Global decarbonization potential of CO<sub>2</sub> mineralization in concrete materials.

Driver, Justin G; Bernard, Ellina; Patrizio, Piera; Fennell, Paul S; Scrivener, Karen; Myers, Rupert J · Proc Natl Acad Sci U S A · 2024

Where this comes from

Abstract

CO<sub>2</sub> mineralization products are often heralded as having outstanding potentials to reduce CO<sub>2</sub>-eq. emissions. However, these claims are generally undermined by incomplete consideration of the life cycle climate change impacts, material properties, supply and demand constraints, and economic viability of CO<sub>2</sub> mineralization products. We investigate these factors in detail for ten concrete-related CO<sub>2</sub> mineralization products to quantify their individual and global CO<sub>2</sub>-eq. emissions reduction potentials. Our results show that in 2020, 3.9 Gt of carbonatable solid materials were generated globally, with the dominant material being end-of-life cement paste in concrete and mortar (1.4 Gt y<sup>-1</sup>). All ten of the CO<sub>2</sub> mineralization technologies investigated here reduce life cycle CO<sub>2</sub>-eq. emissions when used to substitute comparable conventional products. In 2020, the global CO<sub>2</sub>-eq. emissions reduction potential of economically competitive CO<sub>2</sub> mineralization technologies was 0.39 Gt CO<sub>2</sub>-eq., i.e., 15% of that from cement production. This level of CO<sub>2</sub>-eq. emissions reduction is limited by the supply of end-of-life cement paste. The results also show that it is 2 to 5 times cheaper to reduce CO<sub>2</sub>-eq. emissions by producing cement from carbonated end-of-life cement paste than carbon capture and storage (CCS), demonstrating its superior decarbonization potential. On the other hand, it is currently much more expensive to reduce CO<sub>2</sub>-eq. emissions using some CO<sub>2</sub> mineralization technologies, like carbonated normal weight aggregate production, than CCS. Technologies and policies that increase recovery of end-of-life cement paste from aged infrastructure are key to unlocking the potential of CO<sub>2</sub> mineralization in reducing the CO<sub>2</sub>-eq. footprint of concrete materials.