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Enhancing upconversion luminescence and thermal sensing properties of Er/Yb co‐doped oxysulfide core‐shell nanocrystals.

Authors :
Jiao, Jianxin
Liu, Yuwei
Wang, Hong
Yin, Xiumei
Xing, Mingming
Luo, Xixian
Tian, Ying
Source :
Journal of the American Ceramic Society. Feb2021, Vol. 104 Issue 2, p985-994. 10p. 1 Diagram, 1 Chart, 4 Graphs.
Publication Year :
2021

Abstract

The development of noncontact thermal probe based on stable inorganic materials of trivalent lanthanide (Ln3+) doped phosphors with nontoxicity is of vital importance for their promising applications in bio‐medical fields. Here we explore the upconversion luminescence and thermal sensing properties of Er3+, Yb3+ co‐doped oxysulfide in a broad temperature range of 300‐583 K. It was found that constructing an active shell with an optimum concentration of sensitizers is an efficient way to improve both the luminescent intensities and thermal sensitivity. Compared with the core‐only sample, the luminescent intensity of the Y2O2S: Er3+, Yb3+@ Y2O2S: 5%Yb3+ sample is significantly enhanced by 12‐fold at excitation of 980 nm. While further increasing the Yb3+ concentration in the shell activates new quenching pathways of Er3+ → Yb3+ → quencher from the core to the shell. Similar quenching mechanisms are also observed at excitation of 1550 nm. These energy transfer processes and luminescence mechanisms are verified in the fluorescence decay measurements. Furthermore, coating the core sample with an active shell doped by 10% Yb3+ enhances the thermal sensitivity by 30%, holding a high and stable sensitivity more than 50 × 10−4 K−1 in a broad temperature range of 423‐573 K at 980 nm excitation. In addition, at the much safer excitation wavelength of 1550 nm, this sample achieved the maximum sensitivity of 45 × 10−4 K−1 at 503 K. Our work contributes a feasible and versatile way to promote the luminescence and thermal sensing properties of Ln3+‐based materials, combining with the nontoxic oxysulfide host, indicating their potential applications as safe fluorescent and temperature nano‐probes in bio‐field. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00027820
Volume :
104
Issue :
2
Database :
Academic Search Index
Journal :
Journal of the American Ceramic Society
Publication Type :
Academic Journal
Accession number :
147403335
Full Text :
https://doi.org/10.1111/jace.17509