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Hydrogen in Porous Tetrahydrofuran Clathrate Hydrate
Authors:Fokko M Mulder Dr  Marnix Wagemaker Dr  Lambert van Eijck Dr  Gordon J Kearley Prof Dr
Institution:1. Section Fundamental Aspects of Materials and Energy, Department of Radiation, Radionuclides and Reactors, Faculty of Applied Sciences, Delft University of Technology, Mekelweg 15, 2629 JB Delft, The Netherlands, Fax: (+31)?15?2788303;2. Current address: Institute Laue‐Langevin, 38042 Grenoble, Cedex, France;3. Bragg Institute, Building 87, Austalian Nuclear Science and Technology Organisation, PMB 1 Menai, NSW2234, Australia
Abstract:The lack of practical methods for hydrogen storage is still a major bottleneck in the realization of an energy economy based on hydrogen as energy carrier. 1 Storage within solid‐state clathrate hydrates, 2 4 and in the clathrate hydrate of tetrahydrofuran (THF), has been recently reported. 5 , 6 In the latter case, stabilization by THF is claimed to reduce the operation pressure by several orders of magnitude close to room temperature. Here, we apply in situ neutron diffraction to show that—in contrast to previous reports5, 6]—hydrogen (deuterium) occupies the small cages of the clathrate hydrate only to 30 % (at 274 K and 90.5 bar). Such a D2 load is equivalent to 0.27 wt. % of stored H2. In addition, we show that a surplus of D2O results in the formation of additional D2O ice Ih instead of in the production of sub‐stoichiometric clathrate that is stabilized by loaded hydrogen (as was reported in ref. 6 ). Structure‐refinement studies show that D8]THF is dynamically disordered, while it fills each of the large cages of D8]THF?17D2O stoichiometrically. Our results show that the clathrate hydrate takes up hydrogen rapidly at pressures between 60 and 90 bar (at about 270 K). At temperatures above ≈220 K, the H‐storage characteristics of the clathrate hydrate have similarities with those of surface‐adsorption materials, such as nanoporous zeolites and metal–organic frameworks, 7 , 8 but at lower temperatures, the adsorption rates slow down because of reduced D2 diffusion between the small cages.
Keywords:clathrates  density functional calculations  hydrogen storage  neutron diffraction  NMR spectroscopy
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