GREEN HYDROGEN SCALING UP ELECTROLYSERS

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GREEN HYDROGEN SCALING UP ELECTROLYSERS ( green-hydrogen-scaling-up-electrolysers )

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IRENA (2019a), Hydrogen: A renewable energy perspective, International Renewable Energy Agency, Abu Dhabi, www.irena.org/publications/2019/Sep/ Hydrogen-A-renewable-energy-perspective. IRENA (2019b), Demand-side flexibility for power sector transformation, International Renewable Energy Agency, Abu Dhabi, www.irena.org/publications/2019/Dec/ Demand-side-flexibility-for-power-sector- transformation. IRENA (2018), Hydrogen from renewable power: Technology outlook for the energy transition, International Renewable Energy Agency, Abu Dhabi, www.irena. org/publications/2018/Sep/Hydrogen-from- renewable-power. IRENA (2015), Renewable energy in the water, energy & food nexus, International Renewable Energy Agency, Abu Dhabi, www.irena.org/publications/2015/Jan/ Renewable-Energy-in-the-Water-Energy-- Food-Nexus. ITM Power (2017), Scaling PEM electrolysis to 100 MW, Hannover Messe, Germany, https://cam1.h2fc-fair.com/hm17/images/ forum/tf/2017-04-25-1100.pdf. Kang, Z. et al. (2020), “Effects of various parameters of different porous transport layers in proton exchange membrane water electrolysis”, Electrochimica Acta, Vol. 354, pp. 136641, https://dx.doi.org/10.1016/j. electacta.2020.136641. Kim, H.-S. et al. (2013), “High-efficiency isolated bidirectional AC–DC converter for a DC distribution system”, IEEE Transactions on Power Electronics, Vol. 28/4, pp. 16421654, https://dx.doi. org/10.1109/TPEL.2012.2213347. Liu, C. et al. (2018), “Performance enhancement of PEM electrolyzers through iridium-coated titanium porous transport layers”, Electrochemistry Communications, Vol. 97, pp. 9699, https://dx.doi.org/10.1016/j. elecom.2018.10.021. Mayyas, A. et al. (2019), Manufacturing cost analysis for proton exchange membrane water electrolyzers, Technical Report NREL/TP-6A20-72740, National Renewable Energy Laboratory, Golden, CO, United States. Mayyas, A. and M. Mann (2019), “Emerging manufacturing technologies for fuel cells and electrolyzers”, Procedia Manufacturing, Vol. 33, pp. 508515, https:// dx.doi.org/10.1016/j.promfg.2019.04.063. McDowall, W. (2012), Endogenous technology learning for hydrogen and fuel cell technology in UKSHEC II: Literature review, research questions and data, UKSHEC Working Paper 8, https://www. lifestudy.ac.uk/bartlett/energy/research/ themes/energy-systems/hydrogen/WP8_ McDowall_ETL_1_.pdf McKinsey (2010), A portfolio of power- trains for Europe: A fact-based analysis, McKinsey & Company, www.fch.europa.eu/ sites/default/files/Power_trains_for_Europe_0. pdf. McPhy (2020), Electrolyzers: The production of industrial hydrogen on- site, on demand, according to your specifications, McPhy Energy, https:// mcphy.com/en/equipment-services/ electrolyzers/?cn-reloaded=1. Mehmeti, A. et al. (2018), “Life cycle assessment and water footprint of hydrogen production methods: From conventional to emerging technologies”, Environments, Vol. 5, pp 19, http://dx.doi. org/10.3390/environments5020000. SCALING UP ELECTROLYSERS TO MEET THE 1.5°C CLIMATE GOAL 99

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