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February 12, 2024Nature Communications85 citationsOpen Access

Structurally robust lithium-rich layered oxides for high-energy and long-lasting cathodes

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HJHo‐Young JangDEDonggun EumJCJiung Cho

Key Points

  • Balancing anionic and cationic redox in O2-type lithium-rich layered oxides achieves a discharge voltage of ~3.43 V and ~200 mAh g−1 capacity across extended cycles.
  • Excessive oxygen redox triggers asymmetric lattice breathing within the layered framework, inducing particle-level mechanical stress and microcrack formation during cycling.
  • Material analysis reveals an intrinsic capacity fading mechanism tied to oxygen redox capability, offering design principles for durable high-energy battery cathodes.

Abstract

Abstract O2-type lithium-rich layered oxides, known for mitigating irreversible transition metal migration and voltage decay, provide suitable framework for exploring the inherent properties of oxygen redox. Here, we present a series of O2-type lithium-rich layered oxides exhibiting minimal structural disordering and stable voltage retention even with high anionic redox participation based on the nominal composition. Notably, we observe a distinct asymmetric lattice breathing phenomenon within the layered framework driven by excessive oxygen redox, which includes substantial particle-level mechanical stress and the microcracks formation during cycling. This chemo-mechanical degradation can be effectively mitigated by balancing the anionic and cationic redox capabilities, securing both high discharge voltage (~ 3.43 V vs . Li/Li + ) and capacity (~ 200 mAh g −1 ) over extended cycles. The observed correlation between the oxygen redox capability and the structural evolution of the layered framework suggests the distinct intrinsic capacity fading mechanism that differs from the previously proposed voltage fading mode.

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Cite This Study

Jang et al. (2024) studied this question.

synapsesocial.com/papers/68e796dbb6db643587707ab1https://doi.org/10.1038/s41467-024-45490-x
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