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Accelerated Uptake of CO2 Catalyzed by Immobilized Thermophilic Carbonic Anhydrase on Dispersed Aminated Mesoporous Silica
Stockholm University, Faculty of Science, Department of Chemistry.ORCID iD: 0009-0007-3649-7732
Stockholm University, Faculty of Science, Department of Chemistry. Sivas Cumhuriyet University, Turkey.ORCID iD: 0000-0003-2838-9719
Stockholm University, Faculty of Science, Department of Chemistry.
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Number of Authors: 72025 (English)In: ACS Applied Materials and Interfaces, ISSN 1944-8244, E-ISSN 1944-8252, Vol. 17, no 45, p. 61919-61928Article in journal (Refereed) Published
Abstract [en]

Efficient and durable biocatalysts are important for sustainable CO2 capture technologies, but enzyme stability often limits their use under harsh process conditions. Here, we evaluate carbonic anhydrases (CAs) adsorbed onto aminated mesoporous SBA-15 as biocatalysts for CO2 capture under the hypothesis of adsorption-induced thermal stabilization. Carbonic anhydrase from the thermophilic bacterium Persephonella marina (pmCA) and commercial bovine erythrocyte carbonic anhydrase (bCA) were used. Enzyme adsorption isotherms for pmCA and bCA onto the aminated SBA-15 were established, along with desorption tests. Adsorbed and free pmCA and bCA were incubated at 40–90 °C for 14 d. The structural integrity and possibility of amine leaching of the incubated (90°, 14 d) aminated SBA-15 were analyzed by X-ray diffraction (XRD) and NMR spectroscopy. The reaction product speciation in CO2-loaded catalyzed and uncatalyzed dispersions was monitored using infrared (IR) spectroscopy. The maximum enzyme adsorption capacities were established to be 1.4 ± 0.2 g pmCA·g-aminated SBA-15–1 and 2.1 ± 0.5 g bCA·g-aminated SBA-15–1, with no detectable desorption. Adsorbed pmCA and bCA maintained high activity for 14 d at 40–65 °C and for 4 d at 90 °C, whereas free enzymes lost activity within 4 d at all temperatures. The XRD patterns of the heat-treated (90 °C, 14 d) aminated SBA-15 indicated a full collapse of the mesostructure. IR spectroscopy confirmed enhanced HCO3 formation in the presence of immobilized CA. Overall, enzyme adsorption onto the aminated SBA-15 significantly improved the thermal stability and activity of pmCA and bCA compared to the free enzymes, demonstrating the potential of adsorbed CAs for biocatalysis.

Place, publisher, year, edition, pages
2025. Vol. 17, no 45, p. 61919-61928
Keywords [en]
aminated silica, Biocatalysis, CO2capture, enzyme immobilization
National Category
Materials Chemistry Molecular Biology
Identifiers
URN: urn:nbn:se:su:diva-250324DOI: 10.1021/acsami.5c08889ISI: 001605661000001PubMedID: 41152143Scopus ID: 2-s2.0-105021663720OAI: oai:DiVA.org:su-250324DiVA, id: diva2:2021688
Available from: 2025-12-15 Created: 2025-12-15 Last updated: 2026-04-15Bibliographically approved
In thesis
1. Exploring Dispersion-Based Scrubbing Fluids for CO2 Capture
Open this publication in new window or tab >>Exploring Dispersion-Based Scrubbing Fluids for CO2 Capture
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Bioenergy carbon capture and storage (BECCS) is expected to play a pivotal role in achieving substantial reductions in greenhouse gas emissions in line with international climate agreements. Conventional CO2 separation from flue gases relies on chemical absorption into alkaline scrubbing fluids. The technology is well-understood but suffers from several technical limitations, of which the most notable is the high energy penalty associated with the high water content. Although a range of phase separating solvents has emerged as an alternative approach for improving energy efficiency in CO2 capture systems, this thesis focuses on new dispersion-based formulations, which remain underexplored despite their potential to anchor amine species and thereby reduce emissions and toxicity.

This thesis investigates dispersion-based scrubbing fluids for energy efficient CO2 capture, based on the hypothesis that CO2-triggered phase separation can significantly reduce regeneration energy. In parallel, it also examines biocatalysis by carbonic anhydrases (CAs) with an emphasis on adsorption-induced thermal stabilization as a strategy to enhance enzyme durability under harsh industrial conditions.

Concentrated dispersions of aminated SBA-15 silica and aminated nanoparticles of organosilica were synthesized and evaluated for their CO2 capture performance. A central aspect of the performance was the CO2-triggered phase change, which was studied by time-resolved optical transmission, and CO2 absorption rates were measured by CO2 partial pressure decay in a stirred-cell apparatus. In addition, CAs from thermophilic and mesophilic organisms were immobilized on aminated SBA-15 and ZIF-90. The immobilized CAs were incubated at elevated temperatures, and the remaining catalytic activity was evaluated via esterase assay and CO2 hydration rates.

CO2-triggered phase separation occurred in the dispersions of aminated SBA-15 and monoaminated nanoparticles (M-NP), but not in the di- (D-NP) and triaminated (T-NP) nanoparticles. CO2 absorption rates of the aminated nanoparticles were comparable to those of industrial benchmarking scrubbing fluids such as monoethanolamine (MEA) and 2-amino-2-methyl-1-propanol (AMP). The rate of CO2 absorption into the aminated SBA-15 dispersions was limited due to slow mass transfer. Phase separation significantly improved the energy balances, with an approximately 50% reduction in regeneration energy according to our calculations, demonstrating the potential to reduce regeneration energy in industrial applications. CAs immobilized on aminated SBA-15 and ZIF-90 exhibited enhanced thermal stability at elevated temperatures. The structural stability of the solid support appears to be the bottleneck in achieving greater thermal stability.

This thesis demonstrates the potential for enhanced performance and energy benefits of dispersion-based scrubbing fluids for CO2 capture, as an alternative to conventional molecular solvents. It also highlights their suitability for integration of CA-based biocatalysis by improving CA stability via adsorption.

Place, publisher, year, edition, pages
Stockholm: Department of Chemistry, Stockholm University, 2026. p. 84
Keywords
Concentrated dispersions, CO2 capture, CO2-triggered phase separation, carbonic anhydrases, biocatalysis
National Category
Materials Chemistry
Research subject
Materials Chemistry
Identifiers
urn:nbn:se:su:diva-254196 (URN)978-91-8107-614-1 (ISBN)978-91-8107-615-8 (ISBN)
Public defence
2026-06-05, Magnelisalen, Kemiska övningslaboratoriet, Svante Arrhenius väg 16B, Stockholm, 14:00 (English)
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Available from: 2026-05-11 Created: 2026-04-15 Last updated: 2026-04-29Bibliographically approved

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Svanberg Frisinger, Maja-StinaMimiroglu, DidemUllah, LatifHedin, Niklas

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