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December 4, 2025Clean Technologies8 citationsOpen Access

Advancements in Carbon Capture, Utilization, and Storage (CCUS): A Comprehensive Review of Technologies and Prospects

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NSNisreen SalemKBKamalpreet Kaur BrarAAAli Asgarian

Key Points

  • CCUS technologies mitigate greenhouse gas emissions by capturing carbon dioxide effectively across multiple processes.
  • Recent advancements include the use of ionic liquids and metal-organic frameworks for enhanced carbon capture efficiency and scalability.
  • Observational analysis encompasses various capture and storage methods, emphasizing integration with renewable energy systems.
  • Challenges such as cost reduction and material stability continue to limit full-scale CCUS deployment, highlighting ongoing research needs.

Abstract

Carbon dioxide (CO2) is the most significant anthropogenic greenhouse gas (GHG), accounting for approximately 81% of total emissions, with methane (CH4), nitrous oxide (N2O), and fluorinated gases contributing the remainder. Rising atmospheric CO2 concentrations, driven primarily by fossil fuel combustion, industrial processes, and transportation, have surpassed the Earth’s natural sequestration capacity, intensifying climate change impacts. Carbon Capture, Utilization, and Storage (CCUS) offers a portfolio of solutions to mitigate these emissions, encompassing pre-combustion, post-combustion, oxy-fuel combustion, and direct air capture (DAC) technologies. This review synthesizes advancements in CO2 capture materials including liquid absorbents (amines, amino acids, ionic liquids, hydroxides/carbonates), solid adsorbents (metal–organic frameworks, zeolites, carbon-based materials, metal oxides), hybrid sorbents, and emerging hydrogel-based systems and their integration with utilization and storage routes. Special emphasis is given to CO2 mineralization using mine tailings, steel slag, fly ash, and bauxite residue, as well as biological mineralization employing carbonic anhydrase (CA) immobilized in hydrogels. The techno-economic performance of these pathways is compared, highlighting that while high-capacity sorbents offer scalability, hydrogels and biomineralization excel in low-temperature regeneration and integration with waste valorization. Challenges remain in cost reduction, material stability under industrial flue gas conditions, and integration with renewable energy systems. The review concludes that hybrid, cross-technology CCUS configurations combining complementary capture, utilization, and storage strategies will be essential to meeting 2030 and 2050 climate targets.

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Cite This Study

Salem et al. (2025) studied this question.

synapsesocial.com/papers/694025742d562116f28fdcf8https://doi.org/10.3390/cleantechnol7040109
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