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Chemical preintercalation of magnesium ions into α-MoO3 structure for improved electrochemical stability in Li-ion cells
Journal article   Peer reviewed

Chemical preintercalation of magnesium ions into α-MoO3 structure for improved electrochemical stability in Li-ion cells

Darrell Omo-Lamai, Xinle Zhang, Ryan Andris, Michael J. Zachman and Ekaterina Pomerantseva
Journal of alloys and compounds, v 1005, 175954
15 Nov 2024
url
https://www.osti.gov/biblio/2429638View
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Abstract

Chemistry Chemistry, Physical Materials Science, Multidisciplinary Metallurgy & Metallurgical Engineering Science & Technology Materials Science Physical Sciences Technology
Chemical preintercalation of layered materials, used as electrodes in intercalation-based energy storage devices, represents a promising strategy to enhance electrochemical stability and extend cycle life. However, standardized synthesis approaches for the chemical preintercalation of diverse ions into various layered materials are lacking, necessitating the development of specific synthesis routes for each ion and layered phase combination. In this study, we present the first successful demonstration of Mg2+ ion chemical preintercalation into the interlayer region of alpha-MoO3, revealing its stabilizing effect during cycling in non-aqueous Li-ion cells. Using ethanol during hydrothermal treatment facilitated molybdenum reduction, which was critical for Mg2+ ion preintercalation. Interestingly, we found that Mg preintercalation was accompanied by the incorporation of water. Mgpreintercalated alpha-MoO3 exhibited enhanced charge storage capacity, electrochemical stability, and power capability compared to pristine alpha-MoO3 lectrodes. This improved performance is attributed to the structural stabilization provided by Mg2+ pillars, which prevent undesirable phase transformations during repeated intercalation/deintercalation, and increased Li+ ion diffusion due to the shielding of electrostatic interactions between electrochemically cycled ions and the alpha-MoO3 lattice, enabled by structural water. Our study offers new insights into developing chemical preintercalation synthesis approaches that can be broadly applied to a wide range of pillaring ions and layered material hosts.

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Collaboration types
Domestic collaboration
Web of Science research areas
Chemistry, Physical
Materials Science, Multidisciplinary
Metallurgy & Metallurgical Engineering
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