Air-stable Li<sub>5</sub>FeO<sub>4</sub> additive enabled by carbon coating for energy-dense lithium-ion batteries.

Liu, Canshang; Zhang, Hao; Zhou, Weiwei; Tian, Xu; Zhang, Tiantian; Niu, Sicheng; Li, Jianing; Cao, Minglei et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

Li<sub>5</sub>FeO<sub>4</sub> is a promising pre-lithiation additive for the positive electrode in lithium-ion batteries, offering the potential to enhance energy density. However, its susceptibility to air degradation presents a significant challenge for commercialization. In this study, we develop an effective carbon coating strategy utilizing pitch to improve the air stability of Li<sub>5</sub>FeO<sub>4</sub>. The coating process results in the formation of a compact carbon layer on the surface of Li<sub>5</sub>FeO<sub>4</sub> particles, enabling the coated Li<sub>5</sub>FeO<sub>4</sub> to retain a high specific capacity of 743.4 mAh g<sup>-1</sup> after 72 h of exposure to air with 20% relative humidity. This retention represents 92.3% of its initial capacity and 85.7% of its theoretical maximum capacity. In contrast, uncoated Li<sub>5</sub>FeO<sub>4</sub> undergoes rapid degradation, losing most of its electrochemical activity within just 4 h under identical conditions. Beyond improving air stability, the carbon coating enhances Li<sub>5</sub>FeO<sub>4</sub>'s specific capacity, rate capability, and cycling stability. To substantiate the practical application of carbon-coated Li<sub>5</sub>FeO<sub>4</sub>, we construct a pouch-type cell, which exhibits a 13.7% increase in energy density compared to the cell without the prelithiation additive. These findings collectively suggest that the carbon-coated Li<sub>5</sub>FeO<sub>4</sub> represents a viable strategy for advancing the commercial deployment of this material in lithium-ion batteries.