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April 23, 2026Nature Communications0 citationsOpen Access

Thermally coupled solid hydrogen storage and carbon capture for balancing intermittent renewable energy

AHAlexander R.P. HarrisonGFGeorge J. FulhamHHHaoliang Hong

Key Points

  • This research aims to present a system that combines solid-state hydrogen storage with carbon capture to enhance energy supply stability from renewable sources.
  • Developed a thermally coupled system integrating solid hydrogen storage and magnesium looping for carbon capture.
  • Utilized waste heat from hydrogen storage to enhance the efficiency of carbon capture.
  • Modeled power supply and energy storage using data from onshore and offshore wind farms over five years.
  • Achieved round-trip efficiency of ~19% with thermal integration, compared to 4% without it.
  • Demonstrated that this system can offset CO2 emissions from gas turbine backup during low wind periods.
  • Showed that the combined system is capable of meeting daily energy demand and addressing seasonal wind variability.

Abstract

Abstract Wind turbines provide renewable power with near-zero CO 2 emissions, but struggle to achieve steady electricity supply, owing to inherent wind speed variability. Hence, clean energy carriers, such as ‘green’ hydrogen from electrolysis, are required to balance daily power output, and minimise reliance on dispatchable fossil fuels during periods of insufficient wind. Here, we present a system for integrating solid-state hydrogen storage with carbon capture via magnesium looping, using waste heat from the hydrogen storage reaction to drive the process. Incorporating magnesium looping as thermo-chemical energy storage overcomes a major limitation of solid-state hydrogen storage (poor thermal efficiency), and offsets CO 2 emissions from the use of back-up gas turbine capacity. Thermal integration of the MgH 2 storage improved round-trip efficiency (conversion from electricity to stored H 2 , and back to electricity) to ~ 19%, comparable to liquid or gas storage, whereas MgH 2 alone without heat recovery is limited to ~ 4%. We model power supply and energy storage over five years for onshore and offshore windfarms using real-world data, finding combined hydrogen storage with magnesium looping is the only system able to meet daily electricity demand and compensate for seasonal wind capacity factor variation, while offsetting CO 2 operating emissions from flexible gas deployment.

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Cite This Study

Harrison et al. (2026) studied this question.

synapsesocial.com/papers/69e9b89b85696592c86ebb16https://doi.org/10.1038/s41467-026-72035-1
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