AI Article Synopsis

  • The study focused on replacing NaCO in sodium manganese ferrite with various eutectic or eutectoid alkali carbonate mixtures, which enhanced hydrogen production speed, especially with the (LiNa)CO mixture.
  • The fast hydrogen production was linked to the partial melting of the eutectoid carbonate, which facilitates ion diffusion, but this came at the cost of overall reversibility in hydrogen production upon cycling.
  • While the nonsubstituted Na mixture displayed the best reversibility, the 50%Li-Na and Li-K-Na mixtures completely failed to produce hydrogen after the first cycle, primarily due to unwanted phase formation and increased sintering in the carbonate mixtures.

Article Abstract

In this work, the NaCO of the sodium manganese ferrite thermochemical cycle was substituted by different eutectic or eutectoid alkali carbonate mixtures. Substituting NaCO with the eutectoid (LiNa)CO mixture resulted in faster hydrogen production after the first cycle, shifting the hydrogen production maximum toward shorter reaction times. Thermodynamic calculations and optical microscopy attributed this fact to the partial melting of the eutectoid carbonate, which helps the diffusion of the ions. Unfortunately, all the mixtures exhibit a significant loss of reversibility in terms of hydrogen production upon cycling. Among them, the nonsubstituted Na mixture exhibits the highest reversibility in terms of hydrogen production followed by the 7%Li-Na mixture, while the 50%Li-Na and Li-K-Na mixtures do not produce any hydrogen after the first cycle. The loss of reversibility is attributed to both the formation of undesired phases and sintering, the latter being more pronounced in the eutectic and eutectoid alkali carbonate mixtures, where the melting of the carbonate is predicted by thermodynamics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11231967PMC
http://dx.doi.org/10.1021/acsami.4c00549DOI Listing

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