cover image: A squarate-pillared titanium oxide quantum sieve towards practical hydrogen isotope separation

20.500.12592/5ps4uho

A squarate-pillared titanium oxide quantum sieve towards practical hydrogen isotope separation

1 Dec 2023

Abstract Separating deuterium from hydrogen isotope mixtures is of vital importance to develop nuclear energy industry, as well as other isotope-related advanced technologies. As one of the most promising alternatives to conventional techniques for deuterium purification, kinetic quantum sieving using porous materials has shown a great potential to address this challenging objective. From the knowledge gained in this field; it becomes clear that a quantum sieve encompassing a wide range of practical features in addition to its separation performance is highly demanded to approach the industrial level. Here, the rational design of an ultra-microporous squarate pillared titanium oxide hybrid framework has been achieved, of which we report the comprehensive assessment towards practical deuterium separation. The material not only displays a good performance combining high selectivity and volumetric uptake, reversible adsorption-desorption cycles, and facile regeneration in adsorptive sieving of deuterium, but also features a cost-effective green scalable synthesis using chemical feedstock, and a good stability (thermal, chemical, mechanical and radiolytic) under various working conditions. Our findings provide an overall assessment of the material for hydrogen isotope purification and the results represent a step forward towards next generation practical materials for quantum sieving of important gas isotopes.

Authors

Qingqing Yan, Jing Wang, Linda Zhang, Jiaqi Liu, Mohammad Wahiduzzaman, Nana Yan, Liang Yu, Romain Dupuis, Hao Wang, Guillaume Maurin, Michael Hirscher, Peng Guo, Sujing Wang, Jiangfeng Du

Bibliographic Reference
Qingqing Yan, Jing Wang, Linda Zhang, Jiaqi Liu, Mohammad Wahiduzzaman, et al.. A squarate-pillared titanium oxide quantum sieve towards practical hydrogen isotope separation. Nature Communications, 2023, 14 (1), pp.4189. ⟨10.1038/s41467-023-39871-x⟩. ⟨hal-04182483⟩
DOI
https://doi.org/10.1038/s41467-023-39871-x
HAL Collection
["Université d'Artois", 'Ecole Normale Supérieure de Paris', 'ESPCI ParisTech', 'ParisTech', 'CNRS - Centre national de la recherche scientifique', 'Ecole Nationale Supérieure de Chimie de Montpellier', 'Institut Charles Gerhardt - Institut de Chimie Moléculaire et des Matériaux de Montpellier', 'Laboratoire de Mécanique et Génie Civil', 'Université de Montpellier', 'Institut de Chimie du CNRS', 'Université Paris sciences et lettres', 'Lille Économie Management', 'Chimie', 'Université de Lille', 'École normale supérieure - PSL', 'Ecole Supérieure de Physique et de Chimie Industrielles de la Ville de Paris - PSL', 'Université de Montpellier (2015-2021)', 'Université de Montpellier - EPE', 'Université catholique de Lille', 'collection test', 'collection test 5']
HAL Identifier
4286453
Institution
['East China University of Science and Technology', "Université d'Artois", 'Wuhan University of Technology', 'Institut de Chimie - CNRS Chimie', 'Ecole Nationale Supérieure de Chimie de Montpellier', 'Yale University [New Haven]', 'Max-Planck-Gesellschaft', 'Jilin University', 'École normale supérieure - Paris', 'Ecole Superieure de Physique et de Chimie Industrielles de la Ville de Paris']
Laboratory
['Lille économie management - UMR 9221', 'Institut Charles Gerhardt Montpellier - Institut de Chimie Moléculaire et des Matériaux de Montpellier', 'Department of Earth and Planetary Sciences [New Haven]', 'Laboratoire de Mécanique et Génie Civil', 'Leiden Institute of Advanced Computer Science [Leiden]', 'Max Planck Institute for Intelligent Systems [Tübingen]', 'Institut des Matériaux Poreux de Paris']
Published in
France

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