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Exciton-harvesting enabled efficient charged particle detection in zero-dimensional halides. | LitMetric

AI Article Synopsis

  • Materials for radiation detection are essential across various fields such as science, medicine, security, and environmental monitoring, and low-dimensional halides (LDHs) have shown promise as scintillators due to their efficient photon emission.
  • An innovative approach significantly improves exciton-harvesting in zero-dimensional CsCuI:Tl single crystals by suppressing harmful exciton interactions, leading to impressive performance metrics, including a high scintillation yield and excellent discrimination capabilities for detecting radiation.
  • The research highlights CsCuI:Tl's potential in practical applications, such as a radiation detector prototype capable of identifying radioactive gases, showcasing the broader usefulness of LDH materials in radiation detection.

Article Abstract

Materials for radiation detection are critically important and urgently demanded in diverse fields, starting from fundamental scientific research to medical diagnostics, homeland security, and environmental monitoring. Low-dimensional halides (LDHs) exhibiting efficient self-trapped exciton (STE) emission with high photoluminescence quantum yield (PLQY) have recently shown a great potential as scintillators. However, an overlooked issue of exciton-exciton interaction in LDHs under ionizing radiation hinders the broadening of its radiation detection applications. Here, we demonstrate an exceptional enhancement of exciton-harvesting efficiency in zero-dimensional (0D) CsCuI:Tl halide single crystals by forming strongly localized Tl-bound excitons. Because of the suppression of non-radiative exciton-exciton interaction, an excellent α/β pulse-shape-discrimination (PSD) figure-of-merit (FoM) factor of 2.64, a superior rejection ratio of 10, and a high scintillation yield of 26 000 photons MeV under 5.49 MeV α-ray are achieved in CsCuI:Tl single crystals, outperforming the commercial ZnS:Ag/PVT composites for charged particle detection applications. Furthermore, a radiation detector prototype based on CsCuI:Tl single crystal demonstrates the capability of identifying radioactive Rn gas for environmental radiation monitoring applications. We believe that the exciton-harvesting strategy proposed here can greatly boost the applications of LDHs materials.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11322634PMC
http://dx.doi.org/10.1038/s41377-024-01532-zDOI Listing

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