Trace doping of multiple elements enables stable battery cycling of LiCoO2 at 4.6 V
LiCoO 2 is a dominant cathode material for lithium-ion (Li-ion) batteries due to its high volumetric energy density, which could potentially be further improved by charging to high voltages. However, practical adoption of high-voltage charging is hindered by LiCoO 2 ’s structural instability at the...
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Veröffentlicht in: | Nature energy 2019-07, Vol.4 (7), p.594-603 |
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Hauptverfasser: | , , , , , , , , , , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | LiCoO
2
is a dominant cathode material for lithium-ion (Li-ion) batteries due to its high volumetric energy density, which could potentially be further improved by charging to high voltages. However, practical adoption of high-voltage charging is hindered by LiCoO
2
’s structural instability at the deeply delithiated state and the associated safety concerns. Here, we achieve stable cycling of LiCoO
2
at 4.6 V (versus Li/Li
+
) through trace Ti–Mg–Al co-doping. Using state-of-the-art synchrotron X-ray imaging and spectroscopic techniques, we report the incorporation of Mg and Al into the LiCoO
2
lattice, which inhibits the undesired phase transition at voltages above 4.5 V. We also show that, even in trace amounts, Ti segregates significantly at grain boundaries and on the surface, modifying the microstructure of the particles while stabilizing the surface oxygen at high voltages. These dopants contribute through different mechanisms and synergistically promote the cycle stability of LiCoO
2
at 4.6 V.
LiCoO
2
is a widely used cathode material in Li-ion batteries for applications such as portable electronics. Here, the authors report multiple-element doping to enable stable cycling of LiCoO
2
at high voltages that are not yet accessible with commercial Li-ion batteries. |
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ISSN: | 2058-7546 2058-7546 |
DOI: | 10.1038/s41560-019-0409-z |