The potential of hydrogen hydrate as a future hydrogen storage medium

Summary: Hydrogen is recognized as the “future fuel” and the most promising alternative of fossil fuels due to its remarkable properties including exceptionally high energy content per unit mass (142 MJ/kg), low mass density, and massive environmental and economical upsides. A wide spectrum of metho...

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Main Authors: Ali Davoodabadi, Ashkan Mahmoudi, Hadi Ghasemi
Format: Article
Language:English
Published: Elsevier 2021-01-01
Series:iScience
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2589004220311044
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spelling doaj-e4febd7dc51e40b9a226c588dfc28d4a2021-01-24T04:28:40ZengElsevieriScience2589-00422021-01-01241101907The potential of hydrogen hydrate as a future hydrogen storage mediumAli Davoodabadi0Ashkan Mahmoudi1Hadi Ghasemi2Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, Houston, TX 77204, USADepartment of Mechanical Engineering, University of Houston, 4726 Calhoun Road, Houston, TX 77204, USADepartment of Mechanical Engineering, University of Houston, 4726 Calhoun Road, Houston, TX 77204, USA; Corresponding authorSummary: Hydrogen is recognized as the “future fuel” and the most promising alternative of fossil fuels due to its remarkable properties including exceptionally high energy content per unit mass (142 MJ/kg), low mass density, and massive environmental and economical upsides. A wide spectrum of methods in H2 production, especially carbon-free approaches, H2purification, and H2storage have been investigated to bring this energy source closer to the technological deployment. Hydrogen hydrates are among the most intriguing material paradigms for H2storage due to their appealing properties such as low energy consumption for charge and discharge, safety, cost-effectiveness, and favorable environmental features. Here, we comprehensively discuss the progress in understanding of hydrogen clathrate hydrates with an emphasis on charging/discharging rate of H2 (i.e. hydrate formation and dissociation rates) and the storage capacity. A thorough understanding on phase equilibrium of the hydrates and its variation through different materials is provided. The path toward ambient temperature and pressure hydrogen batteries with high storage capacity is elucidated. We suggest that the charging rate of H2 in this storage medium and long cyclic performance are more immediate challenges than storage capacity for technological translation of this storage medium. This review and provided outlook establish a groundwork for further innovation on hydrogen hydrate systems for promising future of hydrogen fuel.http://www.sciencedirect.com/science/article/pii/S2589004220311044EngineeringMechanical EngineeringMaterials ScienceEnergy Materials
collection DOAJ
language English
format Article
sources DOAJ
author Ali Davoodabadi
Ashkan Mahmoudi
Hadi Ghasemi
spellingShingle Ali Davoodabadi
Ashkan Mahmoudi
Hadi Ghasemi
The potential of hydrogen hydrate as a future hydrogen storage medium
iScience
Engineering
Mechanical Engineering
Materials Science
Energy Materials
author_facet Ali Davoodabadi
Ashkan Mahmoudi
Hadi Ghasemi
author_sort Ali Davoodabadi
title The potential of hydrogen hydrate as a future hydrogen storage medium
title_short The potential of hydrogen hydrate as a future hydrogen storage medium
title_full The potential of hydrogen hydrate as a future hydrogen storage medium
title_fullStr The potential of hydrogen hydrate as a future hydrogen storage medium
title_full_unstemmed The potential of hydrogen hydrate as a future hydrogen storage medium
title_sort potential of hydrogen hydrate as a future hydrogen storage medium
publisher Elsevier
series iScience
issn 2589-0042
publishDate 2021-01-01
description Summary: Hydrogen is recognized as the “future fuel” and the most promising alternative of fossil fuels due to its remarkable properties including exceptionally high energy content per unit mass (142 MJ/kg), low mass density, and massive environmental and economical upsides. A wide spectrum of methods in H2 production, especially carbon-free approaches, H2purification, and H2storage have been investigated to bring this energy source closer to the technological deployment. Hydrogen hydrates are among the most intriguing material paradigms for H2storage due to their appealing properties such as low energy consumption for charge and discharge, safety, cost-effectiveness, and favorable environmental features. Here, we comprehensively discuss the progress in understanding of hydrogen clathrate hydrates with an emphasis on charging/discharging rate of H2 (i.e. hydrate formation and dissociation rates) and the storage capacity. A thorough understanding on phase equilibrium of the hydrates and its variation through different materials is provided. The path toward ambient temperature and pressure hydrogen batteries with high storage capacity is elucidated. We suggest that the charging rate of H2 in this storage medium and long cyclic performance are more immediate challenges than storage capacity for technological translation of this storage medium. This review and provided outlook establish a groundwork for further innovation on hydrogen hydrate systems for promising future of hydrogen fuel.
topic Engineering
Mechanical Engineering
Materials Science
Energy Materials
url http://www.sciencedirect.com/science/article/pii/S2589004220311044
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