Dual-mode ratiometric optical thermometry in NaCaY(MoO4)3:Ho3+/Nd3+/Yb3+ phosphor via simultaneous downshifting and upconversion
Abstract
Dual-mode down-/up-conversion (DC/UC) phosphors are promising substances for non-contact optical thermometry. This study generated a NaCaY(MoO4)3 (NCYM) phosphor tri-doped with Ho3+/Nd3+/Yb3+ by the sol–gel process and assessed its efficacy as a ratio-metric thermometer within the temperature range of 303 to 543 K. The crystal structure and microstructure were analyzed, and the luminescence characteristics and energy-transfer mechanisms were examined under 325 nm (DC) and 980 nm (UC). With excitation 325 nm excitation, the emission peak exhibit minimal variation with temperature; however, the relative intensities are modified owing to thermal quenching. DC temperature sensing was accomplished by two intensity ratios: Ho3+ (I542/I660) and Yb3+/Ho3+ (I975/I660), yielding maximal relative sensitivities of approximately 0.44% K−1 and 1.25% K−1, respectively. For UC thermometry, two supplementary ratios were selected: a Ho3+-based visible ratio (I660/I542) and Nd3+-based NIR-I ratio (I806/I873). The UC mode was found to enhance the thermometric performance, achieving maximum relative sensitivities of around 0.50% K−1 for Ho3+ and approximately 1.06% K−1 for Nd3+, with a temperature uncertainty δT < 1.42 K throughout the 303–543 K range. In addition, the phosphor exhibited excellent thermal stability and repeatability over successive heating–cooling cycles, with a repeatability value reaching 98%. These results demonstrate that NCYM:Ho3+/Nd3+/Yb3+ is a robust dual-mode, multi-ratiometric phosphor for accurate optical thermometry in the 303–543 K range.

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