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June 27, 2024Journal of the American Chemical Society61 citations

Electron Divergence of Cuδ− and Pdδ+ in Cu3Pd Alloy-Based Heterojunctions Boosts Concerted C≡C Bond Binding and the Volmer Step for Alkynol Semihydrogenation

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XLXiu LinFHFan-Sheng HuQLQiyuan Li

Key Points

  • Electron-divergent copper-palladium alloy heterojunctions drive efficient electrocatalytic semihydrogenation of alkynols into alkenols using water as the proton source.
  • A turnover frequency of 2412 h–1 is achieved alongside a cathodic energy efficiency of 45 mol kW·h–1 under an industrial current density of −200 mA cm–2.
  • Electrochemical analysis confirms dual-center water dissociation during the Volmer step, achieving 1.7 times the energy efficiency of benchmarked systems.

Abstract

Electrocatalytic semihydrogenation of alkynols presents a sustainable alternative to conventional thermal methodologies for the high-value production of alkenols. The design of efficient catalysts with superior catalytic and energy efficiency for semihydrogenation poses a significant challenge. Here, we present the application of an electron-divergent Cu3Pd alloy-based heterojunction in promoting the electrocatalytic semihydrogenation of alkynols to alkenols using water as the proton source. The tunable electron divergence of Cuδ− and Pdδ+, modulated by rectifying contact with nitrogen-rich carbons, enables the concerted binding of active H species from the Volmer step of water dissociation and the C≡C bond of alkynols on Pdδ+ sites. Simultaneously, the pronounced electron divergence of Cu3Pd facilitates the universal adsorption of OH species from the Volmer step and alkynols on the Cuδ− sites. The electron-divergent dual-center substantially boosts water dissociation and inhibition of completing hydrogen evolution to give a turnover frequency of 2412 h–1, outperforming the reported electrocatalysts' value of 7.3. Moreover, the continuous production of alkenols at industrial-related current density (−200 mA cm–2) over the efficient and durable Cu3Pd-based electrolyzer could achieve a cathodic energy efficiency of 45 mol kW·h–1, 1.7 times the bench-marked reactors, promising great potential for sustainable industrial synthesis.

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Cite This Study

Lin et al. (2024) studied this question.

synapsesocial.com/papers/68e62ea5b6db6435875c141dhttps://doi.org/10.1021/jacs.4c03893
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