Key Laboratory of Eco-chemical Engineering, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, PR China.
Spectrochim Acta A Mol Biomol Spectrosc. 2011 Sep;79(5):1520-3. doi: 10.1016/j.saa.2011.05.009. Epub 2011 May 18.
A new red emitting BaB2O4: Eu3+ phosphor was synthesized by solid-state reaction method. X-ray powder diffraction (XRD) analysis confirmed the monoclinic formation of BaB2O4. Field-emission scanning electron-microscopy (FE-SEM) observation indicated that the microstructure of the phosphor consisted of irregular grains with heavy agglomerate phenomena. Upon excitation with 394 nm light, the BaB2O4: Eu3+ phosphor shows bright red emissions with the highest photoluminescence (PL) intensity at 611 nm due to 5D0→7F2 transitions of Eu3+ ions. The CIE chromaticity coordinates are calculated from the emission spectrum to be x=0.64, y=0.35. The effects of the Eu3+ concentration on the PL were investigated. The results showed that the optimum concentration of Eu3+ in BaB2O4 host is 6 mol% and the dipole-dipole interaction plays the major role in the mechanism of concentration quenching of Eu3+ in BaB2O4: Eu3+ phosphor. The effect of charge compensation on the emission intensity was also studied. The charge compensations of Li+, Na+ and K+ anions all increased the luminescent intensity of BaB2O4: Eu3+. K+ anion gave the best improvement to enhance the intensity of the emission, indicating K+ is the optimal charge compensator. All properties show that this phosphor could serve as a potential candidate for application as a red phosphor for NUV chip LED.
一种新型的红色发射 BaB2O4:Eu3+ 荧光粉通过固态反应法合成。X 射线粉末衍射(XRD)分析证实了 BaB2O4 的单斜形成。场发射扫描电子显微镜(FE-SEM)观察表明,荧光粉的微观结构由不规则的颗粒组成,存在严重的团聚现象。在 394nm 光激发下,BaB2O4:Eu3+ 荧光粉由于 Eu3+ 离子的 5D0→7F2 跃迁,显示出明亮的红色发射,最高的光致发光(PL)强度在 611nm 处。CIE 色度坐标由发射光谱计算得出,x=0.64,y=0.35。研究了 Eu3+浓度对 PL 的影响。结果表明,Eu3+在 BaB2O4 基质中的最佳浓度为 6mol%,Eu3+在 BaB2O4:Eu3+荧光粉中的浓度猝灭机制主要是偶极-偶极相互作用。还研究了电荷补偿对发射强度的影响。Li+、Na+和 K+阴离子的电荷补偿都提高了 BaB2O4:Eu3+的发光强度。K+阴离子对增强发射强度的改善效果最好,表明 K+是最佳的电荷补偿剂。所有性质表明,这种荧光粉可以作为一种潜在的候选红色荧光粉,用于近紫外芯片 LED。