Radiation-resistant metal-organic framework enables efficient separation of krypton fission gas from spent nuclear fuel

Радиационно-стойкий металлоорганический каркас обеспечивает эффективное разделение газообразного криптона, образующегося при делении, из отработавшего ядерного топлива
Sameh K. Elsaidi, Mona H. Mohamed, Ahmed Helal, Mitchell Galanek, Tony Pham, Shanelle Suepaul, Brian Space, David Hopkinson, Praveen K. Thallapally, Ju Li
2020-06-18

Kr/N2 selectivitySIFSIX-3-Cugamma and beta irradiation stabilitykrypton fission gas separationradiation-resistant metal-organic frameworks
Abstract Capture and storage of volatile radionuclides that result from processing of used nuclear fuel is a major challenge. Solid adsorbents, in particular ultra-microporous metal-organic frameworks, could be effective in capturing these volatile radionuclides, including 85Kr. However, metal-organic frameworks are found to have higher affinity for xenon than for krypton, and have comparable affinity for Kr and N2. Also, the adsorbent needs to have high radiation stability. To address these challenges, here we evaluate a series of ultra-microporous metal-organic frameworks, SIFSIX-3-M (M = Zn, Cu, Ni, Co, or Fe) for their capability in 85Kr separation and storage using a two-bed breakthrough method. These materials were found to have higher Kr/N2 selectivity than current benchmark materials, which leads to a notable decrease in the nuclear waste volume. The materials were systematically studied for gamma and beta irradiation stability, and SIFSIX-3-Cu is found to be the most radiation resistant.
1
SIFSIX-3-M frameworks address the challenge of separating krypton from nitrogen while avoiding the typically stronger affinity of metal-organic frameworks for xenon.
2
SIFSIX-3-M ultra-microporous metal-organic frameworks were evaluated for 85Kr separation and storage using a two-bed breakthrough method.
3
Systematic gamma and beta irradiation studies identified SIFSIX-3-Cu as the most radiation-resistant material in the series.
4
The studied materials exhibited higher Kr/N2 selectivity than current benchmark adsorbents, enabling a notable reduction in nuclear waste volume.

ultra-microporous SIFSIX-3-M metal-organic frameworks (M = Zn, Cu, Ni, Co, or Fe) for capturing and storing 85Kr from spent nuclear fuel

85Kr/Kr–N2 separation performance, storage capability, and gamma- and beta-radiation stability of the SIFSIX-3-M frameworks, including identification of SIFSIX-3-Cu as the most radiation-resistant material

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2020-06-18
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Sameh K. Elsaidi
Mona H. Mohamed
Ahmed Helal
Mitchell Galanek
Tony Pham
Shanelle Suepaul
Brian Space
David Hopkinson
Praveen K. Thallapally
Ju Li
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