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Tuning Surface Reactivity and Electric Field Strength via Intermetallic Alloying. | LitMetric

AI Article Synopsis

  • Electrosynthesis reactions, like reducing CO to form multicarbon products, face challenges due to the creation of complex transition states during their rate-determining steps.
  • By controlling surface reactivity and the strength of electric fields, researchers can potentially lower the energy of these transition states, leading to the discovery of more effective electrocatalysts.
  • The study explores how varying alloy compositions in intermetallic alloys can enhance catalytic activity for CO reduction compared to traditional Cu-based catalysts, while also pointing out issues with these alloys degrading in air, which hinders research.

Article Abstract

Many electrosynthesis reactions, such as CO reduction to multicarbon products, involve the formation of dipolar and polarizable transition states during the rate-determining step. Systematic and independent control over surface reactivity and electric field strength would accelerate the discovery of highly active electrocatalysts for these reactions by providing a means of reducing the transition state energy through field stabilization. Herein, we demonstrate that intermetallic alloying enables independent and systematic control over d-band energetics and work function through the variation of alloy composition and oxophilic constituent identity, respectively. We identify several intermetallic phases exhibiting properties that should collectively yield higher intrinsic activity for CO reduction compared to conventional Cu-based electrocatalysts. However, we also highlight the propensity of these alloys to segregate in air as a significant roadblock to investigating their electrocatalytic activity.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10580307PMC
http://dx.doi.org/10.1021/acsenergylett.3c01639DOI Listing

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