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Defect-Induced Self-Reduction of Manganese in Zn2SiO4 via Nonequivalent Doping of Yb3+ and B3+ for Dynamic Multimode
Bingye Zhang1, Yanli Ren1, Yang Huo1
1Department of Physics, Dalian University of Technology, Dalian, Liaoning 116024, P. R. China.
Abstract:
A series of long-persistent luminescence (LPL) phosphors Zn2SiO4 (ZSO) codoped with Mn2+, Yb3+, and B3+ were prepared by the traditional high-temperature solid phase method in air. By using Mn2CO3 or MnO2 as the manganese source, a complete self-reduction behavior of Mn4+ to Mn2+ was observed in the ZSO host, yielding intense green LPL, thermoluminescence (TL), and photostimulated luminescence (PSL) emission from Mn2+. The spontaneous reduction behavior originates from the intrinsic defect of the Zn vacancy (VZn) caused by Yb3+ and B3+ occupying the Zn2+ and Si4+ sites. The influence of synthetic conditions, including Mn sources and doping concentrations, on the crystal structure and optical (photoluminescence (PL), LPL, PSL, TL) properties was systematically investigated. By analyzing the TL spectra at different temperatures and heating rates, the trap depth and distribution of ZSO:Mn2+,Yb3+,B3+ were characterized. With the incorporation of Yb3+ and B3+, the intensity of LPL and PSL and the decay time of ZSO:Mn2+ improved significantly under ultraviolet (UV) irradiation and near-infrared (NIR) stimulation. Utilizing the LPL, TL, and PSL properties of ZSO:Mn2+,Yb3+,B3+ phosphors, an intelligent LPL pattern was realized under various stimulations, which provides a quick-response approach for information encryption and optical information storage.
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