Hardness of PbS nanocrystal-based photoconductor to X-ray irradiation

Colloidal lead sulfide (PbS) nanocrystals (NCs) are emerging as cost-effective, solution-processable materials for infrared (IR) detection. Their use in a space environment is conditioned by their radiation tolerance. This study investigates the intrinsic robustness of PbS NC-based photoconductive devices to high-dose X-ray irradiation (up to 1.6 Grad [PbS]), far above requirement for deep-space operation. PbS NC films exhibit gradual performance degradation without abrupt thresholds, attributed to their polycrystalline nature, which localizes defects and mitigates long-range lattice disruption. Optoelectronic measurements reveal a drop in both the dark and illuminated response, yet the signal-to-noise ratio improves due to the faster decay of dark current. Spectroscopic analyses (XPS/HAXPES) confirm that the conductivity change can be attributed to X-ray-induced oxidation, which affects both Pb and S, forming sulfate and lead hydroxide phases that propagate throughout the NC volume. This oxidation reduces the effective NC size, blue-shifting the excitonic peak. Despite this, PbS NCs exhibit exceptional radiation hardness, comparable to that of radiation-hardened CMOS devices. These findings position PbS NCs as viable candidates for space-born IR detection, especially in oxygen-free environments where oxidation is naturally limited.

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Journal
Nanotechnology
Published
2026-09-14
DOI
https://doi.org/10.1088/1361-6528/aea6e2
Primary Topic
Quantum Dots Synthesis And Properties
Type
article
Field-Weighted Citation Impact
0.00

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Hardness of PbS nanocrystal-based photoconductor to X-ray irradiation

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Hardness of PbS nanocrystal-based photoconductor to X-ray irradiation

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article en

Abstract

Colloidal lead sulfide (PbS) nanocrystals (NCs) are emerging as cost-effective, solution-processable materials for infrared (IR) detection. Their use in a space environment is conditioned by their radiation tolerance. This study investigates the intrinsic robustness of PbS NC-based photoconductive devices to high-dose X-ray irradiation (up to 1.6 Grad [PbS]), far above requirement for deep-space operation. PbS NC films exhibit gradual performance degradation without abrupt thresholds, attributed to their polycrystalline nature, which localizes defects and mitigates long-range lattice disruption. Optoelectronic measurements reveal a drop in both the dark and illuminated response, yet the signal-to-noise ratio improves due to the faster decay of dark current. Spectroscopic analyses (XPS/HAXPES) confirm that the conductivity change can be attributed to X-ray-induced oxidation, which affects both Pb and S, forming sulfate and lead hydroxide phases that propagate throughout the NC volume. This oxidation reduces the effective NC size, blue-shifting the excitonic peak. Despite this, PbS NCs exhibit exceptional radiation hardness, comparable to that of radiation-hardened CMOS devices. These findings position PbS NCs as viable candidates for space-born IR detection, especially in oxygen-free environments where oxidation is naturally limited.

Nanotechnology
Leonardo (United States) (US), Institut Superieur de l'Aeronautique et de l'Espace (ISAE-SUPAERO) (FR), Centre National d'Études Spatiales (FR), Sorbonne Université (FR), Thales (United Kingdom) (GB), Laboratoire Médiations (FR), ESPCI Paris (FR)
Agence Nationale de la Recherche, Centre National d’Etudes Spatiales, Centre National de la Recherche Scientifique, Sorbonne Université
Sustainable cities and communities
Openalex Percentile: Top 25%
Quantum Dots Synthesis And Properties
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