DOE OSTI · 1721751
Microscopic Observation of Solid Electrolyte Interphase Bilayer Inversion on Silicon Oxide
Abstract
Silicon has been investigated in recent years as an alloying anode material to enhance gravimetric energy density in lithium-ion batteries. Although recent developments have suggested that silicon oxides exhibit improved cycling stability over pure Si, the origin of the improved cycling performance is still poorly understood. The initial solid electrolyte interphase (SEI) formation mechanisms on Si wafers with both native oxide and chemically etched thermal oxide coatings are investigated structurally, chemically, and morphologically in the nanoscale. After one electrochemical cycle, microscopy reveals that SEI formed on native SiO x features the typical SEI bilayer structure with a carbon-rich outer SEI layer and an inorganic-rich inner SEI layer. In contrast, the SEI formed on chemically etched thermal oxide shows an inversion in the structure. This work observes distinct initial SEI formation mechanisms on the HF-etched SiO 2 surface, which may be partially responsible for improved cycle life observed in SiO x -based anode materials.
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Stetson, Caleb, Schnabel, Manuel, Li, Zhifei, Harvey, Steven P., Jiang, Chun-Sheng, Norman, Andrew, DeCaluwe, Steven C., Al-Jassim, Mowafak, Burrell, Anthony. 2020-10-30. Microscopic Observation of Solid Electrolyte Interphase Bilayer Inversion on Silicon Oxide. https://doi.org/10.1021/acsenergylett.0c02081
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