Atomically confined excitons in 2D perovskites for bright and sub-nanosecond scintillation.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41387969.
- Also identified by DOI 10.1038/s41467-025-67525-7 and PMC identifier 12824210.
- Licence recorded as CC BY-NC-ND.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
Ultrafast radiation detection is crucial for advancing medical imaging, high-energy physics, astronomy, and industrial applications, offering high spatiotemporal resolution and reduced radiation exposure. However, the bottleneck lies in the formidable challenge of achieving scintillators with both ultrafast response and high efficiency. Contrasting with previous approaches that focused on molecular-level confinement, here we propose the strategy of pushing exciton confinement to the limit of atomic scale. Using 2D perovskites as a model, we design organic A-site cations to selectively enhance in-plane distortion to localize excitons, while suppressing out-of-plane and intra-octahedral distortions to minimize the formation of inefficient, long-lived self-trapped excitons. Specifically, (1,4-CMA)PbBr<sub>4</sub> exhibits a rare combination of fast response (0.62 ns) and high light yield (19,700 photons MeV<sup>-1</sup>), surpassing leading commercial and research scintillators. These properties enable breakthroughs in advanced imaging, including fast positron emission tomography with timing precision of 43.3 ps and high-resolution X-ray imaging (32 lp mm<sup>-1</sup>).