Depth-dependent oxygen redox activity in lithium-rich layered oxide cathodes
Lithium-rich materials, such as Li 1.2 Ni 0.2 Mn 0.6 O 2 , exhibit capacities not limited by transition metal redox, through the reversible oxidation of oxide anions. Here we offer detailed insight into the degree of oxygen redox as a function of depth within the material as it is charged and cycled...
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Veröffentlicht in: | Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2019, Vol.7 (44), p.25355-25368 |
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Hauptverfasser: | , , , , , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Lithium-rich materials, such as Li
1.2
Ni
0.2
Mn
0.6
O
2
, exhibit capacities not limited by transition metal redox, through the reversible oxidation of oxide anions. Here we offer detailed insight into the degree of oxygen redox as a function of depth within the material as it is charged and cycled. Energy-tuned photoelectron spectroscopy is used as a powerful, yet highly sensitive technique to probe electronic states of oxygen and transition metals from the top few nanometers at the near-surface through to the bulk of the particles. Two discrete oxygen species are identified, O
n
−
and O
2−
, where
n
< 2, confirming our previous model that oxidation generates localised hole states on O upon charging. This is in contrast to the oxygen redox
inactive
high voltage spinel LiNi
0.5
Mn
1.5
O
4
, for which no O
n
−
species is detected. The depth profile results demonstrate a concentration gradient exists for O
n
−
from the surface through to the bulk, indicating a preferential surface oxidation of the layered oxide particles. This is highly consistent with the already well-established core-shell model for such materials.
Ab initio
calculations reaffirm the electronic structure differences observed experimentally between the surface and bulk, while modelling of delithiated structures shows good agreement between experimental and calculated binding energies for O
n
−
.
Energy-tuned photoelectron spectroscopy demonstrates the surface preferential oxidation of oxygen for the Li-rich cathode material Li
1.2
Ni
0.2
Mn
0.6
O
2
upon charge. |
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ISSN: | 2050-7488 2050-7496 |
DOI: | 10.1039/c9ta09019c |