Energy storage technologies are essential for modern applications, with batteries being the most common solution. However, the increasing demands of today's rapidly evolving society highlight the need for next-generation battery materials that offer higher energy density, longer lifespan, lower cost, and improved safety. To meet these requirements, researchers are actively investigating novel materials and alternative battery systems. A clear understanding of their underlying electrochemical processes is crucial for transitioning these innovations into practical applications. In this work, first-principles calculations are performed to investigate the suitability of a two-dimensional CoSe monolayer as an anode material for Na-ion batteries, with the objective of evaluating its potential for energy storage applications. Our simulations show that the pristine and Na-adsorbed CoSe systems exhibit metallic behavior, thereby yielding excellent electronic conductivity and a low activation energy barrier of 0.33 eV, which facilitates efficient sodiation and desodiation. Notably, the adsorbed NaCoSe monolayer offers several stable adsorption sites, leading to a high theoretical capacity of 583.09 mA hg −1 and a low average open-circuit voltage of 0.88 V, respectively. This study offers key insights into optimizing anode materials for enhanced Na-ion battery performance. High Na storage capacity, suitable voltage profile, and high electronic conductivity designate CoSe as an outstanding anode for SIBs. • The intrinsic Na-storage mechanism of 2D CoSe is investigated. • Both pristine and Na-adsorbed CoSe exhibit metallic behavior, ensuring excellent electronic conductivity. • A low Na-ion diffusion energy barrier of 0.33 eV enables fast sodiation and desodiation kinetics. • Multiple Na sites yield high capacity (583.09 mA h g −1 ) and a low average open-circuit voltage of 0.88 V.
Ali et al. (Fri,) studied this question.
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