Solvent driven pore engineering in coffee-derived activated hydrochar : implications for post-combustion CO2 capture
Maulana Kusdhany, Muhammad Irfan and Vorokhta, Maryna and Sasaki, Kazunari and Nishihara, Masamichi and Lyth, Stephen Matthew (2025) Solvent driven pore engineering in coffee-derived activated hydrochar : implications for post-combustion CO2 capture. Carbon Energy. e70141. ISSN 2637-9368 (https://doi.org/10.1002/cey2.70141)
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Abstract
Engineering the pore structure of biomass-derived activated carbons is critical for optimizing their performance in adsorption-based applications. This study demonstrates for the first time that washing hydrochars in solvents of different polarity before activation is a simple yet powerful strategy to tailor pore size distribution. Hydrochar is produced from spent coffee grounds via hydrothermal carbonization, followed by washing in various solvents and activation in KOH. This results in carbons with a very large surface area (∼2700 m2/g), and washing is demonstrated to significantly increase product yield. Furthermore, washing in non-polar or mixed-polarity solvents removes long-chain carboxylic acids and esters from the hydrochar, promoting the development of narrow micropores while suppressing mesopore formation. To illustrate the impact of this structural control of porous carbons, post-combustion CO2 capture is investigated as a case study. Narrower pore size distribution enhances CO2 uptake, significantly improving capacity from 2.8 mmol/g for unwashed samples to 3.8 mmol/g for acetone-washed samples. Interestingly, moderate pore size (9–12 Å) is shown to be optimal for CO2:N2 selectivity, while smaller pores result in lower selectivity due to stronger interactions between N2 and the pore walls. These findings highlight the potential role of solvent washing in directing pore architecture of hydrochars for adsorption-based carbon capture technologies and beyond.
ORCID iDs
Maulana Kusdhany, Muhammad Irfan, Vorokhta, Maryna, Sasaki, Kazunari, Nishihara, Masamichi and Lyth, Stephen Matthew
ORCID: https://orcid.org/0000-0001-9563-867X;
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Item type: Article ID code: 94936 Dates: DateEvent9 December 2025Published9 December 2025Published Online7 November 2025AcceptedSubjects: Science > Chemistry
Technology > Electrical engineering. Electronics Nuclear engineering > Production of electric energy or powerDepartment: Faculty of Engineering > Chemical and Process Engineering Depositing user: Pure Administrator Date deposited: 09 Dec 2025 14:13 Last modified: 02 Feb 2026 17:11 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/94936
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