首页> 美国卫生研究院文献>ACS Omega >Neutralizing the Charge Imbalance Problem in Eu3+-ActivatedBaAl2O4 Nanophosphors: TheoreticalInsights and Experimental Validation Considering K+ Codoping
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Neutralizing the Charge Imbalance Problem in Eu3+-ActivatedBaAl2O4 Nanophosphors: TheoreticalInsights and Experimental Validation Considering K+ Codoping

机译:中和Eu3 +激活的电荷不平衡问题BaAl2O4纳米磷光体:理论考虑K +共掺杂的见解和实验验证

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摘要

In recent years, rare-earth-doped nanophosphors have attracted great attention in the field of luminescent materials for advanced solid-state lighting and high-resolution display applications. However, the low efficiency of concurrent red phosphors creates a major bottleneck for easy commercialization of these devices. In this work, intense red-light-emitting K+-codoped BaAl2O4:Eu3+ nanophosphors having an average crystallite size of 54 nm were synthesized via a modified sol–gel method. The derived nanophosphors exhibit strong red emission produced by the 5D0 → 7FJ (J = 0, 1, 2, 3, 4) transitions of Eu3+ upon UV and low-voltage electron beam excitation. Comparative photoluminescence (PL) analysis is executed for Eu3+-activated and K+-coactivated BaAl2O4:Eu3+ nanophosphors, demonstrating remarkable enhancement in PL intensity as well as thermal stability due to K+ codoping. The origin of this PL enhancement is also analyzed from first-principles calculations using density functional theory. Achievement of charge compensation with the addition of a K+ coactivator plays an important role in increasing the radiative lifetime and color purity of the codoped nanophosphors. Obtained results substantially approve the promising prospects of this nanophosphor in the promptly growing fieldof solid-state lighting and field emission display devices.
机译:近年来,稀土掺杂的纳米磷光体在用于高级固态照明和高分辨率显示应用的发光材料领域引起了极大的关注。然而,同时存在的红色荧光粉的低效率为这些设备的容易商业化创造了一个主要的瓶颈。在这项工作中,通过改性的溶胶-凝胶合成了强红色发光的K + 掺杂的BaAl2O4:Eu 3 + 纳米磷光体,其平均微晶尺寸为54 nm。方法。衍生的纳米磷光体表现出Eu 3+的 5 D0→ 7 FJ(J = 0、1、2、3、4)跃迁产生的强烈红色发射在紫外线和低压电子束激发下。对Eu 3 + 激活的和K + 共激活的BaAl2O4:Eu 3 + 纳米磷光体进行了比较光致发光(PL)分析,显示出显着的增强K + 共掺杂产生的PL强度和热稳定性。还使用密度泛函理论从第一性原理计算中分析了这种PL增强的起源。通过添加K + 共活化剂来实现电荷补偿,在延长共掺杂纳米磷光体的辐射寿命和色纯度方面起着重要作用。获得的结果大大认可了这种纳米磷光体在迅速发展的领域中的广阔前景固态照明和场发射显示设备的制造。

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