Differential Optical Responses of Robustly Single-Phased K 3 YSi 2 O 7 :Ce/Tb/Gd under Diverse Stimulations toward Optical Thermometry, Dynamic Anticounterfeiting, Optical Storage, and Encryption Applications

荧光粉 化学 发光 光致发光 猝灭(荧光) 存水弯(水管) 加密 光电子学 多模光纤 替代(逻辑) 差速器(机械装置) 机制(生物学) 荧光 量子点 光存储 纳米技术 量子纠缠 量子 带隙 光通信 衍射 差别隐私 化学物理
作者
Chengyu Ni,Chunyu Li,Z. P. Xu,Wubin Dai
出处
期刊:Inorganic Chemistry [American Chemical Society]
卷期号:64 (49): 24122-24133 被引量:1
标识
DOI:10.1021/acs.inorgchem.5c04510
摘要

(Co)doping luminescent center(s) in a host is a universal strategy to photoluminescence (PL) modulations for extensive applications, yet its mechanism and interactions between structure and behavior in many phosphors remain ambiguous. Herein, via a facile sol–gel reaction method, differently tendentious occupations of Ce 3+ in distinct crystallographic sites of K 3 YSi 2 O 7 (KYS) lead to tunable PL in between blue and bluish-green under diverse excitations with high quantum efficiency. The generation of wide trap energy levels originating from heterovalent substitution Tb 3+ → K + could entrust Tb 3+ as both PL and long-persistent PL (LPL) centers in green. Due to temperature-dependent filling/releasing rates of captured carriers, strong thermal-induced LPL could be obtained in KYS: Tb. By codoping Ce/Tb in KYS, multimode anticounterfeiting and information storage/encryption of KYS: Ce/Tb are realized with high security level via a screen printing technique. Because Ce and Tb possess different temperature-dependent quenching behaviors, optical temperature sensing is achieved with high absolute/relative sensitivity. To further enhance the KYS: Ce/Tb performance, trap depth engineering via equivalent substitution Gd → Y is further executed. The colorimetric/photometric analyses here provide new insights into designing novel stable and single-phased phosphor for applications in advanced anticounterfeiting technology and optical thermometry.
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