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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Enhanced fluorescent stability of copper indium sulfide quantum dots through incorporating aluminum into ZnS shell
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Enhanced fluorescent stability of copper indium sulfide quantum dots through incorporating aluminum into ZnS shell

机译:通过将铝掺入ZnS壳层中增强了铜铟硫量子点的荧光稳定性

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Fluorescent quantum dots (QDs) become usually deteriorated, losing their originally high quantum yield (QY), upon a prolonged exposure to degradable environments, and this lack of long-term QD stability retards their ultimate industrial application. For an effort to significantly improve the fluorescent stability of copper indium sulfide (Cu-In-S, CIS) QDs, in this work, synthesis of double-shelled CIS/ZnS/ZnS: Al QDs with intermediate ZnS shell and outer Al-doped ZnS shell is attempted. The resultant yellow-mitting CIS/ZnS/ZnS: Al QDs possess an excellent QY of 77%. For comparison, standard double shell-structured, Al-doping free CIS/ZnS/ZnS QDs are also prepared. These two types of QDs are then subjected to continuous UV irradiation and heat for certain periods of time and their temporal fluorescent stability behaviors are compared, clearly showing a superior stability from QDs with Al-doped shell. This is attributable to the effective QD passivation by Al2O3 layer generated via photochemical or thermal oxidation of Al doped in ZnS shell. The above results are further verified by fabricating QD-based light-mitting diodes (LEDs) with the combination of QD down-converters with a blue LED and comparing their electroluminescent stability with operational time. (C) 2015 Elsevier B.V. All rights reserved.
机译:荧光量子点(QD)通常会变质,长期暴露于可降解环境中会失去其原来的高量子产率(QY),而这种缺乏长期QD稳定性的特性会阻碍其最终的工业应用。为了努力显着提高硫化铜铟(Cu-In-S,CIS)QD的荧光稳定性,在这项工作中,合成了具有中间ZnS壳和外部Al掺杂的双壳CIS / ZnS / ZnS:Al QD尝试使用ZnS外壳。所得的发黄光的CIS / ZnS / ZnS:Al QD具有77%的出色QY。为了进行比较,还制备了标准的双壳结构,无铝掺杂的CIS / ZnS / ZnS QD。然后,对这两种类型的量子点进行连续的紫外线照射和加热一定时间,然后比较它们的时间荧光稳定性行为,从而清楚地显示出掺铝壳量子点的优异稳定性。这归因于通过掺杂在ZnS外壳中的Al的光化学或热氧化而产生的Al2O3层对QD进行了有效的钝化。通过制造结合了QD下变频器和蓝色LED的基于QD的发光二极管(LED),并将其电致发光稳定性与工作时间进行比较,可以进一步验证上述结果。 (C)2015 Elsevier B.V.保留所有权利。

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