Your browser doesn't support javascript.
loading
Carbon-based artificial SEI layers for aqueous lithium-ion battery anodes.
Subramanya, Usha; Chua, Charleston; He Leong, Victor Gin; Robinson, Ryan; Cruz Cabiltes, Gwenlyn Angel; Singh, Prakirti; Yip, Bonnie; Bokare, Anuja; Erogbogbo, Folarin; Oh, Dahyun.
Afiliación
  • Subramanya U; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Chua C; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • He Leong VG; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Robinson R; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Cruz Cabiltes GA; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Singh P; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Yip B; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
  • Bokare A; Biomedical Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA.
  • Erogbogbo F; Biomedical Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA.
  • Oh D; Chemical and Materials Engineering Department, Charles W. Davidson College of Engineering, San José State University One Washington Square San José CA 95192-0080 USA dahyun.oh@sjsu.edu.
RSC Adv ; 10(2): 674-681, 2020 Jan 02.
Article en En | MEDLINE | ID: mdl-35494428
Replacing flammable organic electrolytes with aqueous electrolytes in lithium-ion batteries (LIB) can greatly enhance the safety of next-generation energy storage systems. With the extended electrochemical stability window of electrolytes, 'water-in-salt' (WIS) electrolytes containing LIB presented significant performance improvements. However, the solubility limits of lithium salts in water restrain the extent of kinetic protection offered by the high salt concentration. Here, we report design strategies of anode structure to improve the cycle life of LIB with WIS electrolytes. We introduced partially graphitic protective carbon layers on anode particles using a versatile coating method. This protective layer not only improved charge transfer kinetics but also minimized the exposure of anode surface for water electrolysis. The effectiveness of anode structure developed in this study was exemplified on TiO2 anodes, where cycle performance and coulombic efficiency improved by 11 times and 29% respectively over the base anode material.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: RSC Adv Año: 2020 Tipo del documento: Article Pais de publicación: Reino Unido

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: RSC Adv Año: 2020 Tipo del documento: Article Pais de publicación: Reino Unido