Literature review: state-of-the-art hydrogen storage technologies and Liquid Organic Hydrogen Carrier (LOHC) development

被引:10
作者
D'Ambra, Florian [1 ]
Gebel, Gerard [1 ,2 ]
机构
[1] Univ Grenoble Alpes, F-38000 Grenoble, France
[2] CEA, DTNM, LITEN, F-38054 Grenoble, France
基金
欧洲研究理事会;
关键词
Hydrogen; Hydrogen storage; Liquid Organic Hydrogen Carrier (LOHC); Hydrogenation; Dehydrogenation; Heterogeneous catalysis; DODECAHYDRO-N-ETHYLCARBAZOLE; BIOMASS-DERIVED 1,4-BUTANEDIOL; FREE ALCOHOL DEHYDROGENATION; SUPPORTED COPPER-CATALYSTS; REDUCED GRAPHENE OXIDE; DOPED CARBON NANOTUBES; ACID-BASE PAIRS; DECALIN DEHYDROGENATION; ETHYL-ACETATE; PRIMARY AMINES;
D O I
10.2516/stet/2023029
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Greenhouse gas anthropogenic emissions have triggered global warming with increasingly alarming consequences, motivating the development of carbon-free energy systems. Hydrogen is proposed as an environmentally benign energy vector to implement this strategy, but safe and efficient large-scale hydrogen storage technologies are still lacking to develop a competitive Hydrogen economy. LOHC (Liquid Organic Hydrogen Carrier) improves the storage and handling of hydrogen by covalently binding it to a liquid organic framework through catalytic exothermic hydrogenation and endothermic dehydrogenation reactions. LOHCs are oil-like materials that are compatible with the current oil and gas infrastructures. Nevertheless, their high dehydrogenation enthalpy, platinoid-based catalysts, and thermal stability are bottlenecks to the emergence of this technology. In this review, hydrogen storage technologies and in particular LOHC are presented. Moreover, potential reactivities to design innovative LOHC are discussed.
引用
收藏
页码:1 / 60
页数:60
相关论文
共 564 条
  • [1] Hydrogen release from liquid organic hydrogen carriers catalysed by platinum on rutile-anatase structured titania
    Aakko-Saksa, P. T.
    Vehkamaki, M.
    Kemell, M.
    Keskivali, L.
    Simell, P.
    Reinikainen, M.
    Tapper, U.
    Repo, T.
    [J]. CHEMICAL COMMUNICATIONS, 2020, 56 (11) : 1657 - 1660
  • [2] Liquid organic hydrogen carriers for transportation and storing of renewable energy - Review and discussion
    Aaldto-Saksa, Paivi T.
    Cook, Chris
    Kiviaho, Jari
    Repo, Timo
    [J]. JOURNAL OF POWER SOURCES, 2018, 396 : 803 - 823
  • [3] Large-scale liquid hydrogen production methods and approaches: A review
    Aasadnia, Majid
    Mehrpooya, Mehdi
    [J]. APPLIED ENERGY, 2018, 212 : 57 - 83
  • [4] 'Renewable' hydrogen: Prospects and challenges
    Abbasi, Tasneem
    Abbasi, S. A.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2011, 15 (06) : 3034 - 3040
  • [5] Abdelhamid H.N., 2020, Nano-Structures & NanoObjects, V24, DOI [DOI 10.1016/J.NANOSO.2020.100605, 10.1016/J.NANOSO.2020.100605]
  • [6] Air Liquide, 2023, Encyclopedie des gaz Air Liquide
  • [7] Air Liquide Energies, 2023, Comment stocker lhydrogene ?
  • [8] Review of energy storage technologies for sustainable power networks
    Akinyele, D. O.
    Rayudu, R. K.
    [J]. SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2014, 8 : 74 - 91
  • [9] Mechanistic studies of ammonia borane dehydrogenation
    Al-Kukhun, Ahmad
    Hwang, Hyun Tae
    Varma, Arvind
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (01) : 169 - 179
  • [10] Uncovering the true cost of hydrogen production routes using life cycle monetisation
    Al-Qahtani, Amjad
    Parkinson, Brett
    Hellgardt, Klaus
    Shah, Nilay
    Guillen-Gosalbez, Gonzalo
    [J]. APPLIED ENERGY, 2021, 281