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March 21, 2026ACS Energy Letters2 citations

Ultrasonic Study of Lithium-Ion Battery Degradation Induced by Transition Metal Dissolution

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KHKevin HuangYHYan HanZXZhangyating Xie

Key Points

  • This research aims to clarify the effects of individual transition metal ions on gas evolution and degradation in lithium-ion batteries.
  • Developed an operando system combining ultrasound imaging, electrochemical mass spectrometry, and impedance spectroscopy.
  • Simultaneously visualized gas accumulation and identified gas species in NMC||graphite pouch cells.
  • Tracked impedance growth during battery operation.
  • Mn2+ significantly lowers the onset potential for electrolyte reduction, increasing gas production.
  • Co2+ leads to delayed but substantial gassing, while Ni2+ demonstrates minimal gas production but significant impedance growth.
  • Gas reabsorption occurred during rest, increasing charge-transfer resistance without capacity recovery.

Abstract

Transition metal (TM) dissolution is a key degradation pathway in lithium-ion batteries. However, the roles of individual ions in gas evolution and interfacial degradation remain unclear. Here we developed an operando system coupling ultrasound imaging, differential electrochemical mass spectrometry, and electrochemical impedance spectroscopy to simultaneously visualize gas accumulation, identify gas species, and track impedance growth in NMC||graphite pouch cells. Mn2+ markedly lowers the onset potential for electrolyte reduction and shifts gaseous products from C2H4/CO toward H2/CO2, leading to persistent gassing and rapid performance decay. Co2+ causes delayed but substantial gassing, whereas Ni2+ generates little gas despite pronounced impedance growth. We also observe gas reabsorption during rest. However, it does not recover capacity and instead increases the charge-transfer resistance. Overall, the detrimental impact of TM ions follows Mn2+ > Co2+ > Ni2+. The operando methodology developed in this work is broadly applicable to investigating other gas-related battery degradation mechanisms.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69be386a6e48c4981c678da0https://doi.org/10.1021/acsenergylett.6c00411
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