首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Color-Tunable Luminescence and Energy Transfer Properties of Ca9Mg(PO4)6F2:Eu~(2+), Mn~(2+) Phosphors for UV-LEDs
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Color-Tunable Luminescence and Energy Transfer Properties of Ca9Mg(PO4)6F2:Eu~(2+), Mn~(2+) Phosphors for UV-LEDs

机译:用于UV-LED的Ca9Mg(PO4)6F2:Eu〜(2+),Mn〜(2+)荧光粉的可调光发光和能量转移性质

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摘要

Eu~(2+)-, Mn~(2+)-activated Ca9Mg(PO4)6F2 (CMPF) phosphors with blue to yellow color-tunable emission properties have been synthesized via high-temperature solid-state reaction method. The crystal structure of Ca9Mg(PO4)6F2 has been identified by Rietveld refinement. The different crystallographic sites of Eu~(2+) in CMPF:Eu~(2+) phosphors have been confirmed by virtue of their fluorescence decay lifetimes. The Eu~(2+)- activated CMPF phosphors exhibit broad excitation spectra from 200 to 420 nm (which matches well with the UV-based LED chips) and emission spectra from 380 to 580 nm centered at 454 nm. Energy transfer from Eu~(2+) to Mn~(2+) ions in Eu~(2+), Mn~(2+) codoped CMPF samples is possible because of the spectral overlap between Eu~(2+) emission and Mn~(2+) excitation spectra, and the constant fall of fluorescence decay lifetimes of Eu~(2+) ion with increasing Mn~(2+) concentration demonstrates the occurrence of it, which provides the color-tunable emission from blue to yellow through adjusting Mn~(2+) concentration. The energy transfer mechanism between Eu~(2+) and Mn~(2+) ions is verified to be electric dipole—quadrupole interaction by analyzing the experimental results. The critical distance between them calculated by concentration quenching (14.57 A) and spectral overlap methods (14.90 A) are consistent, which testifies the energy transfer mechanism above from Eu~(2+) to Mn~(2+) is appropriate. These results show CMPF:Eu~(2+), Mn~(2+) phosphors could be anticipated for UV-pumped white-light-emitting diodes (wLEDs).
机译:通过高温固相反应法合成了具有蓝色至黄色可调发射特性的Eu〜(2 +)-,Mn〜(2+)活化的Ca9Mg(PO4)6F2(CMPF)荧光粉。 Ca9Mg(PO4)6F2的晶体结构已通过Rietveld精炼鉴定。 CMPF:Eu〜(2+)荧光粉中Eu〜(2+)的不同晶体学位点已凭借其荧光衰减寿命得到了证实。 Eu〜(2 +)-活化的CMPF荧光粉在200至420 nm处显示宽激发光谱(与基于UV的LED芯片非常匹配),在454 nm处显示380至580 nm的发射光谱。在Eu〜(2 +),Mn〜(2+)共掺杂的CMPF样品中,从Eu〜(2+)到Mn〜(2+)离子的能量转移是可能的,因为Eu〜(2+)发射与Mn〜(2+)激发光谱,随着Eu〜(2+)浓度的增加,Eu〜(2+)离子的荧光衰减寿命不断下降,证明了它的出现,从而提供了从蓝色到红色的可调光发射。通过调节Mn〜(2+)的浓度,黄色。通过分析实验结果,证明Eu〜(2+)和Mn〜(2+)离子之间的能量转移机理为电偶极-四极相互作用。通过浓度猝灭(14.57 A)和光谱重叠法(14.90 A)计算的临界距离是一致的,这证明上述从Eu〜(2+)到Mn〜(2+)的能量转移机理是合适的。这些结果表明,CMPF:Eu〜(2 +),Mn〜(2+)荧光粉有望用于紫外泵浦的白光发光二极管(wLED)。

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