Yang Yan-Min, Li Zhi-Yong, Zhang Jun-Ying, Lu Yue, Guo Shao-Qiang, Zhao Qing, Wang Xin, Yong Zi-Jun, Li Hong, Ma Ju-Ping, Kuroiwa Yoshihiro, Moriyoshi Chikako, Hu Li-Li, Zhang Li-Yan, Zheng Li-Rong, Sun Hong-Tao
1College of Physics Science and Technology, Hebei University, 071002 Baoding, China.
2College of Chemistry, Chemical Engineering and Materials Science, Soochow University, 215123 Jiangsu, China.
Light Sci Appl. 2018 Nov 14;7:88. doi: 10.1038/s41377-018-0089-7. eCollection 2018.
Phosphors emitting visible and near-infrared persistent luminescence have been explored extensively owing to their unusual properties and commercial interest in their applications such as glow-in-the-dark paints, optical information storage, and in vivo bioimaging. However, no persistent phosphor that features emissions in the ultraviolet C range (200-280 nm) has been known to exist so far. Here, we demonstrate a strategy for creating a new generation of persistent phosphor that exhibits strong ultraviolet C emission with an initial power density over 10 milliwatts per square meter and an afterglow of more than 2 h. Experimental characterizations coupled with first-principles calculations have revealed that structural defects associated with oxygen introduction-induced anion vacancies in fluoride elpasolite can function as electron traps, which capture and store a large number of electrons triggered by X-ray irradiation. Notably, we show that the ultraviolet C afterglow intensity of the yielded phosphor is sufficiently strong for sterilization. Our discovery of this ultraviolet C afterglow opens up new avenues for research on persistent phosphors, and it offers new perspectives on their applications in terms of sterilization, disinfection, drug release, cancer treatment, anti-counterfeiting, and beyond.
由于其独特性质以及在诸如夜光涂料、光学信息存储和体内生物成像等应用方面的商业价值,发射可见光和近红外持续发光的磷光体已得到广泛研究。然而,迄今为止,尚未发现有在紫外C波段(200 - 280纳米)发射的持续磷光体。在此,我们展示了一种策略,用于制造新一代持续磷光体,其具有强紫外C发射,初始功率密度超过每平方米10毫瓦,余辉超过2小时。实验表征与第一性原理计算表明,与氟化物铯镓榴石中氧引入诱导的阴离子空位相关的结构缺陷可作为电子陷阱,捕获并存储由X射线辐照触发的大量电子。值得注意地是,我们表明所制备磷光体的紫外C余辉强度足以用于杀菌。我们对这种紫外C余辉的发现为持续磷光体的研究开辟了新途径,并在杀菌、消毒、药物释放、癌症治疗、防伪等应用方面提供了新视角。