Issue 12, 2024

Mixed anion effects on structural and electrochemical characteristics of Li4Ti5O12 for high-rate and durable anode materials

Abstract

Lithium titanate (Li4Ti5O12 or LTO) is a zero-strain lithium-insertion anode that experiences no volume change during the charge–discharge cycles. Combining experimental and computational approaches, this study reveals that the exceptional rate capability and cyclability of LTO anodes can be achieved through the utilization of mixed-anion materials, which may possess fundamentally distinct kinetic mechanisms compared to oxides. By incorporating halogen ions (F, Cl), electron conductivity is enhanced via d-electron doping. Additionally, the repulsion between Li+ ions in the transition state and the alteration in Li's coordination number significantly affects the energy profile of Li+ ion diffusion along the most energetically favorable pathway in the LTO lattice. Notably, F or Cl doping on the LTO surface significantly reduced the presence of pentacoordinate Ti atoms on the surface due to halide bonding, resulting in mitigation of electrode deformation due to gas evolution, which is a typical characteristic of LTO electrodes. These novel insights offer new avenues for discovering high-rate electrode materials capable of delivering high cyclability.

Graphical abstract: Mixed anion effects on structural and electrochemical characteristics of Li4Ti5O12 for high-rate and durable anode materials

Supplementary files

Article information

Article type
Paper
Submitted
13 Jun 2023
Accepted
10 Jan 2024
First published
11 Jan 2024

J. Mater. Chem. A, 2024,12, 7107-7121

Mixed anion effects on structural and electrochemical characteristics of Li4Ti5O12 for high-rate and durable anode materials

H. Kim, D. Kim, K. Hara, H. Shiiba, Y. Charles-Blin, E. Otal, H. Tanaka, K. Teshima, G. Sánchez-Santolino, R. Ishikawa, Y. Ikuhara and N. Zettsu, J. Mater. Chem. A, 2024, 12, 7107 DOI: 10.1039/D3TA03494A

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