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April 18, 2026Advanced Materials1 citations

Quantifying Gas‐Phase Crosstalk and SiO/Gr Reactivity Competition Governing Thermal Runaway in Composite‐Anode Batteries

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WZWei ZengQDQiangling DuanUniversity of Science and Technology of ChinaYYYongbing YueUniversity of Science and Technology of China

Key Points

  • To explore the mechanisms of thermal runaway in silicon-graphite composite anodes in lithium-ion batteries.
  • Conducted systematic analyses of heat and gas generation.
  • Examined reaction kinetics between anode gases and cathode materials.
  • Utilized mechanistic modeling to assess reactivity competition between silicon and graphite.
  • Heat from anode-derived gases triggers self-heating before SEI decomposition.
  • Lithium in graphite is consumed first at lower temperatures, while lithium-silicon reacts at higher temperatures.
  • Higher silicon content lowers the self-heating onset temperature but raises the peak heat of thermal runaway.

Abstract

Silicon-graphite composite anodes are pivotal for boosting the energy density of commercial lithium-ion batteries, yet this gain inevitably intensifies internal reactivity and aggravates safety risks. However, the thermal runaway mechanisms of these high-energy-density cells remain incompletely elucidated, hindering safety improvements. Herein, we combine systematic analyses of heat and gas generation, reaction kinetics, and mechanistic modeling to quantitatively unravel the contributions of gas-phase crosstalk and the competitive reactions between silicon and graphite in driving battery thermal runaway. We demonstrate that the heat released from reactions between anode-derived reductive gases and the cathode occurs prior to SEI decomposition and serves as the primary trigger for self-heating. Furthermore, the distinct reactivity of graphite and silicon dictates the sequence of lithium consumption: lithium in graphite is preferentially released to react with the electrolyte at lower temperatures, while the lithium-silicon alloy reacts predominantly with the cathode at elevated temperatures. Increasing silicon content reduces the onset temperature of self-heating while elevating the triggering temperature and peak temperature of thermal runaway. This study highlights the critical role of gas-phase crosstalk and competitive lithium reactions in dictating thermal runaway behavior, providing essential insights for the rational design of safer high-energy-density batteries with silicon-graphite composite anodes.

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Cite This Study

Zeng et al. (2026) studied this question.

synapsesocial.com/papers/69e3201440886becb653f381https://doi.org/10.1002/adma.73100
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