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Chemical capacitance measurements reveal the impact of oxygen vacancies on the charge curve of LiNi0.5Mn1.5O4-δ thin films.


ABSTRACT: The level of oxygen deficiency δ in high-voltage spinels of the composition LiNi0.5Mn1.5O4-δ (LNMO) significantly influences the thermodynamic and kinetic properties of the material, ultimately affecting the cell performance of the corresponding lithium-ion batteries. This study presents a comprehensive defect chemical analysis of LNMO thin films with oxygen vacancy concentrations of 2.4% and 0.53%, focusing particularly on the oxygen vacancy regime around 4 V versus Li+/Li. A set of electrochemical properties is extracted from impedance measurements as a function of state-of-charge for the full tetrahedral-site regime (3.8 to 4.9 V versus Li+/Li). A defect chemical model (Brouwer diagram) is derived from the data, providing a coherent explanation for all important trends of the electrochemical properties and charge curve. Highly resolved chemical capacitance measurements allow a refining of the defect model for the oxygen vacancy regime, showing that a high level of oxygen deficiency not only impacts the amount of redox active Mn3+/4+, but also promotes the trapping of electrons in proximity to an oxygen vacancy. The resulting stabilisation of Mn3+ thereby mitigates the voltage reduction in the oxygen vacancy regime. These findings offer valuable insights into the complex influence of oxygen deficiency on the performance of lithium-ion batteries based on LNMO.

SUBMITTER: Bumberger AE 

PROVIDER: S-EPMC10644792 | biostudies-literature | 2023 Nov

REPOSITORIES: biostudies-literature

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Chemical capacitance measurements reveal the impact of oxygen vacancies on the charge curve of LiNi<sub>0.5</sub>Mn<sub>1.5</sub>O<sub>4-<i>δ</i></sub> thin films.

Bumberger Andreas E AE   Ražnjević Sergej S   Zhang Zaoli Z   Friedbacher Gernot G   Fleig Juergen J  

Journal of materials chemistry. A 20231016 44


The level of oxygen deficiency <i>δ</i> in high-voltage spinels of the composition LiNi<sub>0.5</sub>Mn<sub>1.5</sub>O<sub>4-<i>δ</i></sub> (LNMO) significantly influences the thermodynamic and kinetic properties of the material, ultimately affecting the cell performance of the corresponding lithium-ion batteries. This study presents a comprehensive defect chemical analysis of LNMO thin films with oxygen vacancy concentrations of 2.4% and 0.53%, focusing particularly on the oxygen vacancy regime  ...[more]

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