| [1] | Chiquier S., Patrizio P., Bui M., et al. (2022). A comparative analysis of the efficiency, timing, and permanence of CO2 removal pathways. Energy & Environ. Sci. 15:4389−4403. DOI:10.1039/D2EE01021F |
| [2] | Kantzas E. P., Val Martin M., Lomas M. R., et al. (2022). Substantial carbon drawdown potential from enhanced rock weathering in the United Kingdom. Nat. Geosci. 15:382−389. DOI:10.1038/s41561-022-00925-2 |
| [3] | Taylor L. L., Quirk J., Thorley R. M. S., et al. (2015). Enhanced weathering strategies for stabilizing climate and averting ocean acidification. Nat. Clim. Change 6:402−406. DOI:10.1038/nclimate2882 |
| [4] | Chen Y. and Kanan M. W. (2025). Thermal Ca2+/Mg2+ exchange reactions to synthesize CO2 removal materials. Nature 638:972−979. DOI:10.1038/s41586-024-08499-2 |
| [5] | Montserrat F., Renforth P., Hartmann J., et al. (2017). Olivine dissolution in seawater: implications for CO2 sequestration through enhanced weathering in coastal environments. Environ. Sci. Technol. 51:3960−3972. DOI:10.1021/acs.est.6b05942 |
| Yang Y., Xu W., Geng Z., et al. (2025). Enhanced strategies for carbon dioxide removal using natural minerals. The Innovation Materials 3:100145. https://doi.org/10.59717/j.xinn-mater.2025.100145 |
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Methods to accelerate weathering rate