个人信息Personal Information
高级工程师
硕士生导师
任职 : 微电子实验教学中心主任
性别:男
毕业院校:大连理工大学
学位:博士
所在单位:集成电路学院
学科:微电子学与固体电子学. 光学工程
办公地点:辽宁省大连市大连经济技术开发区图强街321号大连理工大学开发区校区教学楼C区503室
联系方式:0411-62273210
电子邮箱:shjiank@dlut.edu.cn
Concentration effect on up-conversion luminescence and excitation path-dependent luminescence temperature quenching in YNbO4:Ho3+/Yb3+ phosphors
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论文类型:期刊论文
发表时间:2019-06-15
发表刊物:SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY
收录刊物:SCIE、PubMed、EI
卷号:217
页面范围:107-112
ISSN号:1386-1425
关键字:YNbO4:Ho3+/Yb3+ phosphors; Up-conversion luminescence; Thermal quenching
摘要:Usually, the luminescence intensity and mechanism of rare-earth ions doped materials are dependent on both doping concentration and sample temperature. In this study, we attempt to explore the concentration effect on up-conversion (UC) luminescence and the dependence of luminescence temperature quenching on excitation wavelength in YNbO4:Ho3+/Yb3+ phosphors. The YNbO4:Ho3+/Yb3+ phosphors with various Ho3+ and Yb3+ concentrations were synthesized via a high-temperature solid-state reaction technique. Intense green UC emission peaked at 543 nm was observed, accompanying with weak red and near infrared (NIR) UC emissions centered at 659 and 745 nm. Based on the laser working current dependence of UC luminescence, two-photon processes were responsible for both the green and the red UC emissions under 980 nm excitation, which have no apparent dependence on both Ho3+ and Yb3+ concentrations. According to the Arrhenius model, crossover process was responsible for the temperature-dependent down-conversion (DC) luminescence quenching of Ho3+ under 452 nm excitation. However, the temperature quenching processes of the green and the red UC luminescence cannot be well explained by Arrhenius model. It was found that the UC luminescence intensity decayed with increasing sample temperature, which was caused by both the crossover and temperature-dependent energy transfer processes. (C) 2019 Elsevier B.V. All rights reserved.