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Small-pore hydridic frameworks store densely packed hydrogen

  • Hyunchul Oh
  • , Nikolay Tumanov
  • , Voraksmy Ban
  • , Xiao Li
  • , Bo Richter
  • , Matthew R. Hudson
  • , Craig M. Brown
  • , Gail N. Iles
  • , Dirk Wallacher
  • , Scott W. Jorgensen
  • , Luke Daemen
  • , Rafael Balderas-Xicohténcatl
  • , Yongqiang Cheng
  • , Anibal J. Ramirez-Cuesta
  • , Michael Heere
  • , Sergio Posada-Pérez
  • , Geoffroy Hautier
  • , Michael Hirscher
  • , Torben R. Jensen
  • , Yaroslav Filinchuk
  • Ulsan National Institute of Science and Technology
  • Université catholique de Louvain
  • Aarhus University
  • National Institute of Standards and Technology
  • Helmholtz Centre Berlin for Materials and Energy
  • Royal Melbourne Institute of Technology University
  • General Motors
  • Hyrax intercontinental
  • Oak Ridge National Laboratory
  • Technical University of Munich
  • Technical University of Braunschweig
  • Dartmouth College
  • Max Planck Institute for Intelligent Systems
  • Tohoku University

Producción científica: Contribución a una revistaArtículo científicorevisión exhaustiva

36 Citas (Scopus)

Resumen

Nanoporous materials have attracted great attention for gas storage, but achieving high volumetric storage capacity remains a challenge. Here, by using neutron powder diffraction, volumetric gas adsorption, inelastic neutron scattering and first-principles calculations, we investigate a magnesium borohydride framework that has small pores and a partially negatively charged non-flat interior for hydrogen and nitrogen uptake. Hydrogen and nitrogen occupy distinctly different adsorption sites in the pores, with very different limiting capacities of 2.33 H2 and 0.66 N2 per Mg(BH4)2. Molecular hydrogen is packed extremely densely, with about twice the density of liquid hydrogen (144 g H2 per litre of pore volume). We found a penta-dihydrogen cluster where H2 molecules in one position have rotational freedom, whereas H2 molecules in another position have a well-defined orientation and a directional interaction with the framework. This study reveals that densely packed hydrogen can be stabilized in small-pore materials at ambient pressures. (Figure presented.)

Idioma originalInglés
Páginas (desde-hasta)809-816
Número de páginas8
PublicaciónNature Chemistry
Volumen16
N.º5
DOI
EstadoPublicada - may 2024

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