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Materials for hydrogen-based energy storage – past, recent progress and future outlook

Journal of Alloys and Compounds · 2019 · Vol. 827 · pp. 153548–153548
Michael HirscherV.A. YartysMarcello BariccoJosé M. Bellosta von ColbeDidier BlanchardR. C. BowmanDarren P. BroomCraig E. BuckleyFei ChangPing ChenYoung Whan ChoJean‐Claude CrivelloFermín CuevasWilliam I. F. DavidPetra E. de JonghR.V. DenysMartin DornheimMichael FelderhoffYaroslav FilinchukGeorge E. FroudakisDavid M. GrantEvan GrayBjørn C. HaubackTeng HeTerry D. HumphriesTorben R. JensenSangryun KimYoshitsugu KojimaM. LatrocheHaiwen LiMykhaylo LototskyyJoshua W. MakepeaceKasper T. MøllerLubna NaheedPeter NgeneDag NoréusMagnus Moe NygårdShin‐ichi OrimoMark PaskeviciusLuca PasquiniDorthe Bomholdt RavnsbækM. Veronica SofianosTerrence J. UdovicTejs VeggeGavin S. WalkerC. J. WebbClaudia WeidenthalerClaudia Zlotea

Abstract

Globally, the accelerating use of renewable energy sources, enabled by increased efficiencies and reduced costs, and driven by the need to mitigate the effects of climate change, has significantly increased research in the areas of renewable energy production, storage, distribution and end-use. Central to this discussion is the use of hydrogen, as a clean, efficient energy vector for energy storage. This review, by experts of Task 32, “Hydrogen-based Energy Storage” of the International Energy Agency, Hydrogen TCP, reports on the development over the last 6 years of hydrogen storage materials, methods and techniques, including electrochemical and thermal storage systems. An overview is given on the background to the various methods, the current state of development and the future prospects. The following areas are covered; porous materials, liquid hydrogen carriers, complex hydrides, intermetallic hydrides, electrochemical storage of energy, thermal energy storage, hydrogen energy systems and an outlook is presented for future prospects and research on hydrogen-based energy storage.

Hydrogen Storage and MaterialsHybrid Renewable Energy SystemsAdvanced Battery Materials and TechnologiesHydrogen storageEngineering physicsEnergy storageMaterials scienceNanotechnologyMetallurgyEngineeringPhysicsThermodynamicsAlloy

Funding

  • National Science Foundation
  • Norges Forskningsråd
  • Horizon 2020 Framework Programme
  • Engineering and Physical Sciences Research Council
Citations
885
FWCI
33.45
field-weighted impact
References
927
Percentile
100%
vs. same field & year
Citations per year
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