Visualized real-time flexible high-temperature sensing in Eu 3+ /Tb 3+ -doped Y 2 Mo 3 O 12 negative thermal expansion material films

The demand for accurate temperature readings in harsh high-temperature environments includes miniaturization, flexibility, visualization, and integrability of temperature sensors with the growing need for human development. Rare earth-doped non-contact fluorescence intensity ratio (FIR) temperature...

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Veröffentlicht in:Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2024-07, Vol.12 (26), p.9606-9616
Hauptverfasser: Yan, Shilei, Pi, Dongming, Zi, Yingzhu, Zhao, Heping, Feng, Rongbao, Ruan, Keliang, Qiu, Jianbei, Song, Zhiguo, Huang, Anjun, Liu, Yue, Cun, Yangke, Yang, Zhengwen
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Sprache:eng
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Zusammenfassung:The demand for accurate temperature readings in harsh high-temperature environments includes miniaturization, flexibility, visualization, and integrability of temperature sensors with the growing need for human development. Rare earth-doped non-contact fluorescence intensity ratio (FIR) temperature sensors have received widespread attention due to their high detection accuracy and fast response ability. However, the limitations of thermal quenching (TQ) and thermal coupling energy level differences restrict their applications. In this work, a novel temperature sensing method in Eu 3+ /Tb 3+ -doped Y 2 Mo 3 O 12 negative thermal expansion (NTE) materials is proposed, which depends on different energy transfer characteristics of Eu 3+ - and Tb 3+ -doped NTE materials. Under a 295 nm excitation laser, the Y 2 Mo 3 O 12 :Eu 3+ phosphor achieved 600% enhancement due to the charge-transfer band (CTB) absorption between O 2− and MoO 4 2− . At 573 K, the luminescence intensity of Y 2 Mo 3 O 12 :Tb 3+ is reduced by 30 times due to the absence of energy transfer between the Tb 3+ ions and Y 2 Mo 3 O 12 NTE materials. The Y 2 Mo 3 O 12 :Eu 3+ /Tb 3+ mixing materials enhance the relative luminescence intensity and solve the thermal coupling energy level differences, achieving high sensitivity and resolution (maximum S r = 2.56% K −1 at 453 K). The Y 2 Mo 3 O 12 :Eu 3+ /Tb 3+ flexible thin film achieves multiple naked-eye color spans, breaking free from the limitations of optical detection instruments and demonstrating strong potential for robust and direct temperature reading without equipment. This demonstrates their superior advantages for visualizing real-time high-temperature sensing with nonplanar surfaces, thermal defect diagnosis systems, intelligent battery monitoring systems, and other high-temperature sensing fields.
ISSN:2050-7526
2050-7534
DOI:10.1039/D4TC01207K