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Grüner Wasserstoff: Wie steht es um die Wirtschaftlichkeit und welche Nachfrage lässt sich erwarten?

Author

Listed:
  • Lauritz Bühler
  • Dominik Möst
  • Hendrik Scharf

Abstract

Die Bedeutung von Wasserstoff auf dem Weg hin zur Klimaneutralität wird deutlich ansteigen und es ist von einer enormen Erhöhung des Bedarfs auszugehen. Wasserstoff wird gegenwärtig überwiegend aus fossilen Brennstoffen hergestellt. Deshalb werden Technologien zur kohlenstoffarmen Herstellung wichtiger: Dazu zählt neben dem blauen Wasserstoff vor allem der sogenannte grüne Wasserstoff unter Nutzung erneuerbarer Energien. Perspektivisch soll grüner Wasserstoff den auf Basis von fossilen Quellen hergestellten Wasserstoff ersetzen, dies bedingt allerdings dessen Wettbewerbsfähigkeit bei der Herstellung. Die Herstellungskosten hängen maßgeblich von den Stromkosten bzw. -preisen, der Investition in den Elektrolyseur, dem Elektrolyseurwirkungsgrad sowie den Betriebsstunden des Elektrolyseurs ab. Im Folgenden soll deshalb ein kurzer Überblick über den Stand der Elektrolyseure und die Herstellungskosten von grünem Wasserstoff gegeben werden. Zudem wird auch skizziert, welche Wasserstoffbedarfe in Deutschland erwartet werden.

Suggested Citation

  • Lauritz Bühler & Dominik Möst & Hendrik Scharf, 2023. "Grüner Wasserstoff: Wie steht es um die Wirtschaftlichkeit und welche Nachfrage lässt sich erwarten?," ifo Dresden berichtet, ifo Institute - Leibniz Institute for Economic Research at the University of Munich, vol. 30(04), pages 16-22, August.
  • Handle: RePEc:ces:ifodre:v:30:y:2023:i:04:p:16-22
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    References listed on IDEAS

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    1. Vincent, Immanuel & Bessarabov, Dmitri, 2018. "Low cost hydrogen production by anion exchange membrane electrolysis: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 1690-1704.
    2. Falko Ueckerdt & Christian Bauer & Alois Dirnaichner & Jordan Everall & Romain Sacchi & Gunnar Luderer, 2021. "Potential and risks of hydrogen-based e-fuels in climate change mitigation," Nature Climate Change, Nature, vol. 11(5), pages 384-393, May.
    3. Schill, Wolf-Peter, 2014. "Residual Load, Renewable Surplus Generation and Storage Requirements in Germany," EconStor Open Access Articles and Book Chapters, ZBW - Leibniz Information Centre for Economics, vol. 73, pages 65-79.
    4. Gils, Hans Christian & Scholz, Yvonne & Pregger, Thomas & Luca de Tena, Diego & Heide, Dominik, 2017. "Integrated modelling of variable renewable energy-based power supply in Europe," Energy, Elsevier, vol. 123(C), pages 173-188.
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