首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Novel multi-color photoluminescence emission phosphors developed by layered gadolinium hydroxide via in situ intercalation with positively charged rare-earth complexes
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Novel multi-color photoluminescence emission phosphors developed by layered gadolinium hydroxide via in situ intercalation with positively charged rare-earth complexes

机译:层状氢氧化g通过原位嵌入带正电的稀土配合物开发的新型多色光致发光荧光粉

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The design of multi-color phosphors has aroused great interest for practical optical applications. Herein, for the first time, the stable positively charged Eu(III) and Tb(III) complexes EuL and TbL (L = 2,2'-(4-(2-ethoxyethoxy) pyridine-2,6-diyl)bis(4,5-dihydrooxazole)) have been successfully intercalated in situ into the gallery of layered gadolinium hydroxide (LGdH) utilizing chelation of picolinic acid (pa) anions via ligand exchange reaction. In particular, the resulting hybrid phosphors (LGdH-pa-Eu-1 xTbxL) exhibit multi-color emissions by simply fine-tuning the molar ratio of Eu(III)/Tb(III), which show red and green primary colors, as well as intermediate colors excited at 310 nm. The luminescence spectra, decay time, and low-temperature phosphorescence spectra analysis indicate that other than the intramolecular energy transfer (ET) process from ligand to RE(III) and intermolecular ET process from Tb(III) to Eu(III), the expected and interesting interaction between host (LGdH) and guest pa anions was also observed, which dramatically enhanced the absorption cross section of pa anions. Finally, a blue emission component 4,4'-distyrylbiphenyl sodium sulfonate (Tinopal CBS) was further introduced into the hybrid material LGdH-pa-Eu0.2Tb0.8L, to provide white light emission under the 330 nm excitation. In addition, to determine the potential of these hybrid phosphors in various applications, transparent and multi-color emission composite film devices have been fabricated with poly(methyl methacrylate) (PMMA) using the solvent-casting method.
机译:多色磷光体的设计引起了实际光学应用的极大兴趣。在这里,第一次,稳定的带正电的Eu(III)和Tb(III)配合物EuL和TbL(L = 2,2'-(4-(2-乙氧基乙氧基)吡啶-2,6-二基)双( 4,5-二氢恶唑))已通过配位体交换反应与吡啶甲酸(pa)阴离子螯合,成功地原位插入层状氢氧化g(LGdH)的通道中。特别是,通过简单地微调显示红色和绿色原色的Eu(III)/ Tb(III)的摩尔比,得到的杂化磷光体(LGdH-pa-Eu-1 xTbxL)表现出多色发射。以及在310 nm激发的中间色。发光光谱,衰减时间和低温磷光光谱分析表明,除了从配体到RE(III)的分子内能量转移(ET)过程和从Tb(III)到Eu(III)的分子间ET过程之外,预期并且还观察到主体(LGdH)与客体阴离子之间发生了有趣的相互作用,从而显着增强了阴离子的吸收截面。最后,将蓝色发射组分4,4'-二苯乙烯基联苯磺酸钠(Tinopal CBS)进一步引入杂化材料LGdH-pa-Eu0.2Tb0.8L,以在330 nm激发下提供白光发射。另外,为了确定这些杂化磷光体在各种应用中的潜力,已经使用溶剂浇铸法用聚(甲基丙烯酸甲酯)(PMMA)制造了透明且多色发射的复合膜器件。

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