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Cited 29 time in webofscience Cited 34 time in scopus
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Elucidation of Diffusivity of Hydrogen Isotopes in Flexible MOFs by Quasi-Elastic Neutron Scattering

Authors
Jung, MinjiPark, JaewooMuhammad, RaeeshKim, Jin YeongGrzimek, VeronikaRussina, MargaritaMoon, Hoi RiPark, Jitae T.Oh, Hyunchul
Issue Date
May-2021
Publisher
WILEY-V C H VERLAG GMBH
Keywords
flexible porous materials; hydrogen diffusion; hydrogen isotope separation; MIL‐ 53; quantum sieving
Citation
ADVANCED MATERIALS, v.33, no.20
Indexed
SCIE
SCOPUS
Journal Title
ADVANCED MATERIALS
Volume
33
Number
20
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/72652
DOI
10.1002/adma.202007412
ISSN
0935-9648
1521-4095
Abstract
Kinetic-quantum-sieving-assisted H-2:D-2 separation in flexible porous materials is more effective than the currently used energy-intensive cryogenic distillation and girdle-sulfide processes for isotope separation. It is believed that material flexibility results in a pore-breathing phenomenon under the influence of external stimuli, which helps in adjusting the pore size and gives rise to the optimum quantum-sieving phenomenon at each stage of gas separation. However, only a few studies have investigated kinetic-quantum-sieving-assisted isotope separation using flexible porous materials. In addition, no reports are available on the microscopic observation of isotopic molecular transportation during the separation process under dynamic transition. Here, the experimental observation of a significantly faster diffusion of deuterium than hydrogen in a flexible pore structure, even at high temperatures, through quasi-elastic neutron scattering, is reported. Unlike rigid structures, the extracted diffusion dynamics of hydrogen isotopes within flexible frameworks show that the diffusion difference between the isotopes increases with an increase in temperature. Owing to this unique inverse trend, a new strategy is suggested for achieving higher operating temperatures for efficient isotope separation utilizing a flexible metal-organic framework system.
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