| [1] | Lin C. H., Wan C., Ru Z., et al. (2024). Electrified thermochemical reaction systems with high-frequency metamaterial reactors. Joule 8:2938−2949. DOI:10.1016/j.joule.2024.07.017 |
| [2] | Ye R., Ma L., Hong X., et al. (2024). Boosting low‐temperature CO2 hydrogenation over Ni‐based catalysts by tuning strong metal‐support interactions. Angew. Chem. 136:e202317669. DOI:10.1002/anie.202317669 |
| [3] | Du K., Guo J., Song C., et al. (2025). Persistent photothermal CO2 methanation without external energy input. Energy Environ.Sci. 18:1255−1261. DOI:10.1039/D4EE04849K. DOI:10.1039/D4EE04849K |
| [4] | Jiang H., Wang L., Kaneko H., et al. (2023). Light-driven CO2 methanation over Au-grafted Ce0.95Ru0.05O2 solid-solution catalysts with activities approaching the thermodynamic limit. Nat. Cata. 6:519-530. DOI:10.1038/s41929-023-00970-z |
| [5] | Li Y., Bai X., Yuan D., et al. (2022). General heterostructure strategy of photothermal materials for scalable solar-heating hydrogen production without the consumption of artificial energy. Nat. Commun. 13:776. DOI:10.1038/s41467-022-28364-y |
| Yang Z., Jiang B., Wang P., et al. (2025). Making fuels on mars by sabatier reaction. The Innovation Energy 2:100086. https://doi.org/10.59717/j.xinn-energy.2025.100086 |
To request copyright permission to republish or share portions of our works, please visit Copyright Clearance Center's (CCC) Marketplace website at marketplace.copyright.com.
Fuels on Mars.