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  Insights into a layered hybrid solid electrolyte and its application in long lifespan high-voltage all-solid-state lithium batteries

Yu, S., Schmohl, S., Liu, Z., Hoffmeyer, M., Schön, N., Hausen, F., et al. (2019). Insights into a layered hybrid solid electrolyte and its application in long lifespan high-voltage all-solid-state lithium batteries. Journal of Materials Chemistry A, 7(8), 3882-3894. doi:10.1039/c8ta11259b.

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 Creators:
Yu, Shicheng, Author
Schmohl, Sebastian, Author
Liu, Zigeng1, Author           
Hoffmeyer, Marija, Author
Schön, Nino, Author
Hausen, Florian, Author
Tempel, Hermann, Author
Kungl, Hans, Author
Wiemhöfer, Hans-D., Author
Eichel, Ruediger-A., Author
Affiliations:
1Research Department Schlögl, Max Planck Institute for Chemical Energy Conversion, Max Planck Society, ou_3023874              

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 Abstract: Direct integration of a metallic lithium anode with the ceramic Li1.3Al0.3Ti1.7(PO4)(3) (LATP) electrolyte into an all-solid-state battery is highly challenging due to their chemical and electrochemical incompatibility. Herein, a layered hybrid solid electrolyte is designed by coating the ceramic LATP electrolyte with a protective polymer electrolyte, polyphosphazene/PVDF-HFP/LiBOB. This polymer electrolyte comprises highly Li+ conductive polyphosphazene and mechanically stable PVDF-HFP as the polymer matrix, and the mobile lithium ions in the polymer layer are supplied by LiBOB. Equipped with both polymer and ceramic components, the hybrid electrolyte possesses favorable features, such as a flexible surface, high ionic conductivity, high chemical stability against lithium and wide electrochemical stability window (4.7 V), which all to help realize its application in all-solid-state lithium batteries. The prepared all-solid-state battery with a metallic lithium anode and high-voltage Li3V2(PO4)(3)/CNT cathode shows high capacity and excellent cycling performance with negligible capacity loss over 500 cycles at 50 degrees C. Furthermore, the analysis of the hybrid solid electrolyte after long-term cycling demonstrates outstanding electrode/electrolyte interfacial stability. This study suggests that use of solid organic-inorganic hybrid electrolyte is a promising approach to circumvent the mechanical, chemical and electrochemical limitations at the interface of electrodes and ceramic electrolyte for all-solid-state batteries.

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Language(s): eng - English
 Dates: 2019
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: ISI: 000459331600041
DOI: 10.1039/c8ta11259b
 Degree: -

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Title: Journal of Materials Chemistry A
  Abbreviation : J. Mater. Chem. A
Source Genre: Journal
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Publ. Info: Cambridge, UK : Royal Society of Chemistry
Pages: - Volume / Issue: 7 (8) Sequence Number: - Start / End Page: 3882 - 3894 Identifier: ISSN: 2050-7488
CoNE: https://pure.mpg.de/cone/journals/resource/2050-7488