Aug 2026· Advancement of science· 0 citations· 55 references
Medicine
Abstract
ABSTRACT Electrochemical CO2 reduction offers a sustainable route to convert greenhouse gas into high‐value‐added chemicals, yet product distributions remain largely limited to simple C1‐C3 molecules. Here, we report a new reaction in which CO2 reduction intermediates undergo direct C‐C coupling with an external carbon nucleophile under electrochemical conditions. Using cobalt phthalocyanine supported on multi‐walled carbon nanotubes (CoPc/MWCNT) as a catalyst, cyanide ions intercept deeply reduced C1 intermediates to produce glycolonitrile at 4°C with a faradaic efficiency (FE) of up to 6.6%. Combined electrochemical analysis, control experiments, and density functional theory calculations identify *CH2O as the key coupling intermediate, revealing a C‐C coupling mechanism fundamentally different from conventional coupling pathways in CO2 electroreduction to synthesize C2+ compounds. Extending this concept to a three‐component reaction involving hydroxylamine (NH2OH) enables electrocatalytic synthesis of glycine under ambient pressure with a FE of 2.8%. This work establishes a new strategy for constructing complex carbon skeletons directly from CO2 and external nucleophiles, expanding the synthetic scope of electrochemical carbon conversion.
Electrochemical C─N coupling from carbon dioxide and nitrogen oxoanions offers a sustainable route to value-added amides, yet achieving high selectivity remains challenging due to competing reaction pathways and insufficient substrate activation. Here we report a homo/heterogeneous dual-active-center catalyst that inte...
Cheng Peng, Yi-Fan Bu, Shi-Yun Li et al.· Angewandte Chemie· 0 citations
The electrochemical reduction of CO2 has received significant scientific interest over the past two decades as a key step in the synthesis of CO2 into combustible fuels. Cobalt phthalocyanine (CoPc) adsorbed on carbon nanotubes has risen as a rare electrocatalyst that reduces CO2 beyond two electrons, specifically to m...
Emile E. DeLuca, Cheolwoo Park, Pooja Basera et al.· Journal of the American Chem...· 0 citations
Electrochemical C‐N coupling offers a sustainable pathway for organonitrogen synthesis but faces kinetic challenges in reactant activation and C‐N coupling for target product generation. Herein, we report a heterometallic metal‐organic framework (MOF), Cu‐MIL‐125, as a high‐performance catalyst for selective methylamin...
Electrochemical hydroformylation is an attractive pathway to synthesize aldehydes at ambient conditions using electrons sourced from renewable energy as a reductant instead of hydrogen gas sourced from energy-intensive steam methane reforming. However, previously reported electrochemical hydroformylation systems have...
Emma L. Cosner, Spencer P. Delgado-Kukuczka, Haochen Zhang et al.· Journal of the American Chem...· 0 citations
While the electrochemical coupling of N2 and CO is traditionally directed toward urea synthesis, a co-production strategy yielding formamide (NH2CHO) and ammonia (NH3) offers an alternative approach to enhance the carbon and nitrogen utilization efficiency. Combining density functional theory calculations with a cons...
Xiao-Le Cheng, Cong-Cong Cui, Shuai Zhu et al.· Journal of Physical Chemistr...· 0 citations
Electrochemical urea synthesis through C–N bond formation under mild conditions has emerged as a promising alternative to the conventional energy-intensive Bosch–Meiser process, offering a sustainable pathway coupling carbon and nitrogen cycles. In this context, the coelectrolysis of CO2 with different nitrogen sources...
Leandro A. Faustino, S. I. Córdoba de Torresi· Langmuir· 0 citations
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