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September 10, 2025Inventions43 citationsOpen Access

Comparative Assessment and Deployment of Zeolites, MOFs, and Activated Carbons for CO2 Capture and Geological Sequestration Applications

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MMMohamadou Hamadama MouctarUniversity of SouthamptonMHMohamed HassanWashington University in St. LouisNBNuno BimboUniversity of Southampton

Key Points

  • CO2 adsorption capacities range from 3.5–8.0 mmol/g, with MOFs showing the highest performance.
  • Activated carbons provide cost-effective solutions in carbon capture and storage applications.
  • This assessment covers structural features, moisture stability, and economic viability of adsorbent materials.
  • Five methods for delivering these materials into geological formations are discussed to enhance CCS deployment.

Abstract

The rising level of atmospheric carbon dioxide (CO2) is a major driver of climate change, highlighting the need to develop carbon capture and storage (CCS) technologies quickly. This paper offers a comparative review of three main groups of porous adsorbent materials—zeolites, metal–organic frameworks (MOFs), and activated carbons—for their roles in CO2 capture and long-term storage. By examining their structural features, adsorption capacities, moisture stability, and economic viability, the strengths and weaknesses of each material are assessed. Additionally, five different methods for delivering these materials into depleted oil and gas reservoirs are discussed: direct suspension injection, polymer-assisted transport, foam-assisted delivery, encapsulation with controlled release, and preformed particle gels. The potential of hybrid systems, such as MOF–carbon composites and polymer-functionalized materials, is also examined for improved selectivity and durability in underground environments. This research aims to connect materials science with subsurface engineering, helping guide the selection and use of adsorbent materials in real-world CCS applications. The findings support the optimization of CCS deployment and contribute to broader climate change efforts and the goal of achieving net-zero emissions. Key findings include CO2 adsorption capacities of 3.5–8.0 mmol/g and surface areas up to 7000 m2/g, with MOFs demonstrating the highest uptake and activated carbons offering cost-effective performance.

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Cite This Study

Mouctar et al. (2025) studied this question.

synapsesocial.com/papers/68c1d97d54b1d3bfb60fb01fhttps://doi.org/10.3390/inventions10050078
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