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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Effects of Weak Electric Field on the Photoluminescence Behavior of Bi3+-Doped YVO4:Eu3+ Core-Shell Nanoparticles
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Effects of Weak Electric Field on the Photoluminescence Behavior of Bi3+-Doped YVO4:Eu3+ Core-Shell Nanoparticles

机译:弱电场对Bi3 +掺杂的光致发光行为的影响:Eu3 +核 - 壳纳米粒子

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摘要

Tuning the luminescent properties of nanophosphors by modifying the energy level hybridization has been previously achieved by methods such as heat treatments or applying strong magnetic/electric fields. However, these methods can permanently distort the crystal geometry or are limited to the continuous application of strong fields. This work aims to modify the energy level hybridization of doped (Eu3+/Bi3+) YVO4 nanoparticles (NPs) via surface functionalization with polarized molecules. Incorporating Bi3+ into YVO4:Eu3+ core NPs resulted in a red shift of the excitation edge by similar to 30 nm and a decrease in the Eu3+ emission lifetime. Moving the Bi3+ to the YVO4 shell layer allowed for the modification of Bi3+/VO43- energy level hybridization ion pairs without significant quenching of the Eu3+ ions in the core. Polarized molecules (NH2-BZA and NO2-BZA) were used for selective tuning of the electron density at the interface, impacting the Bi3+/VO43- energy level hybridization and the luminescent behavior of the NPs. Higher emission lifetimes and systematic photoluminescent response, that is, an increase or decrease in the excitation intensity based on the direction of the dipole moment, were observed for surface-functionalized core-shell NPs compared to the core NPs. Finally, the surface of the core-shell NPs was decorated with D-biotin to elucidate the effect of this biological ligand on the surface electron density and luminescence behavior of the NPs.
机译:通过改变能量水平杂交来调整纳米膦酰磷的发光特性已经通过诸如热处理或施加强磁场/电场的方法来实现。然而,这些方法可以永久地扭曲晶体几何形状或仅限于强大的恒定应用。该工作旨在通过用偏振分子的表面官能化改变掺杂(EU3 + / BI3 +)YVO4纳米颗粒(NPS)的能量水平杂交。将Bi3 +纳入YVO4:Eu3 +核心NPS导致激发边缘的红色移位,相似于30nm,并且Eu3 +排放寿命减少。将Bi3 +移动到YVO4壳层允许修改Bi3 + / Vo43-能量水平杂交离子对,而不会在核心中的Eu3 +离子的显着猝灭。偏振分子(NH2-BZA和NO2-BZA)用于选择性调整界面处的电子密度,影响BI3 + / VO43-能量水平杂交和NP的发光行为。对于表面官能化的核心 - 壳NP,观察到较高的发射寿命和系统的光致发光响应,即基于偶极矩的方向的激发强度的增加或减少,与核心NPS相比,表面官能化的核心壳NPS。最后,核心壳NP的表面用D-Biotin装饰,以阐明该生物配体对NPS的表面电子密度和发光行为的影响。

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