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Absolute Primary Nanothermometry Using Individual Stark Sublevels of Rare-Earth-doped Crystals

Chemical Physics 2026-03-05 v1 Materials Science Optics

Abstract

We present two independent optical methods for absolute primary thermometry using rare-earth-doped nanoparticles. Both approaches rely exclusively on the internal energy levels and population dynamics of the dopant ions, eliminating the need for external temperature references. We experimentally demonstrate the concepts by using Y2_2O3_3: Yb3+^{3+}/Er3+^{3+} nanoparticles, exploiting Boltzmann distribution between individual Stark sublevels of the Er3+^{3+} ions, emitting in the green spectral region (\sim550 nm) and in the near-infrared spectral region (\sim1600 nm). Our strategy establishes rare-earth-based luminescence thermometers as genuine absolute primary probes, conceptually comparable to Johnson noise and acoustic gas thermometers, but with the fundamental advantage of possibly being employed at the nanoscale, potentially down to the single-ion limit, with optical readout and over wide temperature ranges.

Keywords

Cite

@article{arxiv.2603.03563,
  title  = {Absolute Primary Nanothermometry Using Individual Stark Sublevels of Rare-Earth-doped Crystals},
  author = {Allison R. Pessoa and Thomas Possmayer and Jefferson A. O. Galindo and Luiz F. dos Santos and Rogéria R. Gonçalves and Leonardo de S. Menezes and Anderson M. Amaral},
  journal= {arXiv preprint arXiv:2603.03563},
  year   = {2026}
}