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湿化学合成无机材料中的余辉发光:超长室温磷光而非持续发光。

Afterglow Luminescence in Wet-Chemically Synthesized Inorganic Materials: Ultra-Long Room Temperature Phosphorescence Instead of Persistent Luminescence.

作者信息

Sontakke Atul D, Ferrier Alban, Burner Pauline, Guimarães Vinicius F, Salaün Mathieu, Maurel Vincent, Gautier-Luneau Isabelle, Ibanez Alain, Viana Bruno

机构信息

PSL Research University, Chimie ParisTech - CNRS, Institut de Recherche de Chimie Paris , 75005 Paris, France.

Sorbonne University, UPMC University, Paris 06 , 75005 Paris, France.

出版信息

J Phys Chem Lett. 2017 Oct 5;8(19):4735-4739. doi: 10.1021/acs.jpclett.7b01702. Epub 2017 Sep 18.

DOI:10.1021/acs.jpclett.7b01702
PMID:28903005
Abstract

Wet-chemically synthesized amorphous yttrium-aluminum-borates (a-YAB) exhibit intense visible photoluminescence (PL). Preliminary investigations revealed a correlation of PL with the presence of carbon-related impurities; however, their exact nature is still under investigation. These powders also exhibit afterglow luminescence that lasts for several seconds at room-temperature (RT). A comparison with persistent phosphors and phosphorescent dye revealed that the afterglow in a-YAB is a phosphorescence phenomenon and not the persistence luminescence, which is more common in inorganic solids. The unusual RT phosphorescence in a-YAB could be achieved due to triplet-state stabilization of trapped luminescent organic moieties in glassy matrix. This is indeed an important step forward in understanding the complex luminescence mechanism in such promising wet-chemically synthesized functional materials. Moreover, phosphorescence is detectable for over 10 s at RT, suggesting rigid glassy inorganic matrix is more efficient in preserving phosphorescence at elevated temperatures, opening the path for several attractive applications including time-resolved bioimaging and thermometry.

摘要

湿化学合成的非晶态钇铝硼酸盐(a-YAB)呈现出强烈的可见光致发光(PL)。初步研究表明PL与碳相关杂质的存在有关;然而,它们的确切性质仍在研究中。这些粉末在室温(RT)下还表现出持续数秒的余辉发光。与长余辉磷光体和磷光染料的比较表明,a-YAB中的余辉是一种磷光现象,而不是在无机固体中更常见的持续发光。a-YAB中异常的室温磷光可能是由于玻璃基质中捕获的发光有机部分的三重态稳定化所致。这确实是在理解此类有前景的湿化学合成功能材料中复杂发光机制方面向前迈出的重要一步。此外,在室温下磷光可检测超过10秒,这表明刚性玻璃态无机基质在高温下更有效地保留磷光,为包括时间分辨生物成像和温度测量在内的几种有吸引力的应用开辟了道路。

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