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Carrier Diffusion Links Single Crystal Quality and Photoluminescence in Halide Perovskite Radiation Detectors.

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Peer-reviewed

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Abstract

Halide perovskites have emerged as promising materials for next-generation radiation detectors, echoing their transformative impact on photovoltaics. Due to the long penetration depths of X-rays and γ-rays, thick single crystals are required to sufficiently attenuate the radiation, making bulk crystal quality critical for device performance. Photoluminescence properties, particularly long lifetimes and redshifted emission peaks, are commonly used as proxies for identifying high-quality CsPbBr3 crystals for high-performance detectors, yet the physical origin of this correlation remains unclear. Here, complementary photoluminescence techniques with a full-spectrum fit are combined to reveal the importance of vertical diffusion in governing photoluminescence response, ultimately shaping detector performance. High-quality crystals exhibit larger vertical diffusion coefficients (up to 0.65 cm2 s-1) and lower recombination rates (down to 1.1 × 106 s-1), leading to diffusion lengths up to 5 times greater than those in low-quality crystals. Using one- and two-photon photoluminescence microscopy, microscale defects are further visualized, with suppressed redshift and distributions throughout the bulk, in low-quality crystals. Two-photon diffusion mapping directly reveals how these defects hinder carrier transport. These findings establish a direct link between photoluminescence and carrier diffusion, providing a quantitative framework that connects crystal quality to charge transport and device performance in perovskite radiation detectors.

Description

Publication status: Published

Journal Title

Adv Mater

Conference Name

Journal ISSN

0935-9648
1521-4095

Volume Title

Publisher

Wiley

Rights and licensing

Except where otherwised noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/
Sponsorship
Engineering and Physical Sciences Research Council (EP/V027131/1)
Leverhulme Trust (RPG-2021-191)
Horizon Europe UKRI Underwrite MSCA (101106375 EP/Y024648/1)
Horizon Europe UKRI Underwrite MSCA (EP/Y024648/1)
Royal Society (URF\R\221026 and RF\ERE\221004)
Royal Society (UF150033)
Engineering and Physical Sciences Research Council (EP/S022139/1)