Increasing the (Re)Activity of MgO for Carbon Capture under Continuous Ball Milling

Abstract Carbon capture and storage from point emission sources is a crucial technology able to mitigate the progress of climate change by slowing down the emission of greenhouse gases. Current technologies, such as amine scrubbing and calcium looping, face challenges including high energy consumption and limited efficiency under humid conditions. Magnesium oxide (MgO) is a promising CO2 sorbent due to its lower decarboxylation enthalpy compared to calcium oxide, but its practical use is hindered by slow CO2 uptake kinetics and the formation of a passivating carbonate layer that inhibits further CO2 diffusion. While synthetic methods have improved MgO surface area, scalability remains an issue. This study addresses the kinetic limitations of MgO by investigating how continuous ball milling can reduce the performance hindrance from the passivating-carbonate layer on MgO and enhance CO2 uptake under industrially relevant conditions. Here we show that continuous ball milling of MgO under a CO2 atmosphere significantly increases its CO2 uptake capacity. Unlike conventional approaches that rely on presynthesized high-surface-area MgO, our results demonstrate that ball milling during the sorption step does not only increase the specific surface area of MgO but also actively enhances its CO2 capture performance, with a 6-fold increase in adsorption capacity compared to static exposure. The addition of water further boosts performance, doubling uptake under simulated flue gas conditions (10% CO2, 40 °C), likely due to the formation of bicarbonates and hydroxycarbonates. The performance stability of MgO under continuous milling and moisture conditions was evaluated in several sorption-regeneration cycles, showing consistent CO2 uptake over ten cycles with an average sorption capacity of 17.4 wt %. Structural analyses reveal that carbonation proceeds via magnesium hydroxycarbonate species, which fully decompose upon regeneration, preserving sorbent stability over ten cycles. This study underscores the practical relevance of mechanochemical activation for enhancing the capture capacity of MgO, offering a promising approach for industrial point-source CO2 capture applications.

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Publication Details

Journal
Chemistry of Materials
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.chemmater.6c01597
Primary Topic
Carbon Dioxide Capture Technologies
Type
article
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article

Increasing the (Re)Activity of MgO for Carbon Capture under Continuous Ball Milling

Ferdi Schüth, Thibaud Aumond, Emanuele Antico, Marc Meyer et al.
Chemistry of Materials
Carbon Dioxide Capture Technologies
article

Increasing the (Re)Activity of MgO for Carbon Capture under Continuous Ball Milling

Ferdi Schüth, Thibaud Aumond, Emanuele Antico, Marc Meyer, Eko Budiyanto, Linfeng Li
article en

Abstract

Abstract Carbon capture and storage from point emission sources is a crucial technology able to mitigate the progress of climate change by slowing down the emission of greenhouse gases. Current technologies, such as amine scrubbing and calcium looping, face challenges including high energy consumption and limited efficiency under humid conditions. Magnesium oxide (MgO) is a promising CO2 sorbent due to its lower decarboxylation enthalpy compared to calcium oxide, but its practical use is hindered by slow CO2 uptake kinetics and the formation of a passivating carbonate layer that inhibits further CO2 diffusion. While synthetic methods have improved MgO surface area, scalability remains an issue. This study addresses the kinetic limitations of MgO by investigating how continuous ball milling can reduce the performance hindrance from the passivating-carbonate layer on MgO and enhance CO2 uptake under industrially relevant conditions. Here we show that continuous ball milling of MgO under a CO2 atmosphere significantly increases its CO2 uptake capacity. Unlike conventional approaches that rely on presynthesized high-surface-area MgO, our results demonstrate that ball milling during the sorption step does not only increase the specific surface area of MgO but also actively enhances its CO2 capture performance, with a 6-fold increase in adsorption capacity compared to static exposure. The addition of water further boosts performance, doubling uptake under simulated flue gas conditions (10% CO2, 40 °C), likely due to the formation of bicarbonates and hydroxycarbonates. The performance stability of MgO under continuous milling and moisture conditions was evaluated in several sorption-regeneration cycles, showing consistent CO2 uptake over ten cycles with an average sorption capacity of 17.4 wt %. Structural analyses reveal that carbonation proceeds via magnesium hydroxycarbonate species, which fully decompose upon regeneration, preserving sorbent stability over ten cycles. This study underscores the practical relevance of mechanochemical activation for enhancing the capture capacity of MgO, offering a promising approach for industrial point-source CO2 capture applications.

Chemistry of Materials
Max Planck Society (DE), Max-Planck-Institut für Kohlenforschung (DE)
Openalex Percentile: Top 22%
Carbon Dioxide Capture Technologies
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