Understanding reactions at the electrode/electrolyte interface (EEI) is essential to developing strategies to enhance cycle life and safety of lithium batteries. Despite research in the past four decades, there is still limited understanding by what means different components are formed at the EEI and how they influence EEI layer properties. We review findings used to establish the well-known mosaic structure model for the EEI (often referred to as solid electrolyte interphase or SEI) on negative electrodes including lithium, graphite, tin, and silicon. Much less understanding exists for EEI layers for positive electrodes. High-capacity Li-rich layered oxides yLi2-xMnO3·(1-y)Li1-xMO2, which can generate highly reactive species toward the electrolyte via oxygen anion redox, highlight the critical need to understand reactions with the electrolyte and EEI layers for advanced positive electrodes. Recent advances in in situ characterization of well-defined electrode surfaces can provide mechanistic insights and strategies to tailor EEI layer composition and properties.

Gauthier, M., Carney, T., Grimaud, A., Giordano, L., Pour, N., Chang, H., et al. (2015). Electrode-Electrolyte Interface in Li-Ion Batteries: Current Understanding and New Insights. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 6(22), 4653-4672 [10.1021/acs.jpclett.5b01727].

Electrode-Electrolyte Interface in Li-Ion Batteries: Current Understanding and New Insights

GIORDANO, LIVIA;
2015

Abstract

Understanding reactions at the electrode/electrolyte interface (EEI) is essential to developing strategies to enhance cycle life and safety of lithium batteries. Despite research in the past four decades, there is still limited understanding by what means different components are formed at the EEI and how they influence EEI layer properties. We review findings used to establish the well-known mosaic structure model for the EEI (often referred to as solid electrolyte interphase or SEI) on negative electrodes including lithium, graphite, tin, and silicon. Much less understanding exists for EEI layers for positive electrodes. High-capacity Li-rich layered oxides yLi2-xMnO3·(1-y)Li1-xMO2, which can generate highly reactive species toward the electrolyte via oxygen anion redox, highlight the critical need to understand reactions with the electrolyte and EEI layers for advanced positive electrodes. Recent advances in in situ characterization of well-defined electrode surfaces can provide mechanistic insights and strategies to tailor EEI layer composition and properties.
Articolo in rivista - Review Essay
Electric batteries; Electrodes; Electrolytes; Graphite electrodes; Lithium; Manganese oxide; Redox reactions; Secondary batteries; Solid electrolytes; Developing strategy; Electrode surfaces; Electrode/electrolyte interfaces; In-situ characterization; Layer composition; Negative electrode; Positive electrodes; Solid electrolyte interphase; Lithium-ion batteries;
English
2015
6
22
4653
4672
reserved
Gauthier, M., Carney, T., Grimaud, A., Giordano, L., Pour, N., Chang, H., et al. (2015). Electrode-Electrolyte Interface in Li-Ion Batteries: Current Understanding and New Insights. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 6(22), 4653-4672 [10.1021/acs.jpclett.5b01727].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/111612
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