Materials & Energyarticle2026-08-03

Circumventing thermodynamic limitations in converting carbon dioxide into carbon nanotubes via tandem catalysis

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Abstract

Carbon nanotubes (CNTs) are important materials for electronics and structural composites, but their production still relies on hydrocarbon-based chemical vapor deposition, an energy-intensive and fossil-dependent process, limited by rapid catalyst deactivation. Using CO 2 as a carbon feedstock offers a sustainable route for CNT synthesis, yet direct CO 2 conversion to CNTs is thermodynamically unfavorable and existing CO 2 -to-carbon pathways mainly yield amorphous or weakly graphitized solids. Here, we demonstrate a tandem electrochemical–thermochemical (EC-TC) strategy that overcomes these limitations. CO 2 is first electrochemically reduced to a tunable mixture of C 2 H 4 and CO, which is directly fed into a thermochemical reactor and converted into CNTs with controllable morphology and high CNT-to-metal mass ratios (~200) over NiFe catalysts at 750 °C. In situ synchrotron-based characterization and density functional theory calculations reveal that CO dissociation and C 2 H 4 decomposition on NiFe alloys cooperatively promote CNT nucleation and sustained growth. This EC-TC strategy establishes a modular route for converting CO 2 into value-added carbon nanomaterials.

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View paper (DOI)OpenAlexProceedings of the National Academy of SciencesPublished 2026-08-03

Authors: Yong Yuan, Zixian Jiao, Jiahua Zhou, Camille I. Kuwana, William J. Wei, Sooyeon Hwang, Ping Liu, Jingguang G. Chen

Institutions: Columbia University, Stony Brook University, Brookhaven National Laboratory, State University of New York