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Capturing Carbon Dioxide by Co-Decorated Molybdenum Disulfide: Boosting Efficiency Achievement of a Porous Two-Dimensional Nanomaterial via DFT Study.

Maryam SamanianMohammad Hadi Ghatee
Published in: Langmuir : the ACS journal of surfaces and colloids (2023)
Stable and efficient conversion of carbon dioxide (CO 2 ) into useful products provides a desirable path toward achieving green fuel. Accurate sensing of CO 2 capacity is also desired and can be reached as a result of conversion or adsorption. In this study, the electronic and structural properties of cobalt (Co) transition metal doped over the two-dimensional (2D) porous molybdenum disulfide (P-MoS 2 ) surface toward CO 2 adsorption were studied using the D3-corrected density functional theory (DFT-D3) method. Results confirm that there are three most stable sites for Co decoration over P-MoS 2 , having led to a maximum number of CO 2 molecules each adsorbed on a Co atom. The Co atom intends to bind to the P-MoS 2 surface as a single, double, and double-sided catalyst. The Co binding capacity and CO 2 adsorption ability on the Co/P-MoS 2 including the most stable CO 2 possible structure were investigated. This work demonstrates maximizing CO 2 capture by providing the possibility of CO 2 adsorption on a double-sided Co-decorated P-MoS 2 . Therefore, thin-layer two-dimensional catalyst has great potential for CO 2 capture and storage. The charge transfer in the process of CO 2 adsorption complexation on Co/P-MoS 2 is high and encourages the development of high-quality 2D materials for well-organized gas sensing applications.
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