Journal article 2-step reaction kinetics for hydrogen absorption into bulk material via dissociative adsorption on the surface
Taro Yakabe (author) (Search by this author)
ORCID SAMURAI ;
Gaku Imamura (author) (Search by this author)
ORCID SAMURAI ;
Genki Yoshikawa (author) (Search by this author)
ORCID SAMURAI ;
Naoya Miyauchi (author) (Search by this author)
ORCID SAMURAI ;
Masahiro Kitajima (author) (Search by this author)
ORCID SAMURAI ;
Akiko N. Itakura (author) (Search by this author)
ORCID SAMURAI
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Citation
Taro Yakabe, Gaku Imamura, Genki Yoshikawa, Naoya Miyauchi, Masahiro Kitajima, Akiko N. Itakura. 2-step reaction kinetics for hydrogen absorption into bulk material via dissociative adsorption on the surface. Scientific Reports. 2021, 11 (1), 18836-18836. https://doi.org/10.1038/s41598-021-98347-4
SAMURAI

Description:

(abstract)

We have demonstrated that the process of hydrogen absorption into a solid experimentally follows a Langmuir-type (hyperbolic) function instead of Sieverts law. This can be explained by independent two theories. One is the well-known solubility theory which is the basis of Sieverts law. It explains that the amount of hydrogen absorption can be expressed as a Langmuir-type (hyperbolic) function of the square root of the hydrogen pressure. We have succeeded in drawing the same conclusion from the other theory. It is a 2-step reaction kinetics (2sRK) model that expresses absorption into the bulk via adsorption on the surface. The 2sRK model has an advantage to the solubility theory: Since it can describe the dynamic process, it can be used to discuss both the amount of hydrogen absorption and the absorption rate. Some phenomena with absorption via adsorption can be understood in a unified manner by the 2sRK model.

Rights:

Keyword: hydrogen absorption, 2-step reaction kinetics (2sRK) model

Date published: 2021-09-22

Publisher: Springer Science and Business Media LLC

Journal:

  • Scientific Reports (ISSN: 20452322) vol. 11 issue. 1 p. 18836-18836

Funding:

  • JSPS 18H03849
  • JSPS 22K04935

Manuscript type: Publisher's version (Version of record)

MDR DOI:

First published URL: https://doi.org/10.1038/s41598-021-98347-4

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Updated at: 2024-01-05 22:12:37 +0900

Published on MDR: 2023-10-23 13:30:10 +0900

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