Title :
Temperature-dependent photoluminescence study of Pb2+ doped strontium iodide
Author :
Junfeng Chen ; Shaohua Wang ; Yong Du ; Lidong Chen
Author_Institution :
Shanghai Inst. of Ceramics, Shanghai, China
fDate :
Oct. 27 2013-Nov. 2 2013
Abstract :
Temperature-Dependent Photoluminescence spectra and fluorescence decay time curves for Pb2+ doped SrI2 crystals were measured and investigated. Three distinct emissions with different luminescence mechanisms and behaviors are observed in the range 80-300 K. Under the 6S2-6S6P interconfiguration excitations for Pb2+ ions, Pb2+ doped SrI2 crystal presents an intense, asymmetric, and broad emission corresponding to 3P0, 1 → 1S0 transitions. This emission shows obvious thermal quenching characteristics above 250 K and evident temperature-dependent spectral blue shift. The ever-increasing probability ratio of the 3P1→1S0 transition over the 3P1→1S0 transition is suggested to be responsible for the observed spectral blue shift with the temperature rising. Two distinct decay time changing temperature regions (80-250 K and 250-300 K) were observed for emission due to 3P0, 1→1S0 transitions of Pb2+ ions. The thermal quenching activation energy ΔE, deduced by using the temperature-dependent decay time values from 250 to 300 K and the Arrhenius law, is 0.50 ± 0.04 eV for the 3P1→1S0 transition. Under the non 6S2-6S16P1 transitions related 433 nm excitation, emission bands peaked at 510 nm and 650 nm are observed and their luminescence mechanisms are yet to be revealed. The 510 nm emission shows double exponential decay characteristic with decay times varying in ns range, and its intensity gradually reduces with the temperature rising. Radiative transition processes predominate the symmetric 680 nm emission, which thus shows weak thermal quenching behavior.
Keywords :
fluorescence; lead; photoluminescence; quenching (thermal); spectral line shift; strontium compounds; 6S2-6S6P interconfiguration excitation; 3P0,1-1S0 transition; Arrhenius law; Pb2+ doped strontium iodide crystal; SrI2:Pb; asymmetric emission; broad emission; fluorescence decay time curve; intense emission; luminescence mechanisms; radiative transition process; temperature 80 K to 300 K; temperature-dependent decay time; temperature-dependent photoluminescence spectra; temperature-dependent spectral blue shift; thermal quenching activation energy; Crystals; Doping; Fluorescence; Ions; Temperature distribution;
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2013 IEEE
Conference_Location :
Seoul
Print_ISBN :
978-1-4799-0533-1
DOI :
10.1109/NSSMIC.2013.6829659