Stabilizing Layered Structure in Aqueous Electrolyte via Dynamic Water Intercalation/Deintercalation.
basic_science · Level V
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- Record sourced from PubMed, PMID 35040212.
- Also identified by DOI 10.1002/adma.202108541.
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Abstract
Aqueous lithium-ion batteries (ALIBs) with nonflammable feature attract great attention for large-scale energy storage. However, the layered cathode materials (such as LiCoO<sub>2</sub> ) present serious capacity decay in ALIBs. The degradation mechanism of layered cathode materials in ALIBs is still not clear and an effective strategy to improve cycling stability remains a great challenge. In this work, the authors use LiCoO<sub>2</sub> as a typical example to investigate its structural degradation in aqueous electrolytes. It is found that H<sup>+</sup> insertion accelerated irreversible layered-to-spinel phase transition is the main reason causing structural degradation and fast capacity fading in LiCoO<sub>2</sub> . Subsequently, Li-excess Li<sub>1+</sub> <sub>t</sub> Co<sub>1-</sub> <sub>t</sub> O<sub>2-</sub> <sub>t</sub> with intermediate spin Co<sup>3+</sup> is developed to mitigate H<sup>+</sup> influence and the adverse phase transition in aqueous electrolyte. It is interesting to discover that reversible water intercalation/deintercalation occurs in the layered structure during charge/discharge, which effectively suppresses the layered-to-spinel phase transition with cycling. Benefiting from the stabilized layered structure, the Li-excess Li<sub>1.08</sub> Co<sub>0.92</sub> O<sub>1.92</sub> shows a significantly improved cycling performance in the neutral aqueous electrolyte with a large specific capacity and excellent rate capability. This work provides a promising structural regulation strategy for the layered cathode materials, enabling their potential application in ALIBs.