Function and Application of Defect Chemistry in High-Capacity Electrode Materials for Li-Based Batteries

Chem Asian J. 2020 Nov 16;15(22):3620-3636. doi: 10.1002/asia.202000904. Epub 2020 Oct 12.

Abstract

Current commercial Li-based batteries are approaching their energy density limitation, yet still cannot satisfy the energy density demand of the high-end devices. Hence, it is critical to developing advanced electrode materials with high specific capacity. However, these electrode materials are facing challenges of severe structural degradation and fast capacity fading. Among various strategies, constructing defects in electrode materials holds great promise in addressing these issues. Herein, we summarize a series of significant defect engineering in the high-capacity electrode materials for Li-based batteries. The detailed retrospective on defects specification, function mechanism, and corresponding application achievements on these electrodes are discussed from the view of point, line, planar, volume defects. Defect engineering can not only stabilize the structure and enhance electric/ionic conductivity, but also act as active sites to improve the ionic storage and bonding ability of electrode materials to Li metal. We hope this review can spark more perspectives on evaluating high-energy-density Li-based batteries.

Keywords: Li-based batteries; defects engineering; doping; electrode materials; vacancy.

Publication types

  • Review