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In-situ surface reconstruction of silver-based MOCHAs via chalcogen depletion for durable CO₂-to-CO electrocatalysis

  • Hannah Rabl-Wolff
  • , Fu L. Sun
  • , Dorottya Varga
  • , Gui L. Zhuang
  • , Zheao Huang
  • , Stephen Nagaraju Myakala
  • , Pablo Ayala
  • , Jakob Blaschke
  • , Alexey Cherevan
  • , Annette Foelske
  • , Leticia González (Corresponding author)
  • , Dogukan H. Apaydin (Corresponding author)
  • , Dominik Eder

Publications: Contribution to journalArticlePeer Reviewed

Abstract

Metal–organic chalcogenolate assemblies (MOCHAs) have emerged as promising hybrid electrocatalysts for CO₂ reduction, but their long-term stability and structure–activity relationships remain poorly understood. Here, we compare selenium- and sulfur-based MOCHAs, [AgSePh] and [AgSPh], immobilized on carbon paper via an optimized dip-coating strategy that yields homogeneous, high-utilization catalyst layers. Under batch conditions at −1.0 V vs RHE in 0.5 M KHCO₃, [AgSePh] reaches a CO faradaic efficiency of ∼96% with jCO ≈ 8 mA cm⁻², representing a clear improvement over previous reports on this material. In a continuous-flow configuration, [AgSePh] sustains CO production rates up to ∼275 mmol h⁻¹ g⁻¹ over 72 h, whereas [AgSPh] exhibits a gradual loss of activity, indicating superior durability of the selenolate-derived MOCHA. Pre- and post-electrolysis characterization (p-XRD, SEM/EDX, XPS, TXRF) reveals chalcogen depletion, metallic silver formation, and morphological roughening under cathodic bias, showing that both MOCHAs act as precatalysts that reconstruct into Ag-rich active phases. Complementary DFT calculations, including explicit-solvent ab initio molecular dynamics on pristine MOCHA surfaces, indicate somewhat stronger CO₂ interaction and a lower *COOH formation barrier for [AgSePh] than for [AgSPh], providing qualitative insight into the higher CO₂RR activity and stability of the selenolate analogue. Together, these results identify chalcogen migration and depletion as a self-stabilization pathway for MOCHA-derived Ag electrocatalysts and establish [AgSePh] as a comparatively efficient and stable silver-based chalcogenolate catalyst for CO₂-to-CO conversion in H-cell and flow setups.

Original languageEnglish
Article number103488
JournalJournal of CO2 Utilization
Volume109
DOIs
Publication statusPublished - Jul 2026

Funding

H.R-W. and J. B. gratefully acknowledge the funding provided by the Austrian Science Fund (FWF), doctoral college TU-DX (10.55776/DOC142) and by the FFG within the framework of the “Solarreaktor” Project respectively. DHA gratefully acknowledges the funding from Hochschuljubiläumfonds der Stadt Wien (H−908534/2022). This research was funded in part by the Austrian Science Fund (FWF) [10.55776/COE5] (Cluster of Excellence MECS). For open access purposes, the author has applied a CC BY public copyright license to any author accepted manuscript version arising from this submission. The authors gratefully acknowledge the following facilities of the TU Wien: USTEM for providing SEM machines, Prof. Dr. Christina Streli from the Atominstitut of TU Wien for TXRF infrastructure, the X-ray Center and Dr. Klaudia Hradil at TU Wien for providing X-ray diffraction machines and the AIC (Analytical Instrumentation Center) for enabling XPS measurements. The authors also acknowledge TU Wien Bibliothek for financial support through its Open Access Funding Program.

FundersFunder number
Fonds zur Förderung der wissenschaftlichen Forschung (FWF)H-908534/2022

Austrian Fields of Science 2012

  • 104015 Organic chemistry
  • 204001 Inorganic chemical technology
  • 104005 Electrochemistry

Keywords

  • CO electroreduction to CO
  • Continuous-flow electrolysis
  • Long-term stability
  • Metal-organic chalcogenolate assemblies
  • Silver electrocatalysts
  • Surface reconstruction

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