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April 27, 2026Next Sustainability0 citationsOpen Access

CO2 mineralization through local cement dust: A sustainable sequestration pathway

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WKWasim Ullah KhanSWSheikha WahdainSASalem Alshammari

Key Points

  • This research aims to investigate the effective mineralization of CO2 using cement kiln dust (CKD) to enable sustainable carbon sequestration.
  • Exploration of CKD carbonation at varying liquid-to-solid ratios (0.4–10) and mineralization times (10–120 min).
  • Analysis of mineralization temperatures (25–75°C) and CO2 flow rates (5–20 ml/min) to determine product outcomes.
  • Characterization of products using thermogravimetric analysis (TGA), X-ray diffraction (XRD), and scanning electron microscopy (SEM).
  • Increasing liquid-to-solid ratio from 0.4 to 10 led to higher CO2 uptake, resulting in calcite as the major product confirmed by XRD and SEM.
  • Extending mineralization time to 20 min improved CO2 uptake, but longer durations showed no significant impact.
  • Raising mineralization temperature from 25 to 50°C increased CO2 uptake, though a decrease was observed at 75°C.

Abstract

Carbon dioxide (CO 2 ) sequestration via mineralization is an efficient approach to permanently store this greenhouse gas in the form of solid carbonates. Moreover, annually increasing stocks and expensive landfills of cement kiln dust (CKD) necessitate groundbreaking solutions to utilize this CKD. One way to simultaneously utilize CKD and sequester CO 2 is CKD aqueous mineralization. This work explored CKD carbonation at various liquid to solid ratios (0.4–10), mineralization times (10–120 min), mineralization temperatures (25–75°C), and CO 2 flow rates (5–20 ml/min). The product analysis using thermogravimetric analysis (TGA), X-ray diffraction analysis (XRD), and scanning electron microscopy (SEM) was conducted to identify CO 2 governing mineralogical and chemical processes. The product characterizations revealed that an increase in liquid to solid ration from 0.4 to 10 facilitated higher CO 2 uptake and yielded calcite as major product that was further confirmed by XRD and SEM. An increase in mineralization time from 10 to 20 min improved CO 2 uptake, however, further increase in time even up to 120 min had no significant impact on CO 2 uptake. The product analysis indicated no influence of mineralization time on polymorph of calcite formed. An increment in mineralization temperature from 25 to 50°C produced more carbonated products (increased CO 2 uptake), however a further increase in temperature to 75°C showed a decrease in CO 2 uptake. The product morphology remained independent of mineralization temperature. The impact of CO 2 flow rate demonstrated that both the product yield (CO 2 uptake) and product morphology were insignificantly affected by change in CO 2 flow rates. These findings elucidate the CO 2 mineralization processes of CKD and are vital to explore CO 2 sequestration by CKD.

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Cite This Study

Khan et al. (2026) studied this question.

synapsesocial.com/papers/69eefcf4fede9185760d3b22https://doi.org/10.1016/j.nxsust.2026.100327
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