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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Self-assembly, highly modified spontaneous emission and energy transfer properties of LaPO_4:Ce~(3+), Tb~(3+) inverse opals
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Self-assembly, highly modified spontaneous emission and energy transfer properties of LaPO_4:Ce~(3+), Tb~(3+) inverse opals

机译:LaPO_4:Ce〜(3 +),Tb〜(3+)反蛋白石的自组装,高度修饰的自发发射和能量转移特性

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摘要

The modification of photonic crystals (PCs) on photoluminescence of rare earth (RE) ions has attracted considerable interest, however, the modification of PCs on energy transfer (ET) processes of two separate RE centers has not been investigated yet. In this paper, three-dimensional Ce~(3+), Tb ~(3+)-codoped LaPO_4 inverse opal PCs (IOPCs) were fabricated by the PMMA colloidal template method. The modification of the photonic stop band (PSB) on emission spectra and the dynamics of the 5d-4f transition of Ce~(3+) and the 4f-4f transition of Tb~(3+) ions were systematically studied. It is interesting to observe that the spontaneous decay rates (SDR) of ~5D_4-~7F_5 in the IOPCs were suppressed as highly as 173% in contrast to the reference ground powder samples (REF) due to the modification of the effective refractive index (n _(eff)). The energy transfer (ET) rate of Ce~(3+) to Tb ~(3+) did not change in the IOPCs, however, the energy migration rate among Tb~(3+) ions was largely restrained. It is also significant to observe that, in the IOPCs, the temperature quenching and radiation trapping of photoluminescence were greatly suppressed due to the periodic empty cavity structure of IOPCs, which is significant for high-power light sources and laser devices.
机译:稀土(RE)离子的光致发光对光子晶体(PCs)的改性引起了人们的极大兴趣,但是,尚未研究两个独立的RE中心在能量转移(ET)过程中对PCs的改性。本文采用PMMA胶体模板法制备了三维Ce〜(3 +),Tb〜(3+)共掺杂的LaPO_4反蛋白石PC。对发射光谱上的光子阻带(PSB)的修饰,Ce〜(3+)的5d-4f跃迁和Tb〜(3+)离子的4f-4f跃迁进行了动力学研究。有趣的是,由于有效折射率的变化,与参考研磨粉样品(REF)相比,IOPC中的〜5D_4-〜7F_5的自发衰减率(SDR)被抑制高达173%。 n _(eff))。在IOPC中,Ce〜(3+)到Tb〜(3+)的能量转移(ET)速率没有变化,但是,Tb〜(3+)离子之间的能量迁移速率受到很大的限制。还值得注意的是,在IOPC中,由于IOPC的周期性空腔结构,大大抑制了光致发光的温度猝灭和辐射捕获,这对于大功率光源和激光设备非常重要。

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