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Metal-organic framework with optimally selective xenon adsorption and separation

  • Debasis Banerjee
  • , Cory M. Simon
  • , Anna M. Plonka
  • , Radha K. Motkuri
  • , Jian Liu
  • , Xianyin Chen
  • , Berend Smit
  • , John B. Parise
  • , Maciej Haranczyk
  • , Praveen K. Thallapally
  • Pacific Northwest National Laboratory
  • University of California at Berkeley
  • Stony Brook University
  • Swiss Federal Institute of Technology Lausanne
  • Lawrence Berkeley National Laboratory
  • Instituto IMDEA Materiales

Research output: Contribution to journalArticlepeer-review

421 Scopus citations

Abstract

Nuclear energy is among the most viable alternatives to our current fossil fuel-based energy economy. The mass deployment of nuclear energy as a low-emissions source requires the reprocessing of used nuclear fuel to recover fissile materials and mitigate radioactive waste. A major concern with reprocessing used nuclear fuel is the release of volatile radionuclides such as xenon and krypton that evolve into reprocessing facility off-gas in parts per million concentrations. The existing technology to remove these radioactive noble gases is a costly cryogenic distillation; alternatively, porous materials such as metal-organic frameworks have demonstrated the ability to selectively adsorb xenon and krypton at ambient conditions. Here we carry out a high-throughput computational screening of large databases of metal-organic frameworks and identify SBMOF-1 as the most selective for xenon. We affirm this prediction and report that SBMOF-1 exhibits by far the highest reported xenon adsorption capacity and a remarkable Xe/Kr selectivity under conditions pertinent to nuclear fuel reprocessing.

Original languageEnglish
Article numberncomms11831
JournalNature Communications
Volume7
DOIs
StatePublished - Jun 13 2016

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