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 language | English |
|---|---|
| Article number | 103488 |
| Journal | Journal of CO2 Utilization |
| Volume | 109 |
| DOIs | |
| Publication status | Published - 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.
| Funders | Funder 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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