Journalartikel
Autorenliste: Connell, JG; Fuchs, T; Hartmann, H; Krauskopf, T; Zhu, YS; Sann, J; Garcia-Mendez, R; Sakamoto, J; Tepavcevic, S; Janek, J
Jahr der Veröffentlichung: 2020
Seiten: 10207-10215
Zeitschrift: Chemistry of Materials
Bandnummer: 32
Heftnummer: 23
ISSN: 0897-4756
Open Access Status: Green
DOI Link: https://doi.org/10.1021/acs.chemmater.0c03869
Verlag: American Chemical Society
Abstract:
Li7La3Zr2O12 (LLZO) garnet-based oxides are a promising class of solid electrolytes used as the separator in all-solid-state batteries (ASSBs). While LLZO is considered to have a wide electrochemical stability window, its intrinsic stability in contact with lithium metal is not sufficiently well understood, and there is still a debate on the key question of whether LLZO does or does not form passivation layers before and during cycling. Utilizing both in situ and operando X-ray photoelectron spectroscopy techniques, we reveal the presence of a kinetic barrier to the reduction of LLZO by Li metal, with the extent of oxygen-deficient interphase (ODI) formation depending sensitively on the energetics of Li metal arriving at the Li vertical bar LLZO interface. Despite the clear presence of a kinetic barrier to reduction, the electrochemical response of the Li vertical bar LLZO interface is unchanged by the presence of the ODI, indicating that ODI formation during electrochemical cycling does not hinder charge transfer across the Li vertical bar LLZO interface. Overall, these results reveal that the reactivity of LLZO with Li metal depends not only on the material properties of the adjoining phases (i.e., surface purity and active contact) and their resulting thermodynamic stability but also on the energy input at the interface and the resulting reaction kinetics. Furthermore, the presence of a kinetic barrier to reduction highlights the additional complexities governing the reactivity of solid-state interfaces in ASSBs and underscores the importance of operando characterization of interfacial stability to design more robust, high-performance protection strategies for solid electrolytes in contact with reactive electrodes.
Zitierstile
Harvard-Zitierstil: Connell, J., Fuchs, T., Hartmann, H., Krauskopf, T., Zhu, Y., Sann, J., et al. (2020) Kinetic versus Thermodynamic Stability of LLZO in Contact with Lithium Metal, Chemistry of Materials, 32(23), pp. 10207-10215. https://doi.org/10.1021/acs.chemmater.0c03869
APA-Zitierstil: Connell, J., Fuchs, T., Hartmann, H., Krauskopf, T., Zhu, Y., Sann, J., Garcia-Mendez, R., Sakamoto, J., Tepavcevic, S., & Janek, J. (2020). Kinetic versus Thermodynamic Stability of LLZO in Contact with Lithium Metal. Chemistry of Materials. 32(23), 10207-10215. https://doi.org/10.1021/acs.chemmater.0c03869