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Confirmation of pore formation mechanisms in biochars and activated carbons by dual isotherm analysis

Blankenship, L. Scott; Jagiello, Jacek; Mokaya, Robert

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Authors

L. Scott Blankenship

Jacek Jagiello

Robert Mokaya



Abstract

In this study biochars and activated carbons were synthesized either directly via the pyrolysis of sodium carboxymethyl cellulose (NC) or via hydrothermal carbonization of sawdust (SD) in an aqueous solution of KOH. The amount of porogen was varied by modulating the degree of sodium carboxymethyl substitution on NC or the amount of KOH mixed in solution with SD. Pore size distributions (PSDs) of these carbons were determined from the dual fit of kernels based on the two-dimensional version of the nonlocal density functional theory (2D-NLDFT) heterogeneous surface models to either N2 and H2 or O2 and H2 isotherms measured at −196 °C. By comparing PSDs of carbons from the same starting material at increasing degrees of activation, we show that those derived using O2 and H2 isotherms not only give more detail of variations in pore size but that the results also fit better with current understandings of porosity development in carbons derived through oxidative activation. This is likely a result of superior diffusion of O2 into ultramicropores at low pressure relative to N2

Citation

Blankenship, L. S., Jagiello, J., & Mokaya, R. (2022). Confirmation of pore formation mechanisms in biochars and activated carbons by dual isotherm analysis. Materials Advances, https://doi.org/10.1039/d2ma00141a

Journal Article Type Article
Acceptance Date Mar 29, 2022
Online Publication Date Mar 30, 2022
Publication Date Mar 30, 2022
Deposit Date Apr 9, 2022
Publicly Available Date Apr 12, 2022
Journal Materials Advances
Electronic ISSN 2633-5409
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
DOI https://doi.org/10.1039/d2ma00141a
Keywords General Materials Science; Chemistry (miscellaneous)
Public URL https://nottingham-repository.worktribe.com/output/7715397
Publisher URL https://pubs.rsc.org/en/content/articlelanding/2022/MA/D2MA00141A

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