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Luminescence Thermometry via Multiparameter Sensing in YV1-PO4:Eu3+, Er3
Yixuan Ma1, Xiaopeng Zhou1, Jiapeng Wu1
1National and Local Joint Engineering Laboratory for Optical Conversion Materials and Technology of National Development and Reform Commission, School of Materials and Energy, Lanzhou University, Lanzhou 730000, China.
Abstract:
Luminescence thermometry is a remote temperature sensing technique that utilizes temperature-dependent luminescence properties. Lanthanide-doped materials with two thermally coupled emitting levels displaying a variation in luminescence intensity ratio (LIR) with temperature have been successfully explored to design sensitive luminescent thermometers. However, the low absorption strength of lanthanide parity-forbidden 4f → 4f transitions reduces the brightness. Also, this Boltzmann-type thermometer is only sensitive within a limited temperature range. To address these issues, we report here YV1-PO4:Eu3+, Er3+ as a luminescent thermometer. This material utilizes the sensitized emission of Ln3+ by strong and broad vanadate charge transfer absorption and has a wide and tunable optimum temperature range by controlling the thermal quenching of Eu3+ emission through a variation of x. The new temperature probe offers a single material with multiple temperature-dependent luminescence properties, viz. the LIR of 2H11/2/4S3/2 emission of Er3+, the LIR of the integrated Er3+ and Eu3+ emission intensities, and the Eu3+ emission lifetime. Both micro- and nanocrystalline temperature probes are reported to achieve relative sensitivities (Sr) from ∼0.5%/K to over 5%/K in a wide temperature range of 300-873 K. To demonstrate practical applicability, the luminescent thermometer was applied to in situ chip temperature detection revealing temperature accuracies better than 1 K.
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