Article, 2024

NHC-CDI Ligands Boost Multicarbon Production in Electrocatalytic CO Reduction by Increasing Accumulated Charged Intermediates and Promoting *CO Dimerization on Cu

Journal of the American Chemical Society, ISSN 0002-7863, 1520-5126, Volume 146, 19, Pages 13034-13045, 10.1021/jacs.3c14306

Contributors

Kolding K.N. 0009-0000-6957-0050 [1] Bretlau M. [1] Zhao S. 0000-0001-6769-3161 [1] Ceccato M. 0000-0002-6653-836X [1] Torbensen K. 0000-0001-8199-9140 [1] Daasbjerg K. 0000-0003-0212-8190 [1] Rosas-Hernandez A. 0000-0002-0812-5591 (Corresponding author) [1]

Affiliations

  1. [1] Aarhus University
  2. [NORA names: AU Aarhus University; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Copper-based materials exhibit significant potential as catalysts for electrochemical CO reduction, owing to their capacity to generate multicarbon hydrocarbons. The molecular functionalization of Cu electrodes represents a simple yet powerful strategy for improving the intrinsic activity of these materials by favoring specific reaction pathways through the creation of tailored microenvironments around the surface active sites. However, despite its success, comprehensive mechanistic insights derived from experimental techniques are often limited, leaving the active role of surface modifiers inconclusive. In this work, we show that N-heterocyclic carbene-carbodiimide-functionalized Cu catalysts display a remarkable activity for multicarbon product formation, surpassing bare Cu electrodes by more than an order of magnitude. These hybrid catalysts operate efficiently using an electrolyzer equipped with a gas diffusion electrode, achieving a multicarbon product selectivity of 58% with a partial current density of ca. −80 mA cm. We found that the activity for multicarbon product formation is closely linked to the surface charge that accumulates during electrocatalysis, stemming from surface intermediate buildup. Through X-ray photoelectron spectroscopy, we elucidated the role of the molecular additives in altering the electronic structure of the Cu electrodes, promoting the stabilization of surface CO. Additionally, in situ Raman measurements established the identity of the reaction intermediates that accumulate during electrocatalysis, indicating preferential CO binding on Cu step sites, known for facilitating C-C coupling. This study underscores the significant potential of molecular surface modifications in developing efficient electrocatalysts for CO reduction, highlighting surface charge as a pivotal descriptor of multicarbon product activity.

Funders

  • Tescan Clara
  • Danmarks Grundforskningsfond
  • Novo Nordisk Foundation CO Research Center
  • Carlsbergfondet

Data Provider: Elsevier