Publication | Closed Access
Effects of oxygen vacancies on the electrochemical performance of tin oxide
153
Citations
15
References
2012
Year
Oxygen VacanciesEngineeringInitial Coulombic EfficiencyChemistrySno2−δ NanocrystalsChemical EngineeringCorrosionPhotocatalysisSodium BatteryElectrode Reaction MechanismMaterials ScienceNanotechnologyElectrochemical Power SourceSurface ElectrochemistryElectrochemical PerformanceEnergy StorageSolid-state BatteryElectrochemical ProcessElectrochemistryTin OxideOxygen Reduction ReactionLi-ion Battery MaterialsNanomaterialsElectrochemical Energy StorageBatteries
Using an aberration-corrected transmission electron microscope, we observed the oxygen vacancies, profiled the concentration in the SnO2−δ nanocrystals on an atomic scale, and estimated the amount of oxygen vacancies to be ca. 3.3 atom%. The SnO2−δ nanocrystals show much improved initial Coulombic efficiency, rate capability and specific capacity compared with stoichiometric SnO2 when used as an anode material for lithium ion batteries.
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