Superfluorescent scintillation from coupled perovskite quantum dots

Scintillation, the process of converting high-energy radiation into detectable visible light underpins technologies from medical imaging to particle physics, yet conventional scintillators are limited by the oscillator strength of their individual emission centers. Here, we propose and demonstrate quantum optical scintillators, showcasing collective scintillation under X-ray excitation, where quantum correlations between emitters accelerate their emission beyond the intrinsic individual-oscillator rate. The effect appears as a red-shifted spectral peak and an enhanced emission rate, with an average lifetime of 230 ps at 80 K, 14× faster than room-temperature spontaneous emission. Unlike UV-driven superfluorescence, each X-ray photon generates a photoelectron that excites multiple neighboring, coupled quantum dots, producing a faster rate, larger spectral shift, and broader spectrum. We characterize the temperature-dependent temporal response using a Hanbury-Brown-Twiss g (2) (τ) setup. A many-body quantum-optics theory reproduces both UV- and X-ray-driven regimes. These quantum enhancements surpass emission-rate limits and could substantially improve time-of-flight detector performance.

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Publication Details

Journal
Newton
Published
2026-09-01
DOI
https://doi.org/10.1016/j.newton.2026.100668
Citations
2
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
4.60

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article

Superfluorescent scintillation from coupled perovskite quantum dots

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2 citations
Newton
Perovskite Materials and Applications
4.60
article

Superfluorescent scintillation from coupled perovskite quantum dots

Roman Schuetz, Yehonadav Bekenstein, Michael Birk, Ido Kaminer, Chen Mechel, Georgy Dosovitsky, Charles Roques‐Carmes, Shai Levy, Alexey Gorlach, Offek Tziperman, Rotem Strassberg, Shaul Katznelson, Noam Kasten, Nathan Regev
article en
2 citations

Abstract

Scintillation, the process of converting high-energy radiation into detectable visible light underpins technologies from medical imaging to particle physics, yet conventional scintillators are limited by the oscillator strength of their individual emission centers. Here, we propose and demonstrate quantum optical scintillators, showcasing collective scintillation under X-ray excitation, where quantum correlations between emitters accelerate their emission beyond the intrinsic individual-oscillator rate. The effect appears as a red-shifted spectral peak and an enhanced emission rate, with an average lifetime of 230 ps at 80 K, 14× faster than room-temperature spontaneous emission. Unlike UV-driven superfluorescence, each X-ray photon generates a photoelectron that excites multiple neighboring, coupled quantum dots, producing a faster rate, larger spectral shift, and broader spectrum. We characterize the temperature-dependent temporal response using a Hanbury-Brown-Twiss g (2) (τ) setup. A many-body quantum-optics theory reproduces both UV- and X-ray-driven regimes. These quantum enhancements surpass emission-rate limits and could substantially improve time-of-flight detector performance.

Newton
Technion – Israel Institute of Technology (IL), Stanford University (US)
United States-Israel Binational Science Foundation, PAZY Foundation
Openalex Percentile: Top 8%
Perovskite Materials and Applications
4.60
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