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In-situ microstructure modulation of fast temporal-decay (C4H9NH3)2PbBr4 composite film for high spatial resolution and dynamic X-ray imaging

  • Shilin Liu
  • , Shuai Song
  • , Yingying Hao
  • , Xin Liu
  • , Ruichen Bai
  • , Fangbao Wang
  • , Xuanzhen Ye
  • , Chuanhao Hu
  • , Dou Zhao
  • , Yadong Xu
  • Northwestern Polytechnical University Xian
  • Air Force Engineering University Xian
  • Northwest Institute of Nuclear Technology
  • Chengdu University of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Metal halide perovskite scintillators have emerged as promising candidates for X-ray imaging owing to their excellent scintillation performance and solution processability. However, simultaneously achieving high spatial and temporal resolution in scintillator films remains challenging. Increasing scintillator loading improves light yield but also induces particle aggregation and optical photon scattering, ultimately degrading spatial resolution. Here, the (C4H9NH3)2PbBr4@Poly(methyl methacrylate) (BA2PbBr4@PMMA) composite films with suppressed particle aggregation at high scintillator particle loading were achieved by in-situ regulating polymer confinement in the film preparation process, simultaneously enabling X-ray imaging with high spatial resolution and fast decay time. By establishing an adequate solvation environment, uniformly dispersed PMMA chains introduce homogeneous polymer confinement during crystallization, suppressing both solute aggregation and disorderly grain growth. The resulting uniformly dispersed fine-particle microstructure effectively suppresses optical photon scattering, thereby enhancing radioluminescence intensity, optical transmittance and the spatial resolution of the BA2PbBr4@PMMA scintillation film (from 6.0 to 17.5 lp mm−1). Furthermore, the composite films exhibit a fast decay time with an average value of 3.32 ns, effectively eliminating ghosting effects in dynamic imaging. This work provides a general strategy for designing scintillator films with high light output and fast decay, and offers insights into microstructure engineering for optoelectronic devices.

Original languageEnglish
Article number141613
JournalColloids and Surfaces A: Physicochemical and Engineering Aspects
Volume751
DOIs
StatePublished - 20 Dec 2026

Keywords

  • Flexible films
  • Microstructural regulation
  • Two-dimensional perovskites
  • X-ray imaging

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