Abstract
Mikhail A. Kurochkin, Daria V. Mamonova, Pavel K. Olshin, Evgenii Yu. Kolesnikov, Ilya E. Kolesnikov
Abstract
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Effect of Yb3+ concentration on Er3+ doped CaF2 single crystal for temperature sensor applications
10.1016/j.optcom.2022.128488 · doi-reference
Studies on up/down-conversion emission of Yb3+ sensitized Er3+ doped MLa2(MoO4)4 (M= Ba, Sr and Ca) phosphors for thermometry and optical heating
10.1016/j.optmat.2017.10.036 · doi-reference
Quenching pathways in NaYF4: Er3+, Yb3+ upconversion nanocrystals
10.1021/acsnano.8b01545 · doi-reference
Size-dependent upconversion luminescence in Er3+/Yb3+-codoped nanocrystalline yttria: saturation and thermal effects
10.1021/jp070122e · doi-reference
Energy levels and optical spectroscopy of Er3+ in Gd2O3 nanocrystals
10.1021/jp072980g · doi-reference
Designing dual-mode luminescence in Er3+ doped Y2WO6 microparticles for anticounterfeiting and temperature measurement
10.1111/jace.18153 · doi-reference
Dual-mode photoluminescence of Er3+-doped Ta2O5 coatings formed by plasma electrolytic oxidation of tantalum
10.1007/s11664-023-10658-6 · doi-reference
Multimode luminescence thermometry based on emission and excitation spectra
10.1016/j.jlumin.2020.117828 · doi-reference
High-Performance multiparametric luminescent thermometer: Dy3+-doped Sodium Alumino-Borate Glass
10.1016/j.jlumin.2025.121508 · doi-reference
Multiple Linear Regression-Enhanced Optical Thermometry via Phonon-Assisted Back Energy Transfer in Tm3+-Eu3+ Co-Doped Phosphors
10.1002/adom.202501050 · doi-reference
Luminescence Thermometry via Multiparameter Sensing in YV1–xPxO4: Eu3+, Er3+
10.1021/jacs.5c02306 · doi-reference
Single vs. mutliparametric luminescence thermometry: the case of Eu3+-doped Ba3(VO4)2 nanophosphors
10.1039/d3tc03072e · doi-reference
Comparison of performance between single-and multiparameter luminescence thermometry methods based on the Mn5+ near-infrared emission
10.3390/s23083839 · doi-reference
Boltzmann luminescent nanothermometry: mechanistic criteria and predictive design of thermally coupled levels
10.1038/s41377-026-02260-2 · doi-reference
Trends in luminescence thermometry
10.1063/5.0014825 · doi-reference
Photo-and Cathodoluminescence of Er3+-Doped Lu2O3 Nanoparticles for Primary and Secondary Optical Nanothermometry
10.1021/acsanm.5c05022 · doi-reference
Comparing the performance of Nd3+-doped LiBaPO4 phosphors as optical temperature sensors within the first biological window exploiting luminescence intensity ratio and bandwidth methods
10.1016/j.jlumin.2020.117524 · doi-reference
A review on fluorescence intensity ratio thermometer based on rare-earth and transition metal ions doped inorganic luminescent materials
10.1016/j.jallcom.2020.156744 · doi-reference
Optical thermometry exploring up-conversion and down-shifting of photons in LaOF: Er3+ ceramic powders
10.1016/j.ceramint.2025.09.311 · doi-reference
Microfluidics-guided fluorescent nanodiamond assembly method for highly sensitive thermometry
10.1016/j.sna.2025.116312 · doi-reference
Micro/nanoscale thermometry in photothermal catalysis
10.1016/j.joule.2025.102052 · doi-reference
Environmental monitoring systems: A review
10.1109/jsen.2012.2233469 · doi-reference
Review of in-situ process monitoring and in-situ metrology for metal additive manufacturing
10.1016/j.matdes.2016.01.099 · doi-reference
Standardizing luminescence nanothermometry for biomedical applications
10.1039/d0nr03568h · doi-reference
Spotlight on luminescence thermometry: basics, challenges, and cutting-edge applications
10.1002/adma.202302749 · doi-reference