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Ag-Sensitized Yb3+ Emission in Glass-Ceramics

机译:玻璃陶瓷中Ag敏化的Yb3 +排放

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摘要

Rare earth doped materials play a very important role in the development of many photonic devices, such as optical amplifiers and lasers, frequency converters, solar concentrators, up to quantum information storage devices. Among the rare earth ions, ytterbium is certainly one of the most frequently investigated and employed. The absorption and emission properties of Yb3+ ions are related to transitions between the two energy levels 2F7/2 (ground state) and 2F5/2 (excited state), involving photon energies around 1.26 eV (980 nm). Therefore, Yb3+ cannot directly absorb UV or visible light, and it is often used in combination with other rare earth ions like Pr3+, Tm3+, and Tb3+, which act as energy transfer centres. Nevertheless, even in those co-doped materials, the absorption bandwidth can be limited, and the cross section is small. In this paper, we report a broadband and efficient energy transfer process between Ag dimers/multimers and Yb3+ ions, which results in a strong PL emission around 980 nm under UV light excitation. Silica-zirconia (70% SiO2-30% ZrO2) glass-ceramic films doped by 4 mol.% Yb3+ ions and an additional 5 mol.% of Na2O were prepared by sol-gel synthesis followed by a thermal annealing at 1000 °C. Ag introduction was then obtained by ion-exchange in a molten salt bath and the samples were subsequently annealed in air at 430 °C to induce the migration and aggregation of the metal. The structural, compositional, and optical properties were investigated, providing evidence for efficient broadband sensitization of the rare earth ions by energy transfer from Ag dimers/multimers, which could have important applications in different fields, such as PV solar cells and light-emitting near-infrared (NIR) devices.
机译:稀土掺杂材料在许多光子器件的开发中起着非常重要的作用,例如光放大器和激光器,变频器,太阳能集中器以及量子信息存储器件。在稀土离子中,certainly无疑是最经常研究和使用的one之一。 Yb 3 + 离子的吸收和发射特性与两个能级 2 F7 / 2(基态)和 2 之间的跃迁有关。 F5 / 2(激发态),涉及约1.26 eV(980 nm)的光子能量。因此,Yb 3 + 不能直接吸收紫外线或可见光,通常与其他稀土离子如Pr 3 + ,Tm 3+结合使用。 和Tb 3 + ,它们充当能量传输中心。然而,即使在那些共掺杂材料中,吸收带宽也可能受到限制,并且横截面很小。在本文中,我们报道了Ag二聚体/多聚体与Yb 3 + 离子之间的宽带高效能量转移过程,该过程在紫外光激发下在980 nm附近产生了强PL发射。通过溶胶-凝胶合成,制备了掺有4摩尔%Yb 3 + 离子和另外5摩尔%Na2O的二氧化硅-氧化锆(70%SiO2-30%ZrO2)玻璃陶瓷膜。通过在1000°C下进行热退火。然后通过在熔融盐浴中进行离子交换获得Ag的引入,随后将样品在430°C的空气中退火,以诱导金属的迁移和聚集。对结构,组成和光学性质进行了研究,为通过银二聚体/多聚体的能量转移对稀土离子进行有效的宽带敏化提供了证据,这可能在不同领域具有重要应用,例如PV太阳能电池和近距离发光-红外(NIR)设备。

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