Carbon Nanofiber Growth Rates on NiCu Catalysts: Quantitative Coupling of Macroscopic and Nanoscale In Situ Studies

Publication date

2023-08-17

Authors

Welling, Tom A.J.ISNI 000000049261229X
Schoemaker, SEISNI 0000000512606293
de Jong, KrijnISNI 0000000116104048
de Jongh, PetraISNI 0000000395610073

Editors

Advisors

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Document Type

Article
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License

cc_by

Abstract

Since recently, gas-cell transmission electron microscopy allows for direct, nanoscale imaging of catalysts during reaction. However, often systems are too perturbed by the imaging conditions to be relevant for real-life catalyzed conversions. We followed carbon nanofiber growth from NiCu-catalyzed methane decomposition under working conditions (550 °C, 1 bar of 5% H2, 45% CH4, and 50% Ar), directly comparing the time-resolved overall carbon growth rates in a reactor (measured gravimetrically) and nanometer-scale carbon growth observations (by electron microscopy). Good quantitative agreement in time-dependent growth rates allowed for validation of the electron microscopy measurements and detailed insight into the contribution of individual catalyst nanoparticles in these inherently heterogeneous catalysts to the overall carbon growth. The smallest particles did not contribute significantly to carbon growth, while larger particles (8-16 nm) exhibited high carbon growth rates but deactivated quickly. Even larger particles grew carbon slowly without significant deactivation. This methodology paves the way to understanding macroscopic rates of catalyzed reactions based on nanoscale in situ observations.

Keywords

Electronic, Optical and Magnetic Materials, General Energy, Physical and Theoretical Chemistry, Surfaces, Coatings and Films

Citation

Welling, T A J, Schoemaker, S E, de Jong, K P & de Jongh, P E 2023, 'Carbon Nanofiber Growth Rates on NiCu Catalysts : Quantitative Coupling of Macroscopic and Nanoscale In Situ Studies', Journal of Physical Chemistry C, vol. 127, no. 32, pp. 15766-15774. https://doi.org/10.1021/acs.jpcc.3c02657