Controlling hydrocarbon chain growth and degree of branching in CO2 electroreduction on fluorine-doped nickel catalysts

Author

Ou, Yingqing

Liu, Lu

Seemakurthi, Ranga Rohit

You, Futian

Ma, Haibin

Pérez-Ramírez, Javier

López, Núria

Yeo, Boon Siang

Publication date

2025-07-17



Abstract

Nickel-based materials can facilitate the electrocatalytic CO2 reduction (CO2R) reaction to generate hydrocarbons up to C6. Here we show that fluorine doping alters the nature of the Ni active sites, which proves instrumental in tuning the selectivity of the CO2R. We interrogate the CO2R reaction mechanism using intermediate surrogates, including aldehydes, alkyl iodides and acetylene. Aldehydes are electroreduced to alcohols and deoxygenated intermediates. Among the latter, unsaturated hydrocarbon intermediates (RCH2−x*, where the asterisk represents surface-bound species and x = 1 or 2) reacting with *CO dictate chain propagation, modulated by competitive C–C coupling and C–H hydrogenation reactions. Compound branching in the hydrocarbons initiates from *CO coupling with two *CH2 species, and the branch-to-linear hydrocarbon ratio can be doubled using a pulsed potential strategy. An inverse H/D kinetic isotope effect promotes deuterated hydrocarbon formation with a Faradaic efficiency of 22.2%. This work reveals mechanisms and strategies for the conversion of CO2 into linear and branched hydrocarbons, thus advancing electrosynthetic fuel development.

Document Type

Article

Document version

Accepted version

Language

English

CDU Subject

54 - Chemistry. Crystallography. Mineralogy

Subject

Química

Pages

14 p.

Publisher

Springer Nature

Grant Agreement Number

National Research Foundation of Singapore (Urban Solutions and Sustainability, Industry Alignment Fund (Pre-Positioning) Programme, A-0004543-00-00)

Ministry of Education, Singapore (A-8001571-00-00)

R.R.S. acknowledges funding from the European Union’s Horizon 2020 research and innovation programme under Marie Skłodowska-Curie grant agreement no. 754510

Spanish Ministry of Science and Innovation (PID2021-122516OBI00)

J.P.-R. acknowledges NCCR Catalysis (grant no. 225147) funded by the Swiss National Science Foundation.

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Attribution 4.0 International

Attribution 4.0 International

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