Yb3+/Tm3+ Boltzmann thermometers at room temperature – Origin and limits of their thermometric activity

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Abstract

The Yb3+/Tm3+ pair is a promising near-infrared luminescent thermometer, especially close to the physiological temperature, yet the mechanisms governing its thermometric behavior remain poorly understood. Here, we investigate the excited-state dynamics of (Gd,Y)2O3:Yb3+(15%),Tm3+(0.5–3%) phosphors synthesized by a modified Pechini method. Temperature-dependent emission measurements under 980 nm excitation reveal thermally coupled 3F2,3 and 3H4 levels, enabling Boltzmann-based temperature sensing with sensitivities of approximately 1% K=1 near physiological temperatures. Despite the large energy gap (≈1890 cm-1), the onset of thermometric activity (Ton) occurs around 300 K owing to nonradiative coupling mediated by forced electric dipole. However, the formally forbidden 3F2,33H6 emissions result in weak luminescence of the 3F2.3 levels, thereby increasing temperature uncertainty and highlighting an intrinsic trade-off between sensitivity and precision. These findings provide design guidelines for improving the performance of near-infrared Yb3+/Tm3+ luminescent thermometers.

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Institutions
  • 1 São Paulo State University (UNESP)
  • 2 IQ-USP
  • 3 unesp
  • 4 FCT-UNESP
  • 5 Heinrich Heine University Düsseldorf
Track
  • TL04 - Rare Earth Chemistry and Applications
Keywords
Near-infrared emission
Boltzmann thermometer
Excited-state dynamics