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Ordered Oxygen Vacancies in the Lithium-Rich Oxide Li4CuSbO5.5, a Triclinic Structure Type Derived from the Cubic Rocksalt Structure.
Perez, Arnaud J; Vasylenko, Andrij; Surta, T Wesley; Niu, Hongjun; Daniels, Luke M; Hardwick, Laurence J; Dyer, Matthew S; Claridge, John B; Rosseinsky, Matthew J.
Afiliación
  • Perez AJ; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Vasylenko A; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Surta TW; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Niu H; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Daniels LM; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Hardwick LJ; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Dyer MS; Stephenson Institute for Renewable Energy, University of Liverpool, Chadwick Building, Peach Street, Liverpool L69 7ZF, United Kingdom.
  • Claridge JB; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
  • Rosseinsky MJ; Department of Chemistry, University of Liverpool, Crown Street, Liverpool L69 7ZD, United Kingdom.
Inorg Chem ; 60(24): 19022-19034, 2021 Dec 20.
Article en En | MEDLINE | ID: mdl-34870428
ABSTRACT
Li-rich rocksalt oxides are promising candidates as high-energy density cathode materials for next-generation Li-ion batteries because they present extremely diverse structures and compositions. Most reported materials in this family contain as many cations as anions, a characteristic of the ideal cubic closed-packed rocksalt composition. In this work, a new rocksalt-derived structure type is stabilized by selecting divalent Cu and pentavalent Sb cations to favor the formation of oxygen vacancies during synthesis. The structure and composition of the oxygen-deficient Li4CuSbO5.5□0.5 phase is characterized by combining X-ray and neutron diffraction, ICP-OES, XAS, and magnetometry measurements. The ordering of cations and oxygen vacancies is discussed in comparison with the related Li2CuO2□1 and Li5SbO5□1 phases. The electrochemical properties of this material are presented, with only 0.55 Li+ extracted upon oxidation, corresponding to a limited utilization of cationic and/or anionic redox, whereas more than 2 Li+ ions can be reversibly inserted upon reduction to 1 V vs Li+/Li, a large capacity attributed to a conversion reaction and the reduction of Cu2+ to Cu0. Control of the formation of oxygen vacancies in Li-rich rocksalt oxides by selecting appropriate cations and synthesis conditions affords a new route for tuning the electrochemical properties of cathode materials for Li-ion batteries. Furthermore, the development of material models of the required level of detail to predict phase diagrams and electrochemical properties, including oxygen release in Li-rich rocksalt oxides, still relies on the accurate prediction of crystal structures. Experimental identification of new accessible structure types stabilized by oxygen vacancies represents a valuable step forward in the development of predictive models.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Inorg Chem Año: 2021 Tipo del documento: Article País de afiliación: Reino Unido

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Revista: Inorg Chem Año: 2021 Tipo del documento: Article País de afiliación: Reino Unido