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1 Introduction
References
1. Eia US (2017) Monthly energy review
2. Hennicke P, Fischedick M (2006) Towards sustainable energy systems: The related role of
hydrogen. Energy Policy 34(11):1260–1270. https://doi.org/10.1016/j.enpol.2005.12.016
3. Ni M, Leung MKH, Sumathy K, Leung DYC (2006) Potential of renewable hydrogen production for energy supply in Hong Kong. Int J Hydrogen Energy 31(10):1401–1412. https://doi.
org/10.1016/j.ijhydene.2005.11.005
4. Dincer I, Acar C (2015) Review and evaluation of hydrogen production methods for better
sustainability. Int J Hydrogen Energy 40(34):11094–11111. https://doi.org/10.1016/j.ijhydene.
2014.12.035
5. Iulianelli A, Basile A (2020) Development of membrane reactor technology for H2 production
in reforming process for low-temperature fuel cells. In: Current trends and future developments
on (Bio-) Membranes. Elsevier, pp 287–305
6. Lv H, Ruberu TPA, Fleischauer VE, Brennessel WW, Neidig ML, Eisenberg R (2016) Catalytic
light-driven generation of hydrogen from water by iron dithiolene complexes. J Am Chem Soc
138(36):11654–11663
7. Guldal NO, Figen HE, Baykara SZ (2017) Production of hydrogen from hydrogen sulfide with
perovskite type catalysts: LaMO3. Chem Eng J 313:1354–1363
8. Hayakawa Y, Miura T, Shizuya K, Wakazono S, Tokunaga K, Kambara S (2019) Hydrogen
production system combined with a catalytic reactor and a plasma membrane reactor from
ammonia. Int J Hydrogen Energy 44(20):9987–9993
9. Jie X, Gonzalez-Cortes S, Xiao T, Yao B, Wang J, Slocombe DR, Fang Y, Miller N, Al-Megren
HA, Dilworth JR (2019) The decarbonisation of petroleum and other fossil hydrocarbon fuels
for the facile production and safe storage of hydrogen. Energy Environ Sci 12(1):238–249
10. Puga AV (2016) Photocatalytic production of hydrogen from biomass-derived feedstocks.
Coord Chem Rev 315:1–66
11. Schlapbach L, Züttel A (2011) Hydrogen-storage materials for mobile applications. In: Materials for sustainable energy: a collection of peer-reviewed research and review articles from
nature publishing group. World Scientific, pp 265–270
12. Marquis FDS (2011) The role of nanomaterials systems in energy and environment: renewable
energy. JOM 63(1):43
13. Grimes C, Varghese O, Ranjan S (2007) Light, water, hydrogen: the solar generation of
hydrogen by water photoelectrolysis. Springer Science and Business Media,
14. Wang X, Jiang X, Sharman E, Yang L, Li X, Zhang G, Zhao J, Luo Y, Jiang J (2019) Isolating
hydrogen from oxygen in photocatalytic water splitting with a carbon-quantum-dot/carbonnitride hybrid. J Mater Chem A 7(11):6143–6148
15. Gu L, Zhang C, Guo Y, Gao J, Yu Y, Zhang B (2019) Enhancing electrocatalytic water splitting
activities via photothermal effect over bifunctional nickel/reduced graphene oxide nanosheets.
ACS Sustain Chem Eng 7(4):3710–3714
16. Zhang Q, Webster RF, Cheong S, Tilley RD, Lu X, Amal R (2019) Ultrathin Fe-N-C Nanosheets
Coordinated Fe-Doped CoNi Alloy Nanoparticles for Electrochemical Water Splitting. Part Part
Syst Charact 36(1):1800252. https://doi.org/10.1002/ppsc.201800252
17. Muradov N (2002) Hydrogen from Fossil Fuels without Co2 Emissions. In: Grégoire Padró
CE, Lau F (eds) Advances in hydrogen energy. Springer US, Boston, MA, pp 1–16. doi:https://
doi.org/10.1007/0-306-46922-7_1
18. Bej B, Pradhan NC, Neogi S (2013) Production of hydrogen by steam reforming of methane
over alumina supported nano-NiO/SiO2 catalyst. Catal Today 207:28–35. https://doi.org/10.
1016/j.cattod.2012.04.011
19. Marin-Flores O, Turba T, Ellefson C, Scudiero L, Breit J, Norton MG, Ha S (2010) Nanoparticle
molybdenum dioxide: a new alternative catalytic material for hydrogen production via partial
oxidation of Jet-A fuels. J Nanoelectron Optoelectron 5(2):110–114. https://doi.org/10.1166/
jno.2010.1074
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