Cu Doping Increases Capacity Retention in LiNi0.6Mn0.2Co0.2O2 (NMC622) by Altering the Potential of the Ni-Based Redox Couple and Inhibiting Particle Pulverization

Author:

Woodley Christopher P.1ORCID,Cooper Rachel A.1,Bartlett Bart M.1ORCID

Affiliation:

1. Department of Chemistry, University of Michigan, 930 N. University Avenue, Ann Arbor, Michigan 48109-1055, United States

Funder

University of Michigan

Basic Energy Sciences

Division of Materials Research

Publisher

American Chemical Society (ACS)

Reference61 articles.

1. McKerracher, C.; Izadi-Najafabadi, A.; Chatterton, R.; Kou, N.; Albanese, N.; Soulopoulos, N.; Doherty, D.; Frith, J.; Grant, A.; Berryman, I.; Mi, S.; Asghar, A.; Abraham, T.C.; Boers, M.; Commerford, J.; Zamorano-Cadavid, A.; Fisher, R. Electric Vehicle Outlook, 2019; Bloomberg NEF: New York, 2019. https://legacy-assets.eenews.net/open_files/assets/2019/05/15/document_ew_02.pdf (accessed 2023-02-09).

2. Gupta, A.; Shukla, V. Lithium-Ion Battery Market; GMI/GMI1135; Global Market Insights, Selbyville, DE: 2023. https://www.gminsights.com/industry-analysis/lithium-ion-battery-market (accessed 2023-02-09).

3. Structural Changes and Thermal Stability of Charged LiNixMnyCozO2 Cathode Materials Studied by Combined In Situ Time-Resolved XRD and Mass Spectroscopy

4. Ethyl 2‐(2‐fluoroethoxy)ethyl carbonate as a new electrolyte additive for high‐voltage Li‐metal batteries

5. Oxygen Release and Its Effect on the Cycling Stability of LiNixMnyCozO2(NMC) Cathode Materials for Li-Ion Batteries

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