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In situ scanning tunneling microscopy studies of the SEI formation on graphite electrodes for Li(+)-ion batteries. | LitMetric

AI Article Synopsis

  • The study focuses on the formation of the solid electrolyte interphase (SEI) on graphitic electrodes used in Li-ion batteries, using in situ electrochemical scanning tunneling microscopy (EC-STM) to observe changes during SEI formation in real-time.
  • Two methods were employed to analyze the topographical and crystallographic changes of the graphite electrode, revealing details about SEI precipitation and the impact of electrode potential on its formation and chemical composition.
  • Findings indicate that SEI formation remains reversible at potentials above 1.0 V vs. Li/Li(+), but becomes irreversible during further reduction due to the destruction of solvent molecular structures, leading to charge loss; the STM results were supported by

Article Abstract

The SEI-formation on graphitic electrodes operated as an Li(+)-ion battery anode in a standard 1 M LiPF6 EC/DMC (1 : 1) electrolyte has been studied in situ by EC-STM. Two different modes of in situ study were applied, one, which allowed to follow topographic and crystallographic changes (solvent cointercalation, graphite exfoliation, SEI precipitation on the HOPG basal plane) of the graphite electrode during SEI-formation, and the second, which gave an insight into the SEI precipitation on the HOPG basal plane in real time. From the in situ EC-STM studies, not only conclusions about the SEI-topography could be drawn, but also about the formation mechanism and the chemical composition, which strongly depend on the electrode potential. It was shown that above 1.0 V vs. Li/Li(+) the SEI-formation is still reversible, since the molecular structure of the solvent molecules remains intact during an initial reduction step. During further reduction, the molecular structures of the solvents are destructed, which causes the irreversible charge loss. The STM studies were completed by electrochemical methods, like cyclic voltammetry, the potentiostatic intermittent titration technique and charge/discharge tests of MCMB electrodes.

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Source
http://dx.doi.org/10.1039/c6nr00825aDOI Listing

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