School of Materials Science and Technology, China University of Geosciences, Beijing 100083, P R China.
Dalton Trans. 2013 May 14;42(18):6327-36. doi: 10.1039/c3dt32609h.
A new strategy based on the host composition design has been adopted to obtain efficient color-tunable emission from Ba2Ln(0.97-z)Tb(z)(BO3)2Cl:0.03Eu (Ln = Y, Gd and Lu, z = 0-0.97) phosphors. This study reveals that the single-phase Ba2Ln(1-z)Tb(z)(BO3)2Cl compounds can be applied to use allowed Eu(2+) absorption transitions to sensitize Eu(3+) emission via the energy transfer Eu(2+) → (Tb(3+))n → Eu(3+). The powder X-ray diffraction (XRD) and Rietveld refinement analysis shows single-phase Ba2Ln(1-z)Tb(z)(BO3)2Cl. As-prepared Ba2Ln(0.97-z)Tb(z)(BO3)2Cl:0.03Eu phosphors show intense green, yellow, orange and red emission under 377 nm near ultraviolet (n-UV) excitation due to a variation in the relative intensities of the Eu(2+), Tb(3+) and Eu(3+) emission depending on the Tb content (z) in the host composition, allowing color tuning. The variation in emission color is explained by energy transfer and has been investigated by photoluminescence and lifetime measurements and is further characterized by the Commission Internationale de l'éclairage (CIE) chromaticity indexes. The quantum efficiencies of the phosphors are high, up to 74%, and show good thermal stabilities up to 150 °C. This investigation demonstrates the possibility to sensitize Eu(3+) line emission by Eu(2+)via energy migration over Tb(3+) resulting in efficient color tunable phosphors which are promising for use in solid-state white light-emitting diodes (w-LEDs).
一种基于主体组成设计的新策略已被采用,以从 Ba2Ln(0.97-z)Tb(z)(BO3)2Cl:0.03Eu (Ln = Y、Gd 和 Lu,z = 0-0.97) 荧光粉中获得高效的可调色彩发射。这项研究表明,单相 Ba2Ln(1-z)Tb(z)(BO3)2Cl 化合物可用于通过能量转移 Eu(2+)→(Tb(3+))n→Eu(3+) 利用允许的 Eu(2+)吸收跃迁敏化 Eu(3+)发射。粉末 X 射线衍射 (XRD) 和 Rietveld 精修分析表明单相 Ba2Ln(1-z)Tb(z)(BO3)2Cl。由于在近紫外 (n-UV) 激发下 377nm 处 Eu(2+)、Tb(3+)和 Eu(3+)发射的相对强度随主体组成中 Tb 含量 (z) 的变化而变化,因此制备的 Ba2Ln(0.97-z)Tb(z)(BO3)2Cl:0.03Eu 荧光粉表现出强烈的绿色、黄色、橙色和红色发射,允许进行颜色调谐。通过荧光光谱和寿命测量研究了发射颜色的变化,并用国际照明委员会 (CIE) 色度指数进一步进行了表征,解释了发射颜色的变化归因于能量转移。荧光粉的量子效率高达 74%,热稳定性高达 150°C。该研究证明了通过 Eu(2+)在 Tb(3+)上的能量迁移来敏化 Eu(3+)线发射的可能性,从而获得高效的可调色彩荧光粉,这对于在固态白光发光二极管 (w-LED) 中应用具有很大的前景。