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Anomalous interfacial stress generation during sodium intercalation/extraction in MoS 2 thin-film anodes
Author(s) -
Zhi Li,
Keren Jiang,
Faheem Khan,
Ankur Goswami,
Jun Liu,
Ali Passian,
Thomas Thundat
Publication year - 2019
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aav2820
Subject(s) - anode , stress (linguistics) , materials science , electrode , intercalation (chemistry) , compression (physics) , compressive strength , battery (electricity) , plateau (mathematics) , degradation (telecommunications) , optoelectronics , composite material , chemistry , electronic engineering , power (physics) , inorganic chemistry , philosophy , linguistics , engineering , mathematical analysis , physics , mathematics , quantum mechanics
Although the generation of mechanical stress in the anode material is suggested as a possible reason for electrode degradation and fading of storage capacity in batteries, only limited knowledge of the electrode stress and its evolution is available at present. Here, we show real-time monitoring of the interfacial stress of a few-layer MoS system under the sodiation/desodiation process using microcantilever electrodes. During the first sodiation with a voltage plateau of 1.0 to 0.85 V, the MoS exhibits a compressive stress (2.1 Nm), which is substantially smaller than that measured (9.8 Nm) during subsequent plateaus at 0.85 to 0.4 V due to the differential volume expansion of the MoS film. The conversion reaction to Mo below 0.1 V generates an anomalous compressive stress of 43 Nm with detrimental effects. These results also suggest the existence of a separate discharge stage between 0.6 and 0.1 V, where the generated stress is only approximately one-third of that observed below 0.1 V. This approach can be adapted to help resolve the localized stress in a wide range of electrode materials, to gain additional insights into mechanical effects of charge storage, and for long-lifetime battery design.

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