Efficiency and emission rate are two traditionally conflicting parameters in radiation detection, and achieving their simultaneous maximization can significantly advance ultrafast time-of-flight (ToF) technologies. In this study, it is demonstrated that this goal is attainable by harnessing the giant oscillator strength (GOS) inherent to weakly confined perovskite nanocrystals, which enables superradiant scintillation under mildly cryogenic conditions that align seamlessly with ToF technologies. It is shown that the radiative acceleration due to GOS encompasses both single and multiple exciton dynamics arising from ionizing interactions, further enhanced by suppressed non-radiative losses and Auger recombination at 80 K. The outcome is ultrafast scintillation with 420 ps lifetime and light yield of approximate to 10 000 photons/MeV for diluted NC solutions, all without non-radiative losses. Temperature-dependent light-guiding experiments on test-bed nanocomposite scintillators finally indicate that the light-transport capability remains unaffected by the accumulation of band-edge oscillator strength due to GOS. These findings suggest a promising pathway toward developing ultrafast nanotechnological scintillators with optimized light output and timing performance.

Zaffalon, M., Fratelli, A., Li, Z., Bruni, F., Cherniukh, I., Carulli, F., et al. (2025). Ultrafast Superradiant Scintillation from Isolated Weakly Confined Perovskite Nanocrystals. ADVANCED MATERIALS [10.1002/adma.202500846].

Ultrafast Superradiant Scintillation from Isolated Weakly Confined Perovskite Nanocrystals

Zaffalon M. L.
Primo
;
Fratelli A.;Bruni F.;Carulli F.;Meinardi F.;Brovelli S.
Ultimo
2025

Abstract

Efficiency and emission rate are two traditionally conflicting parameters in radiation detection, and achieving their simultaneous maximization can significantly advance ultrafast time-of-flight (ToF) technologies. In this study, it is demonstrated that this goal is attainable by harnessing the giant oscillator strength (GOS) inherent to weakly confined perovskite nanocrystals, which enables superradiant scintillation under mildly cryogenic conditions that align seamlessly with ToF technologies. It is shown that the radiative acceleration due to GOS encompasses both single and multiple exciton dynamics arising from ionizing interactions, further enhanced by suppressed non-radiative losses and Auger recombination at 80 K. The outcome is ultrafast scintillation with 420 ps lifetime and light yield of approximate to 10 000 photons/MeV for diluted NC solutions, all without non-radiative losses. Temperature-dependent light-guiding experiments on test-bed nanocomposite scintillators finally indicate that the light-transport capability remains unaffected by the accumulation of band-edge oscillator strength due to GOS. These findings suggest a promising pathway toward developing ultrafast nanotechnological scintillators with optimized light output and timing performance.
Articolo in rivista - Articolo scientifico
fast timing; giant oscillator strength; lead halide perovskite nanocrystals; scintillation; superradiance;
English
21-mar-2025
2025
2500846
partially_open
Zaffalon, M., Fratelli, A., Li, Z., Bruni, F., Cherniukh, I., Carulli, F., et al. (2025). Ultrafast Superradiant Scintillation from Isolated Weakly Confined Perovskite Nanocrystals. ADVANCED MATERIALS [10.1002/adma.202500846].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/548261
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