Emission color tuning and dual-mode luminescence thermometry design in Dy<sup>3+</sup>/Eu<sup>3+</sup> co-doped SrMoO<sub>4</sub> phosphors
Vaibhav Chauhan, Prashant Dixit, Prashant Pandey, Satyam Chaturvedi, Praveen C. Pandey
Abstract
Abstract The challenge of building a highly reliable contactless temperature probe with high sensitivity, good temperature-induced color discriminability, and economical synthesis has prompted the research community to work in the field of rare-earth-based luminescence thermometry. Moreover, the fast-growing market for optoelectronic devices has increased the demand for tunable color-emitting phosphors. In this study, Dy 3+ /Eu 3+ co-doped SrMoO 4 phosphors were developed as tunable color-emitting source and dual-mode luminescence thermometer. A facile and cost-effective auto-combustion method was used to synthesize the phosphors. Our work demonstrates a viable scheme for tailoring the emission of single-phase phosphors by precisely controlling the dopant concentrations and by modulating excitation wavelength. The overall emission is tuned from greenish-yellow to white and greenish-yellow to reddish-orange. A detailed energy transfer process from the host to the Ln 3+ ions and between the Ln 3+ ions is discussed. Further, anti-thermal quenching in the emission of Dy 3+ ion is observed when excited with 297 nm. The dual-mode luminescence thermometry has been studied by analyzing the fluorescence intensity ratio of Dy 3+ and Eu 3+ ions upon excitation at 297 nm. The maximum relative sensitivity value for 4% Eu 3+ co-doped SrMoO 4 :4%Dy 3+ phosphor is 1.46% K −1 at 300 K. Furthermore, the configurational coordinate diagram is presented to elucidate the nature of temperature-dependent emission. Therefore, our research opens up new avenues for the development of color-tunable luminescent materials for various optoelectronic and temperature-sensing applications.