Direct Colloidal Synthesis of High-Entropy Carbide Nanoparticles with Altered CO2 Hydrogenation Selectivity

Abstract The controlled synthesis of refractory carbide nanoparticles remains a longstanding challenge in colloidal nanoscience because strong metal–carbon bonding and high formation energies complicate nucleation, growth, and compositional control. Here, we report the direct colloidal synthesis of single-phase high-entropy (HE) carbide nanoparticles, (CrMnMoW)C1–x, (TiCrMnMoW)C1–x, and (CrMnFeMoW)C1–x, via the simultaneous thermolysis of transition metal carbonyl precursors in oleylamine. Structural analysis reveals substantial local disorder and lattice distortion, including a ∼50% increase in the full width at half-maximum of the first M–C pair distribution function peak relative to α-MoC1–x nanoparticles. During CO2 hydrogenation (at 300 °C and either 20 or 30 bar), the HE carbides exhibit lower CO selectivity than the monometallic α-MoC1–x control, decreasing from 77% to 38–67%, while shifting selectivity toward oxygenates and C2+ products. The largest enhancement in methanol and dimethyl ether formation was observed for (TiCrMnMoW)C1–x, increasing from 0.5% for the control to 6.7%, while (CrMnFeMoW)C1–x exhibited a 50% increase in C2+ selectivity, from 6.8% to 10.2%. These findings demonstrate that direct colloidal access to HE carbide nanoparticles provides a route to catalytic behavior distinct from that of conventional carbide nanoparticles.

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Publication Details

Journal
Chemistry of Materials
Published
2026-10-09
DOI
https://doi.org/10.1021/acs.chemmater.6c01753
Primary Topic
Catalysts for Methane Reforming
Type
article
Field-Weighted Citation Impact
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article

Direct Colloidal Synthesis of High-Entropy Carbide Nanoparticles with Altered CO2 Hydrogenation Selectivity

Richard L. Brutchey, Daniel A. Ruddy, Brendan Ward-O’Brien, Frederick G. Baddour et al.
Chemistry of Materials
Catalysts for Methane Reforming
article

Direct Colloidal Synthesis of High-Entropy Carbide Nanoparticles with Altered CO2 Hydrogenation Selectivity

Richard L. Brutchey, Daniel A. Ruddy, Brendan Ward-O’Brien, Frederick G. Baddour, Hyewon Lee
article en

Abstract

Abstract The controlled synthesis of refractory carbide nanoparticles remains a longstanding challenge in colloidal nanoscience because strong metal–carbon bonding and high formation energies complicate nucleation, growth, and compositional control. Here, we report the direct colloidal synthesis of single-phase high-entropy (HE) carbide nanoparticles, (CrMnMoW)C1–x, (TiCrMnMoW)C1–x, and (CrMnFeMoW)C1–x, via the simultaneous thermolysis of transition metal carbonyl precursors in oleylamine. Structural analysis reveals substantial local disorder and lattice distortion, including a ∼50% increase in the full width at half-maximum of the first M–C pair distribution function peak relative to α-MoC1–x nanoparticles. During CO2 hydrogenation (at 300 °C and either 20 or 30 bar), the HE carbides exhibit lower CO selectivity than the monometallic α-MoC1–x control, decreasing from 77% to 38–67%, while shifting selectivity toward oxygenates and C2+ products. The largest enhancement in methanol and dimethyl ether formation was observed for (TiCrMnMoW)C1–x, increasing from 0.5% for the control to 6.7%, while (CrMnFeMoW)C1–x exhibited a 50% increase in C2+ selectivity, from 6.8% to 10.2%. These findings demonstrate that direct colloidal access to HE carbide nanoparticles provides a route to catalytic behavior distinct from that of conventional carbide nanoparticles.

Chemistry of Materials
University of Southern California (US), National Laboratory of the Rockies (US)
Openalex Percentile: Top 34%
Catalysts for Methane Reforming
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