Understanding the Air-Exposure Degradation Chemistry at a Nanoscale of Layered Oxide Cathodes for Sodium-Ion Batteries
Понимание химии деградации при воздействии воздуха на наномасштабе слоистых оксидных катодов для натрий-ионных батарей
2018-12-05
SCID: 54.1/fuy6bszp
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Na+ leaching and formation of NaOH/Na2CO3/Na2CO3·H2ONaNi0.7Mn0.15Co0.15O2Ni dissolution and NiO surface accumulationair-exposure degradationlayered sodium transition-metal oxide cathodes
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Abstract (AI)
Undesired reactions between layered sodium transition-metal oxide cathodes and air impede their utilization in practical sodium-ion batteries. Consequently, a fundamental understanding of how layered oxide cathodes degrade in air is of paramount importance, but it has not been fully understood yet. Here a comprehensive study on a model material NaNi0.7Mn0.15Co0.15O2 reveals its reaction chemistry with air and the dynamic evolution of the degradation species upon air exposure. We find that besides the extraction of Na+ ions from the crystal lattice to form NaOH, Na2CO3, and Na2CO3·H2O in contact with air, nickel ions gradually dissolve from the bulk to form NiO and accumulate on the particle surface as revealed by subnanometer surface-sensitive time-of-flight secondary ion mass spectroscopy. The degradation species on the surface are insulating, leading to an increase in interfacial resistance and declined electrochemical performance. We also demonstrate a feasible surface coating strategy for suppressing the unfavorable degradation process. Understanding the degradation mechanism at a nanoscale can facilitate the future development of high-energy cathodes for sodium-ion batteries.
Key Findings
1
A feasible surface coating strategy is demonstrated to suppress the unfavorable air-induced degradation process.
2
Layered sodium transition-metal oxide cathode NaNi0.7Mn0.15Co0.15O2 reacts with air forming NaOH, Na2CO3, and Na2CO3·H2O via Na+ extraction from the lattice.
3
Nickel ions progressively dissolve from the bulk and form NiO, which accumulates on the particle surface during air exposure.
4
Subnanometer surface-sensitive time-of-flight secondary ion mass spectroscopy (ToF-SIMS) reveals the dynamic evolution and spatial distribution of degradation species at the nanoscale.
5
Surface degradation species are insulating, increasing interfacial resistance and causing declined electrochemical performance.
Research Object
Layered sodium transition-metal oxide cathode material NaNi0.7Mn0.15Co0.15O2
Research Subject
Air-exposure degradation chemistry and nanoscale evolution of surface degradation species (Na+ extraction forming NaOH/Na2CO3/Na2CO3·H2O, Ni dissolution and NiO/accumulation), and its effects on interfacial resistance and electrochemical performance
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2018-12-05
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