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April 1, 2026Angewandte Chemie5 citations

Carbon Dots as Afterglow Scintillators for Ultralong Afterglow and Low‐Dose X‐Ray Imaging

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YBYingying BiJYJuan YuBWBoyang Wang

Key Points

  • The central aim is to enhance afterglow scintillation properties of carbon dots for x-ray imaging applications.
  • Introduced B-N trap states in carbon dots afterglow composites.
  • Measured afterglow lifetime and scintillation properties at room temperature.
  • Assessed radio stability under x-ray excitation.
  • Evaluated radiation detection limits and spatial resolution in imaging.
  • Achieved an afterglow lifetime of up to 10.72 seconds.
  • Demonstrated high radio stability under x-ray excitation.
  • Achieved a low radiation detection limit of 1.67 µGy s −1.
  • Showed spatial resolution of 10.7 line pairs per millimeter.

Abstract

ABSTRACT Afterglow scintillators have attracted significant attention because of their efficient triplet exciton utilization and radiative luminescence performance. However, achieving a high radioluminescence efficiency in carbon dots (CDs) based on low atomic number elements remains challenging. In this study, B‐N trap states were introduced into the design of CDs afterglow composites, realizing ultralong afterglow emission and excellent scintillation properties. The B‐N trap endowed the TpB‐CDs@Urea composites with an ultralong afterglow lifetime of up to 10.72 s at room temperature, significantly exceeding those reported for phosphorescent materials. Moreover, TpB‐CDs@Urea scintillators demonstrated high radio stability under x‐ray excitation and exhibited a low radiation detection limit of 1.67 µGy s −1 , which allows efficient radiography imaging with a spatial resolution of 10.7 line pairs (lp) mm −1 . Based on these x‐ray excitation radiation luminescence characteristics of TpB‐CDs@Urea composites, their potential applications in x‐ray photography technology were also demonstrated. Ultimately, the findings of this study provide a feasible principle for designing high‐performance afterglow scintillator materials while expanding their application in fields such as detection and x‐ray radiography.

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Cite This Study

Bi et al. (2026) studied this question.

synapsesocial.com/papers/69cd7ad45652765b073a8538https://doi.org/10.1002/ange.6508049
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