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Influence of Cu and oxide content in CuAl layered double hydroxides on C2+-selective CO2 electroreduction
Asier Grijalvo Rodriguez1,2, Matthias Minjauw2, Zhiyuan Chen1
1Electrochemistry Excellence Centre, Materials and Chemistry Unit, Flemish Institute for Technological Research (VITO), Boeretang 200, Mol 2400, Belgium. zhiyuan.chen@vito.be.
Abstract:
The electrocatalytic reduction of CO2 to multicarbon (C2+) products on copper-based catalysts is dictated by the dynamic reconstruction of the active sites. While copper-aluminium (CuAl) layered double hydroxides (LDHs) have emerged as promising pre-catalysts, the role of the initial precursor phase, specifically the transition from highly crystalline LDH to oxide-rich hybrid phases, and its influence on catalytic activity in near-neutral electrolytes remain less understood. In this study, CuxAl pre-catalysts were systematically investigated across Cu : Al ratios from 5 : 1 to 1 : 2 in aqueous K2SO4, with the electrolyte concentration adjusted to probe its complex role in activity. Under optimised conditions, using an oxide-rich 5 : 1 pre-catalyst, the faradaic efficiency for C2+ reached approximately 55.3% at 250 mA cm-2 in a near-neutral environment. The selectivity toward C2+ is dependent on the amount of Cu present and the oxide richness, with intermediate Cu amounts providing a balance between the availability of Cu active sites and the Al-mediated structural stabilisation. In contrast, Al-rich compositions offer less favourable product distributions. Increasing the K2SO4 concentration modulates the cell voltage and C2+ product formation. This suggests that combined interfacial electrolyte effects, including shifted local pH gradients and cation-mediated stabilisation, regulate C-C coupling pathways. Physicochemical characterisation, particularly in situ Raman spectroscopy, and electrochemical measurements indicate that the initial stoichiometry of the CuAl LDH and the presence of oxides/hydroxides influence the nature of the reconstructed Cu-based catalyst, yielding behaviour consistent with the partial stabilisation of Cu+ under operating conditions. These results demonstrate that the Cu content of CuAl pre-catalysts, together with the interfacial electrolyte environment, plays a key role in directing CO2 selectivity. This systematic study offers guidance on rationally tuning the precursor phase, oxide richness, and reaction environment of Cu-based electrocatalysts for high-rate CO2 reduction in non-alkaline media.
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