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May 20, 2026Angewandte Chemie0 citationsOpen Access

Inversed Cation Size Effects on Methanol Formations From CO 2 Electroreduction by Immobilized Cobalt Phthalocyanine

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KYKe YeMHMin HuGZGuozhen Zhang

Key Points

  • Investigate how cation size affects the electrocatalytic reduction of CO2 to methanol using cobalt phthalocyanine.
  • Used multiscale simulation to analyze catalytic performance.
  • Focused on proton transfer reactions in methanol synthesis over immobilized cobalt phthalocyanine.
  • Assessed cation modulation effects on reaction kinetics.
  • Smaller cations enhance methanol synthesis by reducing the proton transfer barrier.
  • Sequential cation activity observed: Li+ > Na+ > K+ > Cs+ for proton transfer facilitation.
  • Smaller cations improve access to transition states, increasing reaction rates.

Abstract

ABSTRACT The electrocatalytic reduction of CO 2 to methanol offers a compelling pathway for sustainable fuel synthesis, wherein cations in the electric double layer (EDL) exert a substantial influence on catalytic performance. Although cation modulation of CO 2 ‐to‐CO conversion has been extensively documented, its influence on downstream reduction pathways toward CH 3 OH has received comparatively little attention. Using multiscale simulation, we establish that methanol synthesis over immobilized cobalt phthalocyanine (CoPc) is kinetically governed by the final proton transfer (*CH 2 OH + H 2 O → * + CH 3 OH + OH − ). The EDL environment substantially accelerates this rate‐determining step (RDS). Moreover, the activity exhibits a clear dependence on cation radius, following the trend Li + > Na + > K + > Cs + , with smaller cations systematically lowering the proton transfer barrier. This trend stems from the enhanced accessibility of smaller cations to the transition state, where Li + achieves tighter coordination than Cs + , conferring greater electrostatic stabilization and a correspondingly reduced barrier. Conversely, smaller cations attenuate the hydrogen‐bond network surrounding OH − , potentially impeding OH − transfer from the catalyst surface to the bulk electrolyte. These multifaceted cation effects underscore the complex interplay between kinetic promotion and mass transfer limitations in electrocatalytic systems.

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Cite This Study

Ye et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5025f03e14405aa9bc96https://doi.org/10.1002/ange.1450878
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