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Metal halide perovskites (e.g., CsPbBr3) have emerged as highly promising scintillator materials owing to their superior optoelectronic characteristics. However, their practical deployment is constrained by intrinsic structural instability and nonradiative recombination-induced energy loss. Herein, we show that Ni2+ doping constitutes a potent regulatory strategy for synergistically improving the scintillation performance and environmental robustness of CsPbBr3 perovskite. Various characterizations combined with threotecial calculation indicate that the incorporation of Ni2+ dopants triggers lattice contraction, thereby enhancing the resistance to environmental perturbations. Ni-doping also passivates intrinsic defects and traps, leading to marked suppression of nonradiative recombination pathways. This synergy in as-prepared Ni-doped CsPbBr3 leads to an 11-fold enhancement in photoluminescence intensity and a substantial increase in photoluminescence quantum yield from 56.0% to 93.7%. Notably, it delivers an exceptional light yield of 38,428.5 photons/MeV, a low detection limit of 64.9 nGyₐᵢᵣ/s, and superior radiation tolerance. Furthermore, a flexible scintillation screen containing Ni-doped CsPbBr3 enables high-resolution X-ray imaging with a spatial resolution of 16.6 lp/mm, notably surpassing that of the majority of reported perovskite-based scintillators. This study provides profound insights into the pivotal role of metal doping into halide perovskites for enhancing environmental stability in radiation detection technologies.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/).
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