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February 22, 2026Nature Reviews Chemistry0 citations

Understanding the degradation complexity of ultrahigh-energy lithium metal batteries

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WDWei DengBQBao QiuJCJiahang Chen

Key Points

  • This review aims to understand the lifespan and failure mechanisms of lithium metal batteries.
  • Review of literature on lithium metal batteries
  • Assessment of specific energy achievements and challenges
  • Examination of failure mechanisms and electrochemical implications
  • Lithium metal batteries can exceed 600 Wh kg−1 specific energy.
  • Failure mechanisms include structural destabilization of the cathode and dendrite growth at the anode.
  • Accurate assessment of lifespan and active Li loss remains challenging.

Abstract

The combination of Li-rich layered oxide cathodes and lithium metal anodes enables lithium metal batteries (LMBs) to achieve specific energies exceeding 600 Wh kg −1 , which is a crucial threshold requiring the activation of anionic oxygen-redox of cathode. The specific energy is attained owing to oxygen-redox reactions at the cathode and reversible Li plating–stripping at the anode, but these processes also induce distinct failure mechanisms. Structural destabilization at the cathode and anodic dendrite growth cause cell-level failures that impact the lifespan of LMBs more profoundly than material degradation alone. Moreover, the presence of lithium metal anodes obscures the detection of active Li loss, often leading to misinterpretations related to capacity fading and cycle life. This Review examines the progress in realizing 600 Wh kg −1 LMBs and understanding their lifespan failure mechanisms. We discuss the challenges in accurately assessing the lifespan and Li loss pathways of LMBs, and we elucidate the fundamental chemistry mechanisms driving both material-level and cell-level failures. In particular, the electrochemical implications of cell parameters, cell assembly and operating conditions on the lifespan are highlighted. We also outline the gaps in knowledge and advanced techniques required to decipher detailed failure modes for LMBs with oxygen-redox reactions and Li plating–stripping.

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Cite This Study

Deng et al. (2026) studied this question.

synapsesocial.com/papers/699a534bfdaf4e3c1268edc3https://doi.org/10.1038/s41570-026-00801-2
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