Efficient radioactive gas detection by scintillating porous metal–organic frameworks
Эффективное обнаружение радиоактивных газов с помощью сцинтиллирующих пористых металлоорганических каркасов
2023-05-18
SCID: 54.1/6cm9rg9m
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noble gas radionuclidesporous MOFsradioactive gas detectionscintillating metal–organic frameworkstime coincidence technique
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Abstract (AI)
Abstract Natural and anthropogenic gas radionuclides such as radon, xenon, hydrogen and krypton isotopes must be monitored to be managed as pathogenic agents, radioactive diagnostic agents or nuclear activity indicators. State-of-the-art detectors based on liquid scintillators suffer from laborious preparation and limited solubility for gases, which affect the accuracy of the measurements. The actual challenge is to find solid scintillating materials simultaneously capable of concentrating radioactive gases and efficiently producing visible light revealed with high sensitivity. The high porosity, combined with the use of scintillating building blocks in metal–organic frameworks (MOFs), offers the possibility to satisfy these requisites. We demonstrate the capability of a hafnium-based MOF incorporating dicarboxy-9,10-diphenylanthracene as a scintillating conjugated ligand to detect gas radionuclides. Metal–organic frameworks show fast scintillation, a fluorescence yield of ∼40%, and accessible porosity suitable for hosting noble gas atoms and ions. Adsorption and detection of 85 Kr, 222 Rn and 3 H radionuclides are explored through a newly developed device that is based on a time coincidence technique. Metal–organic framework crystalline powder demonstrated an improved sensitivity, showing a linear response down to a radioactivity value below 1 kBq m −3 for 85 Kr, which outperforms commercial devices. These results support the possible use of scintillating porous MOFs to fabricate sensitive detectors of natural and anthropogenic radionuclides.
Key Findings
1
A hafnium-based metal–organic framework incorporating dicarboxy-9,10-diphenylanthracene acts as a scintillating porous detector for radioactive gases.
2
A time-coincidence device enabled adsorption and detection studies of 85Kr, 222Rn, and 3H radionuclides.
3
Scintillating porous MOFs offer a solid-state approach to concentrate radioactive gases and improve detection sensitivity compared with liquid scintillators.
4
The MOF combines accessible porosity for hosting noble gas atoms and ions with fast scintillation and approximately 40% fluorescence yield.
5
The crystalline MOF powder showed a linear 85Kr response below 1 kBq m−3, outperforming commercial detectors.
Research Object
A hafnium-based scintillating porous metal–organic framework incorporating dicarboxy-9,10-diphenylanthracene for hosting radioactive gases
Research Subject
The MOF’s gas adsorption and scintillation-based detection performance for 85Kr, 222Rn, and 3H radionuclides, including sensitivity and response linearity
Publication Details
Publication Date
2023-05-18
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