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The Future of Hydrogen 2019

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The Future of Hydrogen Chapter 2: Producing hydrogen and hydrogen-based products Fulcheri, L. (2018), “Direct decarbonization of methane by thermal plasma for the co-production of hydrogen and carbon nanostructures”, 15th International High-Tech Plasma Processes Conference, Toulouse, 2–6 July 2018. H21 (2018), H21 North of England, H21 NoE Report/2018, https://northerngasnetworks.co.uk/h21- noe/H21-NoE-23Nov18-v1.0.pdf. Hannula, I. (2016), “Hydrogen enhancement potential of synthetic biofuels manufacture in the European context: A techno-economic assessment”, Energy, Vol. 104, pp. 199–212. IEA (International Energy Agency) (2018), World Energy Investment, IEA, Paris, www.iea.org/wei2018/. IEA (2017), Renewable Energy for Industry, from Green Energy to Green Materials and Fuels, IEA, Paris. IEA (2016), World Energy Outlook 2016, IEA, Paris. IEAGHG (IEA Greenhouse Gas R&D Programme) (2017a), “Reference data and supporting literature reviews for SMR based hydrogen production with CCS”, 2017-TR03, March 2017, https://ieaghg.org/exco_docs/2017-TR3.pdf. IEAGHG (2017b), “Techno-economic evaluation of SMR based standalone (merchant) hydrogen plant with CCS”, 2017/02, February 2017. Irlam, L. (2017), “Global costs of carbon capture and storage: 2017 update”, Global CCS Institute, June 2017, https://hub.globalccsinstitute.com/sites/default/files/publications/201688/global-ccs-cost- updatev4.pdf. JEPX (Japan Electric Power Exchange) (2019), Intraday Market Trading Results 2018, www.jepx.org/english/market/index.html. Keith, D. et al. (2018), “A process for capturing CO2 from the atmosphere”, Joule, Vol. 2, pp. 1573–94. Mignard, D. and C. Pritchard (2008), “On the use of electrolytic hydrogen from variable renewable energies for the enhanced conversion of biomass to fuels”, Chemical Engineering Research and Design, Vol. 86, Issue 5, pp.473–87. Muradov, N. (2017), “Low to near-zero CO2 production of hydrogen from fossil fuels: Status and perspectives”, International Journal of Hydrogen Energy, Vol. 42, Issue 20, pp. 14058–88. NOW (Nationale Organisation Wasserstoff- und Brennstoffzellentechnologie) (2018), Studie IndWEDe Industrialisierung der Wasserelektrolyse in Deutschland: Chancen und Herausforderungen für nachhaltigen Wasserstoff für Verkehr, Strom und Wärme[Industrialization of water electrolysis in Germany: Opportunities and challenges for sustainable hydrogen for transport, electricity and heat], www.now-gmbh.de/content/service/3-publikationen/1-nip-wasserstoff-und- brennstoffzellentechnologie/indwede-studie_v04.1.pdf. Proost, J. (2018), “State-of-the art CAPEX data for water electrolysers, and their impact on renewable hydrogen price settings”, International Journal of Hydrogen Energy, Vol. 44, Issue 9, pp. 4406– 13.renewables.ninja (2019), www.renewables.ninja. Rife, D. L. et al. (2014), NCAR Global Climate Four-Dimensional Data Assimilation (CFDDA) Hourly 40 km Reanalysis, Research Data Archive at the National Center for Atmospheric Research, Computational and Information Systems Laboratory, http://dx.doJ.org/10.5065/D6M32STK. Ruth, M.F., P. Jadun and B. Pivovar (2017), “H2@Scale: Technical and economic potential of hydrogen as an energy intermediate”, presentation at the Fuel Cell Seminar and Energy Exposition, Long Beach, CA, 9 November, http://dx.doi.org/10.5065/D6M32STK. Schmidt, O. et al. (2017), “Future cost and performance of water electrolysis: An expert elicitation study”, International Journal of Hydrogen Energy, Vol. 42, pp. 30470–92. PAGE | 65 IEA. All rights reserved.

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