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Temperature manipulates the radiative process of near-infrared (NIR) emitting materials, which is essential for constructing luminescence thermometry. However, an elevated temperature usually causes thermal quenching of luminescence, restricting the sensitivity of thermometers. Herein, an approach to populating the excited state of lanthanides at elevated temperatures is introduced, leading to zero-thermal quenching of the NIR-II emission (∼1530 nm) of Er 3+ in β-NaLuF 4 via Nd 3+ -mediated phonon-assisted energy transfer under 808 nm excitation. Notably, the phonon engineering depends on the distance between the interacting ions, enabling unique NIR-II emission originating from the 4 I 11/2 → 4 I 15/2 transition (∼984 nm) of Er 3+ . Additionally, the enormously suppressed emissions of Nd 3+ and unusually enhanced emissions of Er 3+ are exploited to construct ratiometric NIR-II thermometers, which achieves exceptional thermal sensitivity and resolution (S r = 1.23% K –1, δ T = 0.23 at 313 K). By leveraging this anomalous optical response to temperature, we further demonstrated the broad applicability of the moderate mismatch energy level strategy across micro/nano-fluoride hosts. These findings not only offer valuable insights into the design of zero-thermal quenching of NIR-II luminescence materials, but also open up promising avenues for developing high-performance NIR-II ratiometric thermometers in advanced photonics applications.
Dai et al. (Thu,) studied this question.