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Triphasic Oxygen Storage in Wet Nanoparticulate Polymer of Intrinsic Microporosity (PIM-1) on Platinum: An Electrochemical Investigation

  • Maisa Beluomini
  • , Nelson Ramos Stradiotto
  • , Maria Valnice Boldrin Zanoni
  • , Mariolino Carta
  • , Neil Mckeown
  • , Philip Fletcher
  • , Sunanda Sain
  • , Victor Li
  • , Frank Marken
  • São Paulo State University
  • UNESP
  • Swansea University
  • University of Edinburgh

Research output: Contribution to journalArticlepeer-review

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Abstract

The triphasic interaction of gases with electrode surfaces immersed in aqueous electrolyte is crucial in electrochemical technologies (fuel cells, batteries, sensors). Some microporous materials modify this interaction locally via triphasic storage capacity for gases in aqueous environments linked to changes in apparent oxygen concentration and diffusivity (as well as activity and reactivity). Here, a nanoparticulate polymer of intrinsic microporosity (PIM-1) in aqueous electrolyte is shown to store oxygen gas and thereby enhance electrochemical signals for oxygen reduction in aqueous media. Oxygen reduction current transient data at platinum disk electrodes suggest that the reactivity of ambient oxygen in aqueous electrolyte (typically D oxygen = 2.8 × 10 -9 m 2 s -1; c oxygen = 0.3 mM) is substantially modified (to approximately D app,oxygen = 1.6 (±0.3) × 10 -12 m 2 s -1; c app,oxygen = 50 (±5) mM) with important implications for triphasic electrode processes. The considerable apparent concentration of oxygen even for ambient oxygen levels is important. Potential applications in oxygen sensing, oxygen storage, oxygen catalysis, or applications associated with other types of gases are discussed.

Original languageEnglish
Pages (from-to)37865-37873
Number of pages9
JournalACS Applied Materials and Interfaces
Volume16
Issue number29
Early online date12 Jul 2024
DOIs
Publication statusPublished - 24 Jul 2024

Funding

M.A.B. is particularly grateful for the Sa\u0303o Paulo Research Foundation (FAPESP) for a postdoctorate scholarship (grants 2020/01822-8 and 2014/50945-4). F.M. thanks EPSRC for support (EP/K004956/1).

FundersFunder number
São Paulo Research Foundation
FAPESP2020/01822-8, 2014/50945-4
EPSRC - EUEP/K004956/1

    Keywords

    • diffusion layer
    • electrocatalysis
    • energy storage
    • oxygen evolution
    • triphasic gas storage

    ASJC Scopus subject areas

    • General Materials Science

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