Issue 16, 2017, Issue in Progress

Sr1.7Zn0.3CeO4F0.2:Eu3+: novel dual-emission temperature sensors for remote, noncontact thermometric application

Abstract

A novel dual-emitting temperature sensor, Sr1.7Zn0.3CeO4F0.2:Eu3+, is successfully synthesized via a ceramic reaction. Powder X-ray diffraction patterns and Rietveld refinement verify the phase purity of the sensor. Its photoluminescence spectrum exhibits a pronounced intrinsic dual emission, theoretically divided by the wavelength of 570 nm: one stems from Eu3+ and the other is derived from the Ce4+–O2− charge transfer state. The temperature-dependent luminescence spectra of the dual-emission thermophosphor demonstrate its superior sensitivity towards ambient temperature. Further studies illustrate that the intensity ratio between the aforementioned two parts, as a function of temperature, is perfectly linear over a broad temperature window, yielding a convenient and accurate approach to obtain the temperature of a target, measured using the noncontact self-referencing model. We also investigate the basis of the underlying mechanism of Sr1.7Zn0.3CeO4F0.2:Eu3+ as a dual-emission thermometric sensor. The research herein shows that the intrinsic dual-emission sensor, as a new-fashioned thermophosphor, displays potential for ratiometric intensity measurements in thermometry domains.

Graphical abstract: Sr1.7Zn0.3CeO4F0.2:Eu3+: novel dual-emission temperature sensors for remote, noncontact thermometric application

Supplementary files

Article information

Article type
Paper
Submitted
11 Oct 2016
Accepted
16 Jan 2017
First published
01 Feb 2017
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2017,7, 9645-9652

Sr1.7Zn0.3CeO4F0.2:Eu3+: novel dual-emission temperature sensors for remote, noncontact thermometric application

H. Li, R. Pang, W. Sun, H. Li, T. Ma, Y. Jia, D. Li, L. Jiang, S. Zhang and C. Li, RSC Adv., 2017, 7, 9645 DOI: 10.1039/C6RA25092K

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