Proton-induced radiation stability in FAPbBr3 perovskite detectors: Multi-descriptor damage model and experimental validation

Radiation damage prediction is essential to guarantee the operational reliability of lead halide perovskite detectors deployed in medical imaging, aerospace, and high-energy radiation fields. This work proposes a multi-descriptor model to evaluate proton damage in perovskite detectors, integrating Monte Carlo particle transport with integral nonionizing energy loss (NIEL), damage energy, primary knock-on atom statistics, vacancy distribution, and displacement per atom (DPA). A 10 × 10 × 2 mm3 FAPbBr3 was simulated under monoenergetic 70, 100, 150, 200, and 250 MeV proton beams with 1.0×106 incident protons. The NIEL mass stopping power decreases from 6.47×10−4 to 1.04×10−4 MeV/cm2/g, while vacancy and DPA metrics exhibit distinct energy-dependent behaviors. Irradiation experiments on Bi/FAPbBr3/C devices reveal μτ retentions of 97.2%, 91.5%, and 66.6% at 70, 100, and 150 MeV, accompanied by maximal dark-current deterioration at 150 MeV. Comparative analysis implies that local peak vacancy descriptors may better capture measured degradation trends relative to integral NIEL or total DPA. This study provides a radiation damage prediction model to evaluate the radiation tolerance of perovskite detectors.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0349653
Primary Topic
Perovskite Materials and Applications
Type
article
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Proton-induced radiation stability in FAPbBr3 perovskite detectors: Multi-descriptor damage model and experimental validation

Yongshuai Ge, Haodi Wu, Xulong Pang, Jianan Wu et al.
Applied Physics Letters
Perovskite Materials and Applications
article

Proton-induced radiation stability in FAPbBr3 perovskite detectors: Multi-descriptor damage model and experimental validation

Yongshuai Ge, Haodi Wu, Xulong Pang, Jianan Wu, Yifu Chen, Bin Song, Yong Sang, Zeqi Huang
article en

Abstract

Radiation damage prediction is essential to guarantee the operational reliability of lead halide perovskite detectors deployed in medical imaging, aerospace, and high-energy radiation fields. This work proposes a multi-descriptor model to evaluate proton damage in perovskite detectors, integrating Monte Carlo particle transport with integral nonionizing energy loss (NIEL), damage energy, primary knock-on atom statistics, vacancy distribution, and displacement per atom (DPA). A 10 × 10 × 2 mm3 FAPbBr3 was simulated under monoenergetic 70, 100, 150, 200, and 250 MeV proton beams with 1.0×106 incident protons. The NIEL mass stopping power decreases from 6.47×10−4 to 1.04×10−4 MeV/cm2/g, while vacancy and DPA metrics exhibit distinct energy-dependent behaviors. Irradiation experiments on Bi/FAPbBr3/C devices reveal μτ retentions of 97.2%, 91.5%, and 66.6% at 70, 100, and 150 MeV, accompanied by maximal dark-current deterioration at 150 MeV. Comparative analysis implies that local peak vacancy descriptors may better capture measured degradation trends relative to integral NIEL or total DPA. This study provides a radiation damage prediction model to evaluate the radiation tolerance of perovskite detectors.

Applied Physics LettersVol. 129(11)
Chinese Academy of Medical Sciences & Peking Union Medical College (CN), Beijing University of Technology (CN), National Cancer Center (US), Centre of Excellence for Advanced Materials (CN), Shenzhen Institutes of Advanced Technology (CN), Beijing University of Chemical Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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