongest.Furthermore
B3+ doping also improved the LLP properties.The optimized LLP performance could be obtained when the doping concentration of B
3+
is x=0.10 with the LLP decay curves.It was due to more traps caused by the unequal doping of B
3+
.
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