Ratiometric luminescence thermometry based on diverse thermal response from excited states in La2ZnTiO6: Tb3

An excited-state thermometer was designed based on the difference in thermal change tendency of the excitation bands in double-perovskite La2ZnTiO6: Tb3+ phosphor. The temperature dependent excitation spectra monitored at Tb3+ 543 nm emission revealed that the 4f8→4f75d and Tb3+–Ti4+ intervalence ch...

Full description

Saved in:
Bibliographic Details
Published inJournal of luminescence Vol. 249; p. 119047
Main Authors Jiawen, Li, Jiawen, Wang, Ruoshan, Lei, Shiqing, Xu
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.09.2022
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:An excited-state thermometer was designed based on the difference in thermal change tendency of the excitation bands in double-perovskite La2ZnTiO6: Tb3+ phosphor. The temperature dependent excitation spectra monitored at Tb3+ 543 nm emission revealed that the 4f8→4f75d and Tb3+–Ti4+ intervalence charge transfer (IVCT) excitation bands descended faster with rising temperature in contrast to the case of 4f–4f excitation peaks. The primary cause was analyzed by considering the relationship between the depopulating process and excitation wavelength. Moreover, the excitation intensity ratio of 7F6→5D3 versus IVCT can be used for thermometry with maximal absolute and relative sensing sensitivities of ∼4.46 × 10−2 K−1 and 0.727% K−1, indicating the potential for temperature sensing applications. •Thermal quenching rates of Tb3+ emissions in La2ZnTiO6 alter with excitation lines.•Thermal stability of 4f-4f excitation peaks is better than that of 4f.→5d and IVCT ones.•Excitation intensity ratio of 7F6.→5D3 to IVCT (or 4f→5d) can be applied for sensing.
ISSN:0022-2313
1872-7883
DOI:10.1016/j.jlumin.2022.119047