The catalytic effect of Ni in methane pyrolysis using molten SnNi alloys for hydrogen production

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The catalytic effect of Ni in methane pyrolysis using molten SnNi alloys for hydrogen production. / Scheiblehner, David; Neuschitzer, David; Wibner, Stefan et al.
in: International Journal of Hydrogen Energy , Jahrgang 102.2025, Nr. 10 February, 14.01.2025, S. 1045-1054.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

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@article{54417d178f1248a6884e3f855d72a1b6,
title = "The catalytic effect of Ni in methane pyrolysis using molten SnNi alloys for hydrogen production",
abstract = "Hydrogen has a high potential to decarbonize our economy, particularly the industry, which can only be accomplished if its production is both sustainable and economically viable. In this context, methane pyrolysis is a promising alternative as the base reaction emits zero greenhouse gases. However, the underlying fundamental principles of turquoise hydrogen synthesis require further research for a better understanding of the rate-limiting mechanisms. This work investigates methane pyrolysis in a liquid-metal bubble column reactor and focuses on the efficiency of Sn and four different molten SnNi alloys. A kinetic model approximating these conditions was developed to investigate the effect of Ni. The evaluation of the experimental data determined the activation energies of the methane pyrolysis reaction to be in the range between 204.51 and 335.74 kJ/mol. Adding nickel to tin resulted in a nearly linear decrease in EA. We concluded that the physical properties of the melt, such as viscosity and surface tension, are the dominant influencing factors at high temperatures, while nickel is especially interesting in designated low-temperature pyrolysis reactors.",
author = "David Scheiblehner and David Neuschitzer and Stefan Wibner and Andreas Sprung and Tunes, {Matheus Araujo} and Manuel Leuchtenm{\"u}ller and Christoph Scherr and Helmut Antrekowitsch and Stefan Luidold",
year = "2025",
month = jan,
day = "14",
doi = "10.1016/j.ijhydene.2025.01.126",
language = "English",
volume = "102.2025",
pages = "1045--1054",
journal = "International Journal of Hydrogen Energy ",
issn = "0360-3199",
publisher = "Elsevier",
number = "10 February",

}

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TY - JOUR

T1 - The catalytic effect of Ni in methane pyrolysis using molten SnNi alloys for hydrogen production

AU - Scheiblehner, David

AU - Neuschitzer, David

AU - Wibner, Stefan

AU - Sprung, Andreas

AU - Tunes, Matheus Araujo

AU - Leuchtenmüller, Manuel

AU - Scherr, Christoph

AU - Antrekowitsch, Helmut

AU - Luidold, Stefan

PY - 2025/1/14

Y1 - 2025/1/14

N2 - Hydrogen has a high potential to decarbonize our economy, particularly the industry, which can only be accomplished if its production is both sustainable and economically viable. In this context, methane pyrolysis is a promising alternative as the base reaction emits zero greenhouse gases. However, the underlying fundamental principles of turquoise hydrogen synthesis require further research for a better understanding of the rate-limiting mechanisms. This work investigates methane pyrolysis in a liquid-metal bubble column reactor and focuses on the efficiency of Sn and four different molten SnNi alloys. A kinetic model approximating these conditions was developed to investigate the effect of Ni. The evaluation of the experimental data determined the activation energies of the methane pyrolysis reaction to be in the range between 204.51 and 335.74 kJ/mol. Adding nickel to tin resulted in a nearly linear decrease in EA. We concluded that the physical properties of the melt, such as viscosity and surface tension, are the dominant influencing factors at high temperatures, while nickel is especially interesting in designated low-temperature pyrolysis reactors.

AB - Hydrogen has a high potential to decarbonize our economy, particularly the industry, which can only be accomplished if its production is both sustainable and economically viable. In this context, methane pyrolysis is a promising alternative as the base reaction emits zero greenhouse gases. However, the underlying fundamental principles of turquoise hydrogen synthesis require further research for a better understanding of the rate-limiting mechanisms. This work investigates methane pyrolysis in a liquid-metal bubble column reactor and focuses on the efficiency of Sn and four different molten SnNi alloys. A kinetic model approximating these conditions was developed to investigate the effect of Ni. The evaluation of the experimental data determined the activation energies of the methane pyrolysis reaction to be in the range between 204.51 and 335.74 kJ/mol. Adding nickel to tin resulted in a nearly linear decrease in EA. We concluded that the physical properties of the melt, such as viscosity and surface tension, are the dominant influencing factors at high temperatures, while nickel is especially interesting in designated low-temperature pyrolysis reactors.

U2 - 10.1016/j.ijhydene.2025.01.126

DO - 10.1016/j.ijhydene.2025.01.126

M3 - Article

VL - 102.2025

SP - 1045

EP - 1054

JO - International Journal of Hydrogen Energy

JF - International Journal of Hydrogen Energy

SN - 0360-3199

IS - 10 February

ER -