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A Rhenium Bis- tetramethylphenanthroline Catalyst for CO2 Reduction to Formate

2025/06/18 by Reem T. Alameh, Sarah Arteta, Sergio Fernández +9 · 1 voice
Chemical Engineering · Energy · Materials Science · #CO2 Reduction Techniques and Catalysts #Carbon dioxide utilization in catalysis #Catalytic Processes in Materials Science

paper · doi:10.1021/acs.energyfuels.5c01212

openalex publication_date 2025/06/18 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/11

Abstract

Catalytic CO 2 reduction reactions featuring high selectivity toward formate are relatively rare. In some homogeneous molecular CO 2 -reducing electrocatalysis, using triethylamine (TEA) and isopropanol (IPA) as additives improves catalytic performance in producing formate. In this work, we investigate whether the rhenium(I) bis-diimine dicarbonyl complexes, cis -[Re(NN) 2 (CO) 2 ] +, where NN is 2,2’-bipyridine ( [1] + ) or 3,4,7,8-tetramethyl-1,10-phenanthroline ( [2] + ), are capable of electrocatalytically reducing CO 2 to formate in acetonitrile containing TEA and IPA. Catalyst [1] + was ineffective at CO 2 reduction, yielding formate quantities comparable to those produced in experiments without the catalyst. Catalyst [2] +, however, is a promising electrocatalyst for the CO 2 reduction reaction in the presence of TEA and IPA, with formate being produced in millimolar concentrations (10.5 mM), as detected by 1 H NMR spectroscopy after 6 h electrolysis (formate Faradaic efficiency = 11%, with the major balance going to H 2 ). Upon more detailed examination, [2] + exhibited a turnover frequency (TOF) of 12 s –1 for formate, comparable to other leading molecular catalysts that competently execute this reduction. Combinations of spectroscopy, electrochemistry, and theory were used to better understand the mechanism of CO 2 reduction by [2] + . Fourier transform infrared spectroelectrochemical (FTIR-SEC) data provided no evidence for CO ligand dissociation or substitution upon one- and two-electron reduction of [2] +, suggesting that a mechanism distinct from one that is metal-hydride-based is operative in catalysis. Computational studies guide mechanistic investigations toward the proposed formation of a hydrophenanthroline-based intermediate responsible for hydride transfer to CO 2 and electrocatalytic formate production from [2] + .

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