RT Journal Article T1 Influence of sodium and potassium proportion on the adsorption of methanol and water on LTA zeolites at high temperature A1 Pascual Muñoz, Gonzalo A1 Larriba Martínez, Marcos A1 Águeda Maté, Vicente Ismael A1 Delgado Dobladez, José Antonio A1 Calero Berrocal, Rubén AB Catalytic hydrogenation of CO2 or CO, obtained from biomass gasification, is the most used technology to produce renewable methanol. The main problem is that the reactions are controlled by equilibrium, achieving low conversions to methanol, leading to high purification costs and reagent recirculation rates. At 250 °C and 50 bar, the equilibrium conversion of CO2 is around 25%, and methanol selectivity is about 64%. The process can be improved by a sorption-enhanced reaction process (SERP), removing the reaction products in situ and overcoming the equilibrium. To carry out the process, adsorbents with high affinity to the products at high temperatures, like LTA zeolites, are required. Experimental data on methanol and water adsorption at reaction temperatures is quite scarce in the literature, and it is usually assumed that methanol is not adsorbed onto 4A and 3A zeolites. This information is required to design a SERP process with this adsorbent. In this work, the influence of sodium and potassium proportion on the adsorption of methanol and water on LTA zeolites is studied by measuring Henry's adsorption equilibrium constants and reciprocal diffusion time constants. Sodium LTA zeolites (4A) strongly adsorb water and methanol. Potassium-rich LTA zeolites (3A) have higher water/methanol selectivity than sodium-rich LTA zeolites. PB ELSEVIER YR 2023 FD 2023-10-01 LK https://hdl.handle.net/20.500.14352/125560 UL https://hdl.handle.net/20.500.14352/125560 LA eng NO Gonzalo Pascual-Muñoz, Rubén Calero-Berrocal, Marcos Larriba, V. Ismael Águeda, José Antonio Delgado, Influence of sodium and potassium proportion on the adsorption of methanol and water on LTA zeolites at high temperature, Microporous and Mesoporous Materials, Volume 360, 2023, 112669, ISSN 1387-1811, https://doi.org/10.1016/j.micromeso.2023.112669. (https://www.sciencedirect.com/science/article/pii/S1387181123002457) NO Ministry of Economy and Competitiveness NO Ministry of Science, Innovation and University DS Docta Complutense RD 21 mar 2026