Ren Shengtao, Kong Ximing, Wei Mingpan, Wang Ziyao, Liu Yangai, Dierre Benjamin, Abellon Ruben, Hintzen H T
Key Laboratory of Eco-restoration of Regional Contaminated Environment, Ministry of Education, Shenyang University, Shenyang 110044, China.
Group Luminescent Materials, Section Fundamental Aspects of Materials and Energy, Faculty of Applied Sciences, Delft University of Technology, Delft 2629 JB, The Netherlands.
Inorg Chem. 2025 Sep 15;64(36):18588-18598. doi: 10.1021/acs.inorgchem.5c03366. Epub 2025 Sep 1.
Conventional Eu-activated phosphors often suffer from severe concentration quenching at high doping levels, significantly limiting their achievable brightness and efficiency. Furthermore, achieving both high color purity and strong emission intensity in the orange-red region remains challenging. In this context, we report the successful synthesis of Eu-activated BaLuBO phosphors via a multistep solid-state reaction under ambient conditions, exhibiting intense reddish-orange emission. Upon near-ultraviolet excitation at 398 nm, the phosphors exhibited dominant emission at 593 nm with a long decay time (about 4.1 ms), attributed to the magnetic dipole-allowed D → F transition of Eu ions occupying inversion-symmetric Lu lattice sites. Remarkably, concentration quenching of Eu luminescence in BaLuEuBO was completely suppressed even at 70 mol % Eu doping ( = 0.70), which can be understood from the unique one-dimensional chain-like architecture of the host lattice that restricts inter-Eu-ion energy migration to defect states. The as-synthesized BaLuEuBO composition demonstrated an internal quantum efficiency of ∼53%, coupled with superior color purity (97.5%) as evidenced by CIE coordinates of (0.605, 0.387). Furthermore, the material displayed outstanding thermal stability, retaining ∼98% of its room-temperature emission intensity at 450 K. These combined attributes position BaLuBO:Eu as a promising phosphor for next-generation warm-white LEDs.
传统的铕激活荧光粉在高掺杂水平下常常遭受严重的浓度猝灭,这显著限制了它们可实现的亮度和效率。此外,在橙红色区域同时实现高色纯度和强发射强度仍然具有挑战性。在此背景下,我们报道了通过在环境条件下的多步固态反应成功合成铕激活的BaLuBO荧光粉,其呈现出强烈的红橙色发射。在398 nm的近紫外激发下,该荧光粉在593 nm处呈现出主导发射,具有较长的衰减时间(约4.1 ms),这归因于占据反演对称镥晶格位点的铕离子的磁偶极允许的D→F跃迁。值得注意的是,即使在70 mol%的铕掺杂(x = 0.70)下,BaLuEuBO中铕发光的浓度猝灭也被完全抑制,这可以从主体晶格独特的一维链状结构来理解,该结构限制了铕离子间的能量迁移到缺陷态。合成的BaLuEuBO组合物表现出约53%的内量子效率,以及优异的色纯度(97.5%),由CIE坐标(0.605,0.387)证明。此外,该材料表现出出色的热稳定性,在450 K时保留了约98%的室温发射强度。这些综合特性使BaLuBO:Eu成为下一代暖白色发光二极管的有前途的荧光粉。