4.8 Article

Interface Engineering to Boost Thermal Safety of Microsized Silicon Anodes in Lithium-Ion Batteries

Journal

SMALL METHODS
Volume 6, Issue 7, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202200380

Keywords

battery safety; microsized silicon; solid electrolyte interphase; thermal behavior; thermal runaway prevention

Funding

  1. National Natural Science Foundation of China [51972132]
  2. Program for HUST Academic Frontier Youth Team [2016QYTD04]

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This study demonstrates highly reversible and thermotolerant microsized Si anodes for safe lithium-ion batteries (LIBs). Through systematic investigation of the electrochemical/mechanical/thermochemical behaviors of the solid electrolyte interphase (SEI), researchers successfully design a robust SEI that enables Si-based cells to have long-term durability and superior thermal safety. This work is of great significance for the industrial-scale application of next-generation LIBs with high energy densities and high safety.
Battery safety is vital to the application of lithium-ion batteries (LIBs), especially for high energy density cells applied in electric vehicles. As an anode material with high theoretical capacity and natural abundance, Si has received extensive attention for LIBs. However, it suffers from severe electrode pulverization during cycling due to large volume changes and an unstable solid electrolyte interphase (SEI), resulting in accelerated capacity fading and even safety hazards. Therefore, safe and long-term cycling of Si-based anodes, especially under high-temperature cycling, is highly challenging for state-of-the-art high-energy LIBs. The thermal behavior of SEI is crucial for a high safety battery as the decomposition of SEI is the first step in thermal runaway. Here, highly reversible and thermotolerant microsized Si anodes for safe LIBs are demonstrated. Comprehensive electrochemical/mechanical/thermochemical behaviors of the SEI are systematically investigated. The rational design of robust SEI endows the Si-based cells with long-term durability at elevated temperatures and superior thermal safety. This work paves the way for designing industrial-scale, low-cost, microsized Si anodes with applications in next-generation LIBs with high energy densities and high safety.

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