P.D. Sarkisov International Laboratory of Glass-based Functional Materials, Mendeleev University of Chemical Technology of Russia, Miusskaya Square 9, 125190 Moscow, Russia.
Nanoscale. 2014;6(3):1763-74. doi: 10.1039/c3nr05210a.
Wide-bandgap nanocrystals are an inexhaustible source of tuneable functions potentially addressing most of the demand for new light emitting systems. However, the implementation of nanocrystal properties in real devices is not straightforward if a robust and stable optical component is required as a final result. The achievement of efficient light emission from dense dispersions of Ga-oxide nanocrystals in UV-grade glass can be a breakthrough in this regard. Such a result would permit the fabrication of low cost UV-to-visible converters for monitoring UV-emitting events on a large-scale - from invisible hydrogen flames to corona dispersions. From this perspective, γ-Ga₂O₃ nanocrystals are developed by phase separation in Ga-alkali-germanosilicate glasses, obtaining optical materials based on a UV transparent matrix. Band-to-band UV-excitation of light emission from donor-acceptor pair (DAP) recombination is investigated for the first time in embedded γ-Ga₂O₃. The analysis of the decay kinetics gives unprecedented evidence that nanosized confinement of DAP recombination can force a nanophase to the efficient response of exactly balanced DAPs. The results, including a proof of concept of UV-to-visible viewer, definitely demonstrate the feasibility of workable glass-based fully inorganic nanostructured materials with emission properties borrowed from Ga₂O₃ single-crystals and tailored by the nanocrystal size.
宽禁带纳米晶体是潜在可调谐功能的不竭源泉,可满足大多数新型发光系统的需求。然而,如果需要最终结果是稳定的光学组件,那么在实际设备中实现纳米晶体性能并非易事。在 UV 级玻璃中实现 Ga 氧化物纳米晶体密集分散体的高效发光,在这方面可能是一个突破。这样的结果将允许制造低成本的 UV 到可见光转换器,用于大规模监测 UV 发光事件,从不可见的氢气火焰到电晕分散体。从这个角度来看,γ-Ga₂O₃ 纳米晶体通过 Ga-碱-锗硅酸盐玻璃中的相分离来开发,从而获得基于 UV 透明基质的光学材料。首次在嵌入式 γ-Ga₂O₃ 中研究了施主-受主对 (DAP) 复合的带带 UV 激发发光。衰减动力学分析提供了前所未有的证据,证明 DAP 复合的纳米级限制可以迫使纳米相对精确平衡的 DAP 做出高效响应。这些结果包括 UV 到可见观看器的概念验证,明确证明了工作性玻璃基全无机纳米结构材料的可行性,这些材料具有 Ga₂O₃ 单晶借来的发射特性,并通过纳米晶体尺寸进行调整。