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A simple, sustainable route to flexible microporous carbon cloth for energy storage applications

Alkhaldi, Thria; Blankenship, L. Scott; Mokaya, Robert

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Authors

Thria Alkhaldi

Robert Mokaya



Abstract

Activated carbon cloth (ACC) has the potential to be extremely useful in gas capture and storage applications as it combines high porosity, robustness, and flexibility with ease of handling. While it has been produced by a few researchers, the synthesis methods used to date either do not yield a product with high porosity, or if appropriate textural properties are achieved the synthesis is complex and arduous. Following a systematic study, we show that an almost exclusively microporous flexible ACC can be achieved with surface area >1900 m2 g−1via stabilisation with NH4Cl only, followed by activation with benign activating agent potassium oxalate (PO). After extensive optimisation and simplification of the process, it was found that the stabilisation step can be omitted in a synthesis route requiring only a simple carbonisation step to produce a flexible microporous carbon with surface area >2200 m2 g−1, thus further reducing the need for additional solvents and reagents. The CO2 and CH4 uptake of the ACCs developed in this work is comparable to that previously reported for flexible porous carbons prepared via more complicated routes and the porosity of the ACCs can be tuned to specific gas uptake applications according to the synthesis conditions.

Citation

Alkhaldi, T., Blankenship, L. S., & Mokaya, R. (2023). A simple, sustainable route to flexible microporous carbon cloth for energy storage applications. Materials Advances, 4(16), 3559-3571. https://doi.org/10.1039/d3ma00157a

Journal Article Type Article
Acceptance Date Jul 19, 2023
Online Publication Date Jul 21, 2023
Publication Date Jul 21, 2023
Deposit Date Aug 18, 2023
Publicly Available Date Aug 21, 2023
Journal Materials Advances
Electronic ISSN 2633-5409
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
Volume 4
Issue 16
Pages 3559-3571
DOI https://doi.org/10.1039/d3ma00157a
Keywords General Materials Science, Chemistry (miscellaneous)
Public URL https://nottingham-repository.worktribe.com/output/23860845
Publisher URL https://pubs.rsc.org/en/content/articlelanding/2023/MA/D3MA00157A

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