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Modulation of the selectivity of CO2 to CO electroreduction in palladium rich Palladium-Indium nanoparticles

  • Davide Pavesi
  • , Federico Dattila
  • , Rim C.J. van de Poll
  • , Dimitra Anastasiadou
  • , Rodrigo García-Muelas
  • , Marta Figueiredo
  • , Gert Jan M. Gruter
  • , Núria López (Corresponding author)
  • , Marc T.M. Koper
  • , Klaas Jan P. Schouten (Corresponding author)

    Research output: Contribution to journalArticleAcademicpeer-review

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    Abstract

    CO2 electroreduction powered by renewable energy is an attractive strategy to close the carbon cycle. Among the possible reduction products, CO is of particular interest due to its large industrial applications. Transition metals in the Pt group are able to electrochemically reduce CO2 to CO, but suffer from CO surface poisoning, which causes a quick deactivation and overall sluggish kinetics. Here, we show that by introducing In to Pd-rich bimetallic particles we can tune the selectivity and limit the surface poisoning of these catalysts. The addition of large amounts of In blocks CO2 reduction activity and leads to a material selective for hydrogen evolution and insensitive to CO poisoning. This study provides insights into the dependence of CO2 reduction selectivity on the composition of Pd-In nanoparticles, revealing the effect that different phases have on catalytic activity. The application of similar screenings to other bimetallic systems can potentially yield cheap, selective, and poison-resistant catalysts for electrochemical applications.

    Original languageEnglish
    Pages (from-to)229-237
    Number of pages9
    JournalJournal of Catalysis
    Volume402
    DOIs
    Publication statusPublished - Oct 2021

    Bibliographical note

    Funding Information:
    This research has been supported by the European Commission (Research Executive Agency) grant ELCOREL (722614-ELCOREL) under the Marie Skłodowska-Curie Innovative Trainings Network ELCoREL. F.D., R.G-M. and N.L. further acknowledge funding from the Spanish Ministry of Science and Innovation ( RTI2018-101394-B-I00 ) and the Barcelona Supercomputing Center (BSC-RES) for providing generous computational resources.

    Funding

    This research has been supported by the European Commission (Research Executive Agency) grant ELCOREL (722614-ELCOREL) under the Marie Skłodowska-Curie Innovative Trainings Network ELCoREL. F.D., R.G-M. and N.L. further acknowledge funding from the Spanish Ministry of Science and Innovation ( RTI2018-101394-B-I00 ) and the Barcelona Supercomputing Center (BSC-RES) for providing generous computational resources.

    FundersFunder number
    European Union's Horizon 2020 - Research and Innovation Framework Programme722614
    European Commission
    Ministerio de Ciencia e InnovaciónRTI2018-101394-B-I00
    Barcelona Supercomputing Center

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy

    Keywords

    • Bimetallic particles
    • Catalysis
    • CO reduction
    • Electrocatalysis
    • Intermetallic compounds
    • Nanoparticles

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