Sheng YAN, Jiean Shen, Xiaodong Li, Lecan Huang, Jinchen Ma, H. Vicky Zhao
Direct air capture (DAC) technology employs adsorbent materials to selectively extract carbon dioxide (CO 2 ) directly from ambient atmospheric air. The development of high-efficiency and energy-efficient adsorbents is pivotal to the successful deployment of DAC. In this study, sodium- and potassium-based adsorbents were synthesized via the equal volume impregnation method, employing γ-Al 2 O 3 and TiO 2 as supports and Na 2 CO 3 and K 2 CO 3 as active components, respectively. The CO 2 adsorption performances of the as-prepared adsorbents were systematically evaluated using a fixed-bed reactor system. Thermodynamic analysis indicated that the Langmuir isothermal adsorption model accurately described the equilibrium CO 2 adsorption behaviors of four kinds of adsorbents. Additionally, use of the Avrami model enabled accurate analysis of the associated kinetic mechanisms. The environmental relative humidity (RH) and desorption temperature affected CO 2 adsorption capacities. Notably, a maximum CO 2 adsorption capacity of 1.19 mmol/g was achieved at 78.7% RH during 10 adsorption–desorption cycles by forming KHCO 3 using K/TiO 2 powder materials. The CO 2 adsorption capacity of 0.409–0.507 mmol/g was acceptable for K/TiO 2 pellets during 20 adsorption–desorption cycles, demonstrating good prospects for industrial DAC application.