2018
DOI: 10.1149/2.0691813jes
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Effects of Commonly Evolved Solid-Electrolyte-Interphase (SEI) Reaction Product Gases on the Cycle Life of Li-Ion Full Cells

Abstract: In this work, it is found that cycling full cells in Ar, versus static conditions, significantly reduces their rate of capacity fade, which is attributed to the removal of gaseous reaction products from the cell. The presence of gases evolved in situ can account for a large fraction of the total capacity fade exhibited by the static cells tested. In attempt to understand the role of specific gaseous species commonly evolved during cycling, LiMn 2 O 4 and LiCoO 2 based full cells were further cycled in Ar-H 2 ,… Show more

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Cited by 12 publications
(12 citation statements)
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“…There is increasing experimental evidence that CEI components on cathode oxides are not static; they continue to evolve and/or become further oxidized as cycling proceeds to high voltages. 15,17,[30][31][32][33][34][35] This finding is not limited to the cathode side; evolution of SEI physical properties and chemical composition on anode surfaces has also been reported. [36][37][38][39] Recent differential and online electrochemical mass spectroscopy (DEMS, OEMS) measurements have proven extremely useful for corre-lating gas release with voltage changes.…”
Section: Introductionmentioning
confidence: 56%
See 2 more Smart Citations
“…There is increasing experimental evidence that CEI components on cathode oxides are not static; they continue to evolve and/or become further oxidized as cycling proceeds to high voltages. 15,17,[30][31][32][33][34][35] This finding is not limited to the cathode side; evolution of SEI physical properties and chemical composition on anode surfaces has also been reported. [36][37][38][39] Recent differential and online electrochemical mass spectroscopy (DEMS, OEMS) measurements have proven extremely useful for corre-lating gas release with voltage changes.…”
Section: Introductionmentioning
confidence: 56%
“…4). CO 2 release should be accompanied by the typical favorable entropy of ∼0.4-0.5 eV at T=300 K at estimated gas pressure of 0.1 atm., 35 which offsets the 0.08 eV endothermicity. In fact, all steps of further EC oxidation we have examined so far with the PBE0 method (Fig.…”
Section: Further Oxidation On Lmo and Lnmo: Pbe0 Predictionsmentioning
confidence: 88%
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“…Generation of gaseous by-products is detected as a source of capacity fade during the evolution processes ( Ma et al., 2018 ). Because a part of the decomposition products is gasses and soluble species, the number of insoluble SEI products can decrease gradually under aging conditions ( Campion et al., 2005 ; Kim et al., 2017 ; Sloop et al., 2003 ; R. Wang et al., 2017 ).…”
Section: Structure and Compositionmentioning
confidence: 99%
“…Decoupling the reactions at the interfaces of both cathode and anode electrodes for rechargeable batteries is one of the essential maneuvers in developing electrochemically stable electrolytes for the performance enhancement of rechargeable batteries. Therefore, it needs to have fundamental understandings of reactions at both cathode and anode interface separately. , However, the cathode||Li protocol is not easy to decouple the reaction at the interface due to the highly reactive nature of Li metal anode. The byproducts generated from cathode||Li cell are mixed, making it technically challenging to distinguish the reactions and products by the concerning electrode from the counter electrode.…”
Section: Decoupling Interfacial Reactions At Anode and Cathode Electr...mentioning
confidence: 99%