Publications by authors named "Alba G Manjon"

Developing active and stable catalysts for carbon-free hydrogen production is crucial to mitigate the effects of climate change. Ammonia is a promising carbon-free hydrogen source, as it has a high hydrogen content and is liquid at low pressure, which allows its easy storage and transportation. We have recently developed a nickel-based catalyst with a small content of ruthenium supported on cerium oxide, which exhibits high activity and stability in ammonia decomposition.

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  • * Research focused on comparing the oxygen evolution reaction (OER) of NiB, NiP, and NiS in both purified (P-KOH) and unpurified (Un-KOH) potassium hydroxide solutions using various analytical techniques and found that Fe impurities play a significant role in enhancing OER activity.
  • * The study revealed that while there was no notable performance difference among the Ni-Xides in P-KOH, OER activity was notably higher in Un
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An ABX spinel structure, with tetrahedral A and octahedral B sites, is a paradigmatic class of catalysts with several possible geometric configurations and numerous applications, including polysulfide conversion in metal-sulfur batteries. Nonetheless, the influence of the geometric configuration and composition on the mechanisms of catalysis and the precise manner in which spinel catalysts facilitate the conversion of polysulfides remain unknown. To enable controlled exposure of single active configurations, herein, Co and Co in CoO catalysts for sodium polysulfide conversion are in large part replaced by Fe and Fe, respectively, generating FeCoO and CoFeO.

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  • * These nanoparticles preferentially oxidize carbon monoxide, thus reducing platinum poisoning and improving fuel cell stability.
  • * The study investigates potential impurities in the Ru nanoparticles from the synthesis process using advanced techniques like atom probe tomography (APT) and scanning transmission electron microscopy (S)TEM for detailed chemical analysis at the nanoscale.
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Complex solid solution electrocatalysts (often called high-entropy alloys) present a new catalyst class with highly promising features due to the interplay of multi-element active sites. One hurdle is the limited knowledge about structure-activity correlations needed for targeted catalyst design. We prepared Cr-Mn-Fe-Co-Ni nanoparticles by magnetron sputtering a high entropy Cantor alloy target simultaneously into an ionic liquid library.

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Copper indium gallium diselenide-based technology provides the most efficient solar energy conversion among all thin-film photovoltaic devices. This is possible due to engineered gallium depth gradients and alkali extrinsic doping. Sodium is well known to impede interdiffusion of indium and gallium in polycrystalline Cu(In,Ga)Se films, thus influencing the gallium depth distribution.

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