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Application of hydrides in hydrogen storage and compression: Achievements, outlook and perspectives

International Journal of Hydrogen Energy · 2019 · Vol. 44(15) · pp. 7780–7808
José M. Bellosta von ColbeJ.R. AresJussara BaraleMarcello BariccoCraig E. BuckleyGiovanni CapursoNoris GallandatDavid M. GrantMatylda N. GuzikI. JacobEmil H. JensenTorben R. JensenJulian JepsenThomas KlassenMykhaylo LototskyyKandavel ManickamAmelia MontoneJulián PuszkielSabrina SartoriDrew A. SheppardAlastair StuartGavin S. WalkerC. J. WebbHeena YangV.A. YartysAndreas ZüttelMartin Dornheim

Abstract

Metal hydrides are known as a potential efficient, low-risk option for high-density hydrogen storage since the late 1970s. In this paper, the present status and the future perspectives of the use of metal hydrides for hydrogen storage are discussed. Since the early 1990s, interstitial metal hydrides are known as base materials for Ni – metal hydride rechargeable batteries. For hydrogen storage, metal hydride systems have been developed in the 2010s [1] for use in emergency or backup power units, i. e. for stationary applications. With the development and completion of the first submarines of the U212 A series by HDW (now Thyssen Krupp Marine Systems) in 2003 and its export class U214 in 2004, the use of metal hydrides for hydrogen storage in mobile applications has been established, with new application fields coming into focus. In the last decades, a huge number of new intermetallic and partially covalent hydrogen absorbing compounds has been identified and partly more, partly less extensively characterized. In addition, based on the thermodynamic properties of metal hydrides, this class of materials gives the opportunity to develop a new hydrogen compression technology. They allow the direct conversion from thermal energy into the compression of hydrogen gas without the need of any moving parts. Such compressors have been developed and are nowadays commercially available for pressures up to 200 bar. Metal hydride based compressors for higher pressures are under development. Moreover, storage systems consisting of the combination of metal hydrides and high-pressure vessels have been proposed as a realistic solution for on-board hydrogen storage on fuel cell vehicles. In the frame of the “Hydrogen Storage Systems for Mobile and Stationary Applications” Group in the International Energy Agency (IEA) Hydrogen Task 32 “Hydrogen-based energy storage”, different compounds have been and will be scaled-up in the near future and tested in the range of 500 g to several hundred kg for use in hydrogen storage applications.

Hydrogen Storage and MaterialsFusion materials and technologiesSpacecraft and Cryogenic TechnologiesHydrogen storageHydrogenCompression (physics)ThermodynamicsMaterials scienceChemistryPhysics

Funding

  • Alexander von Humboldt-Stiftung
  • Innovationsfonden
  • European Commission
  • National Research Foundation
  • Department of Science and Technology, Ministry of Science and Technology, India
  • Norges Forskningsråd
  • Fuel Cells and Hydrogen Joint Undertaking
  • Innosuisse - Schweizerische Agentur für Innovationsförderung
  • Engineering and Physical Sciences Research Council
  • Australian Research Council
Citations
794
FWCI
33.36
field-weighted impact
References
165
Percentile
100%
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Citations per year
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References
Metal-doped sodium aluminium hydrides as potential new hydrogen storage materials
Journal of Alloys and Compounds · 2000 · 704 citations
Formation and properties of iron titanium hydride
Inorganic Chemistry · 1974 · 875 citations
Hydrogen storage: Recent improvements and industrial perspectives
International Journal of Hydrogen Energy · 2016 · 1,091 citations
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