First-principles computational studies on Na+ diffusion in Li-doped P3-type NaMnO2 as cathode material for Na-ion batteries
Na-ion diffusion kinetics is a key factor that decided the charge/discharge rate of the electrode materials in Na-ion batteries. In this work, two extreme concentrations of NaMnO 2 and Na 2/3 Li 1/6 Mn 5/6 O 2 are considered, namely, the vacancy migration of Na ions in the fully intercalated and the...
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Veröffentlicht in: | Journal of Central South University 2022-09, Vol.29 (9), p.2930-2939 |
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Sprache: | eng |
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Zusammenfassung: | Na-ion diffusion kinetics is a key factor that decided the charge/discharge rate of the electrode materials in Na-ion batteries. In this work, two extreme concentrations of NaMnO
2
and Na
2/3
Li
1/6
Mn
5/6
O
2
are considered, namely, the vacancy migration of Na ions in the fully intercalated and the migration of Na ions in the fully de-intercalated. The Na-vacancy and Na
+
distribution in NaMnO
2
migrated along oxygen dumbbell hop (ODH) and tetrahedral site hop (TSH), and the migration energy barriers were 0.374 and 0.296 eV, respectively. In NaLi
1/6
Mn
5/6
O
2
, the inhomogeneity of Li doping leads to the narrowing of the interlayer spacing by 0.9% and the increase of the energy barrier by 53.8%. On the other hand, due to the alleviation of Jahn-Teller effect of neighboring Mn, the bonding strength of Mn-O was enhanced, so that the energy barrier of path 2–3 in Mn-L1 and Mn-L2 was the lowest, which was 0.234 and 0.424 eV, respectively. In Na
1/6
Li
1/6
Mn
5/6
O
2
, the migration energy barriers of Na-L2 and Na-L3 are 1.233 and 0.779 eV, respectively, because Li
+
migrates from the transition (TM) layer to the alkali metal (AM) layer with Na
+
migration, which requires additional energy. |
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ISSN: | 2095-2899 2227-5223 |
DOI: | 10.1007/s11771-022-5137-z |