New manganese dioxides for lithium batteries

Lithium/manganese dioxide primary batteries use heat treated manganese dioxide (HEMD), a defect pyrolusite structure material as the cathode active material. Ion exchange of the structural protons in electrolytic manganese dioxide (EMD) with lithium before heating results in formation of a lithium c...

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Veröffentlicht in:Journal of power sources 2007-03, Vol.165 (2), p.609-615
Hauptverfasser: Bowden, W., Bofinger, T., Zhang, F., Iltchev, N., Sirotina, R., Paik, Y., Chen, H., Grey, C., Hackney, S.
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Sprache:eng
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Zusammenfassung:Lithium/manganese dioxide primary batteries use heat treated manganese dioxide (HEMD), a defect pyrolusite structure material as the cathode active material. Ion exchange of the structural protons in electrolytic manganese dioxide (EMD) with lithium before heating results in formation of a lithium containing γ-MnO 2. Increased lithium hydroxide concentration and increased temperature lead to increased lithium levels. At 80 °C with a combination of LiOH and LiBr, almost all of the structural protons in MnO 2 are replaced by lithium resulting in a γ-MnO 2 phase substantially free of protons and containing about 1.8% Li. This highly substituted lithium containing MnO 2 is reduced at between 3.5 and 1.8 V and has a capacity of 250 mAh g −1. There are two reduction processes, one at 3.25 and the other at 2.9 V. TGA studies reveal two processes during heat treatment. Heating the lithium substituted MnO 2 to 350–400 °C results in a partially ordered HEMD-like MnO 2 (LiMD) phase with higher running voltage and superior discharge kinetics. Continued heating of the lithiated manganese dioxide to 450–480 °C under oxygen partial pressure can result in formation of a mixed phase containing both HEMD and a new, ordered MnO 2 phase (OMD). The intimately mixed HEMD/OMD composition has a discharge voltage near 2.9 V with a capacity about 220 mAh g −1. Heating exhaustively lithiated MnO 2 to 350–400 °C results in formation of the partially ordered LiMD MnO 2 phase as with the previous partially lithium substituted MnO 2. Additional heating of the highly lithium substituted MnO 2 to 450–480 °C under oxygen results in formation of the new OMD phase in substantially pure form. Discharge of the new OMD phase shows it has a discharge capacity near 200 mAh g −1 between 3.4 and 2.4 V versus lithium in a single, well-defined discharge process. OMD demonstrated good cycling against Li with no indication of formation of LiMn 2O 4 spinel after 80 deep discharge cycles.
ISSN:0378-7753
1873-2755
DOI:10.1016/j.jpowsour.2006.10.041