A tiny amount of electrode additive breaks the dilemma of achieving high energy density and fast charging lithium-ion battery cathode

  • Jing Zhang
  • , Longhao Cao
  • , Jingxiong Yu
  • , Jie Gao
  • , Yingfeng Tu
  • , Ya-Jun Cheng
  • , Wenwen Xue
  • , Yonggao Xia
  • , Yudai Huang

Research output: Journal PublicationArticlepeer-review

Abstract

It is crucial to achieve high energy density and fast charging simultaneously for automotive lithium-ion batteries. The nickel-rich layered oxide LiNi0.8Co0.1Mn0.1O2 (NCM811) cathode enables high energy density due to its high theoretical capacity and high working voltage. However, the fast charging performance is compromised because the electrode-electrolyte interface kinetics deteriorates when working at high voltage. A new approach is proposed to solve this dilemma, where [60] Fullerenoacetic acid (C60-COOH) is used to tune the interface structure of the NCM811. The carboxylic acid functional group ensures preferential deposition of C60 onto the NCM811 surface through the reaction with the surface residual alkaline species/transition metals. An electronic and ionic conductive thin coating layer is formed on the NCM811 surface, which inhibits electrolyte decomposition and facilitates formation of high voltage stable cathode electrolyte interface. With 0.50 wt.‰ of C60-COOH, the NCM811 cathode exhibits significantly improved electrochemical performance at 4.6 V in terms of reversible capacity, and capacity retention ratio, where an exceptional fast charging/discharging performance at 10 C is demonstrated as well. This work is of great significance for promoting high energy density and fast charging automotive lithium-ion batteries.
Original languageEnglish
Article number500083
JournalEnergy Materials
Volume5
Issue number8
DOIs
Publication statusPublished - 21 Apr 2025

Free Keywords

  • Nickel-rich layered cathode
  • fullerene
  • high energy density
  • fast charging
  • lithium-ion battery

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