Ceramic–polymer solid electrolytes, combined with Li metal anodes, hold the promise for safer and more energetically dense battery technologies, as long as key interfacial challenges are fully understood and solved. Here, we investigate a garnet–PEO(LiTFSI) composite electrolyte system, the garnet filler being Li6.55Ga0.15La3Zr2O12 (LLZO) microparticles. A “soft” mechanical milling process ensures good miscibility between the garnet and polymer phases over a wide range of volume fraction (up to 70 vol % garnet). Excellent degree of structural and chemical homogeneity is achieved without degradation nor segregation, even at the local level, as confirmed by solid-state NMR spectroscopy, electron microscopy and gel permeation chromatography. ...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...
Solid state energy storage devices with solid state electrolytes (SSEs) can potentially address Li d...
Garnet-type structured lithium ion conducting ceramics represent a promising alternative to liquid-b...
Due to the intrinsically high ionic conductivity and good interfacial stability towards lithium, gar...
All-solid-state batteries including a garnet ceramic as electrolyte are potential candidates to repl...
Unlocking the full potential of solid-state electrolytes (SSEs) is key to enabling safer and more-en...
The Li ion conducting garnet Li7La3Zr2O12 (LLZO) has attracted substantial interest as a solid elect...
Garnet solid-state electrolytes are promising for lithium metal batteries in terms of safety and sta...
The instability and Li2CO3 contaminants of garnet-type electrolytes exposed to air could lead to in ...
Garnet-type structured lithium ion conducting ceramics represent a promising alternative to liquid-b...
High grain-boundary resistance, Li-dendrite formation, and electrode/Li interfacial resistance are t...
Solid lithium ion conductors represent a promising class of materials for next generation high energ...
The successful development of all-solid-state batteries will provide solutions for many problems fac...
Lithium carbonate on the surface of garnet blocks Li+ conduction and causes a huge interfacial resis...
All‐solid‐state lithium‐ion batteries (ASSLIBs) are promising alternatives to conventional organic e...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...
Solid state energy storage devices with solid state electrolytes (SSEs) can potentially address Li d...
Garnet-type structured lithium ion conducting ceramics represent a promising alternative to liquid-b...
Due to the intrinsically high ionic conductivity and good interfacial stability towards lithium, gar...
All-solid-state batteries including a garnet ceramic as electrolyte are potential candidates to repl...
Unlocking the full potential of solid-state electrolytes (SSEs) is key to enabling safer and more-en...
The Li ion conducting garnet Li7La3Zr2O12 (LLZO) has attracted substantial interest as a solid elect...
Garnet solid-state electrolytes are promising for lithium metal batteries in terms of safety and sta...
The instability and Li2CO3 contaminants of garnet-type electrolytes exposed to air could lead to in ...
Garnet-type structured lithium ion conducting ceramics represent a promising alternative to liquid-b...
High grain-boundary resistance, Li-dendrite formation, and electrode/Li interfacial resistance are t...
Solid lithium ion conductors represent a promising class of materials for next generation high energ...
The successful development of all-solid-state batteries will provide solutions for many problems fac...
Lithium carbonate on the surface of garnet blocks Li+ conduction and causes a huge interfacial resis...
All‐solid‐state lithium‐ion batteries (ASSLIBs) are promising alternatives to conventional organic e...
A better molecular-level understanding of Li+ diffusion through ceramic/polymer interfaces is key to...
Solid state energy storage devices with solid state electrolytes (SSEs) can potentially address Li d...
Garnet-type structured lithium ion conducting ceramics represent a promising alternative to liquid-b...