Citation: Feifan Zhao, Feiyan Xu, Jiaguo Yu. Interfacial stabilization of alkali metal oxides on carbon spheres for high-performance CO2 chemisorption[J]. Acta Physico-Chimica Sinica, ;2026, 42(5): 100234. doi: 10.1016/j.actphy.2025.100234 shu

Interfacial stabilization of alkali metal oxides on carbon spheres for high-performance CO2 chemisorption

  • Efficient capture of low-concentration carbon dioxide (CO2) requires chemisorbents that couple strong reactivity with long-term structural stability. Alkali metal oxides are promising candidates but suffer from rapid sintering that severely reduces accessible active sites. Here we develop a universal interfacial strategy that immobilizes Li2O, Na2O, and K2O as highly dispersed amorphous domains on hollow carbon spheres (named Li-HCS, Na-HCS, and K-HCS) forming robust M–O–C anchor sites. These interfacial structures prevent oxide migration, enhance surface basicity, and significantly strengthen CO2 binding. Among the alkali metal-loaded hollow carbon spheres, K-HCS exhibits the highest CO2 uptake (4.9 mmol g−1 at 273 K and 1bar), fastest adsorption kinetics (13.56 mol kg−1 h−1 at 313 K and 1bar), and optimal low-pressure removal efficiency (44% at 273 K and 0.15 bar). Density functional theory calculations further reveal a monotonic increase in adsorption strength and molecular activation from Li to Na to K, driven by enhanced electron donation and polarizability. This work establishes a broadly applicable route for stabilizing alkali metal oxides and provides mechanistic insights for advancing low-pressure CO2 capture materials.
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