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P2-Type Moisture-Stable and High-Voltage-Tolerable Cathodes for High-Energy and Long-Life Sodium-Ion Batteries

Overview
Journal Nano Lett
Specialty Biotechnology
Date 2023 Feb 22
PMID 36811529
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Abstract

P2-NaNiMnO represents a promising cathode for Na-ion batteries, but it suffers from severe structural degradation upon storing in a humid atmosphere and cycling at a high cutoff voltage. Here we propose an in situ construction to achieve simultaneous material synthesis and Mg/Sn cosubstitution of NaNiMnO via one-pot solid-state sintering. The materials exhibit superior structural reversibility and moisture insensitivity. In-operando XRD reveals an essential correlation between cycling stability and phase reversibility, whereas Mg substitution suppressed the P2-O2 phase transition by forming a new Z phase, and Mg/Sn cosubstitution enhanced the P2-Z transition reversibility benefiting from strong Sn-O bonds. DFT calculations disclosed high chemical tolerance to moisture, as the adsorption energy to HO was lower than that of the pure NaNiMnO. A representative NaNiMgMnSnO cathode exhibits high reversible capacities of 123 mAh g (10 mA g), 110 mAh g (200 mA g), and 100 mAh g (500 mA g) and a high capacity retention of 80% (500 mA g, 500 cycles).

Citing Articles

Developing an abnormal high-Na-content P2-type layered oxide cathode with near-zero-strain for high-performance sodium-ion batteries.

Hu H, Li J, Liu Y, Zhu Y, Li H, Jia X Chem Sci. 2024; 15(14):5192-5200.

PMID: 38577355 PMC: 10988596. DOI: 10.1039/d3sc06878a.