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Review and New Perspectives on Non-Layered Manganese Compounds as Electrode Material for Sodium-Ion Batteries

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MATERIALS
卷 16, 期 21, 页码 -

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MDPI
DOI: 10.3390/ma16216970

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post-lithium batteries; sodium-ion batteries; spinel; phosphate; multianion; manganese compounds

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After a delay of more than 30 years, sodium analogs are now entering the market as an alternative to lithium-ion batteries. These sodium-ion batteries address concerns about sustainability, production costs, safety, and toxicity. The electrode materials of these batteries can contain sodium, iron, or manganese, eliminating the need for cobalt cathode compounds and copper anode current collectors. Manganese, with its multiple oxidation states and abundance, is favored as a component in these batteries. However, further research is needed to explore the role of manganese in different structural families.
After more than 30 years of delay compared to lithium-ion batteries, sodium analogs are now emerging in the market. This is a result of the concerns regarding sustainability and production costs of the former, as well as issues related to safety and toxicity. Electrode materials for the new sodium-ion batteries may contain available and sustainable elements such as sodium itself, as well as iron or manganese, while eliminating the common cobalt cathode compounds and copper anode current collectors for lithium-ion batteries. The multiple oxidation states, abundance, and availability of manganese favor its use, as it was shown early on for primary batteries. Regarding structural considerations, an extraordinarily successful group of cathode materials are layered oxides of sodium, and transition metals, with manganese being the major component. However, other technologies point towards Prussian blue analogs, NASICON-related phosphates, and fluorophosphates. The role of manganese in these structural families and other oxide or halide compounds has until now not been fully explored. In this direction, the present review paper deals with the different Mn-containing solids with a non-layered structure already evaluated. The study aims to systematize the current knowledge on this topic and highlight new possibilities for further study, such as the concept of entatic state applied to electrodes.

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