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January 24, 20266 citations

Efficient multicolor X-ray excited persistent luminescence enabled by Gd-mediated trap clusters.

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BYBin YangChina Jiliang UniversityDLDeyang LiChina Jiliang UniversityZSZhiguo SunNankai University

Key Points

  • The aim is to create efficient multicolor luminescence materials using Gd-mediated trap clusters.
  • Constructed Gd-mediated cluster traps within alkaline-earth fluorochlorides.
  • Evaluated the energy transfer capabilities of various activators like Eu2+, Sm2+, Tb3+, and Mn2+.
  • Tested persistent luminescence intensity under X-ray irradiation.
  • Eu2+ persistent luminescence intensity increased by up to 32.7-fold with Gd3+ codoping.
  • Achieved vibrant violet emission from Eu2+ to excite perovskite quantum dots for full-color displays.
  • Facilitated low-dose, high-resolution delayed X-ray imaging using Sm2+ emission.

Abstract

Persistent luminescence materials are promising for night-vision displays, background-free medical diagnostics, and high-resolution radiography, yet achieving efficient violet, yellow, and red emission within a single robust and scalable host remains a longstanding challenging. Here, we overcame this limitation by constructing Gd3+-mediated cluster traps within alkaline-earth fluorochlorides to minimize energy loss during electron migration. These clusters serve as both intrinsic emitters and efficient energy transfer platforms for various activators, including Eu2+, Sm2+, Tb3+, and Mn2+, enabling bright and spectrally tunable multicolor persistent luminescence upon X-ray irradiation. The persistent luminescence intensity of Eu2+ is enhanced by up to 32.7-fold upon Gd3+ codoping. Moreover, violet persistent luminescence from Eu2+ is employed to excite perovskite quantum dots for full-color time-domain dynamic displays, while Sm2+ emission facilitates low-dose, high-resolution delayed X-ray imaging. These findings establish a generalizable strategy for designing efficient multicolor persistent materials for advanced multifunctional optical technologies.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6974616cbb9d90c67120b3f9https://doi.org/10.1038/s41467-026-68799-1
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