Literature DB >> 28055178

Investigating the Dendritic Growth during Full Cell Cycling of Garnet Electrolyte in Direct Contact with Li Metal.

Frederic Aguesse1, William Manalastas1, Lucienne Buannic1, Juan Miguel Lopez Del Amo1, Gurpreet Singh1, Anna Llordés1,2, John Kilner1,3.   

Abstract

All-solid-state batteries including a garnet ceramic as electrolyte are potential candidates to replace the currently used Li-ion technology, as they offer safer operation and higher energy storage performances. However, the development of ceramic electrolyte batteries faces several challenges at the electrode/electrolyte interfaces, which need to withstand high current densities to enable competing C-rates. In this work, we investigate the limits of the anode/electrolyte interface in a full cell that includes a Li-metal anode, LiFePO4 cathode, and garnet ceramic electrolyte. The addition of a liquid interfacial layer between the cathode and the ceramic electrolyte is found to be a prerequisite to achieve low interfacial resistance and to enable full use of the active material contained in the porous electrode. Reproducible and constant discharge capacities are extracted from the cathode active material during the first 20 cycles, revealing high efficiency of the garnet as electrolyte and the interfaces, but prolonged cycling leads to abrupt cell failure. By using a combination of structural and chemical characterization techniques, such as SEM and solid-state NMR, as well as electrochemical and impedance spectroscopy, it is demonstrated that a sudden impedance drop occurs in the cell due to the formation of metallic Li and its propagation within the ceramic electrolyte. This degradation process is originated at the interface between the Li-metal anode and the ceramic electrolyte layer and leads to electromechanical failure and cell short-circuit. Improvement of the performances is observed when cycling the full cell at 55 °C, as the Li-metal softening favors the interfacial contact. Various degradation mechanisms are proposed to explain this behavior.

Entities:  

Keywords:  Li-metal/garnet interface; all-solid-state batteries; degradation mechanisms; dendritic lithium formation; full cell cycling; garnet electrolyte; post mortem analysis

Year:  2017        PMID: 28055178     DOI: 10.1021/acsami.6b13925

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  6 in total

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2.  High-energy and durable lithium metal batteries using garnet-type solid electrolytes with tailored lithium-metal compatibility.

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4.  Design of a lithiophilic and electron-blocking interlayer for dendrite-free lithium-metal solid-state batteries.

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5.  Lithium-ion conducting oxide single crystal as solid electrolyte for advanced lithium battery application.

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6.  Designing Spinel Li4Ti5O12 Electrode as Anode Material for Poly(ethylene)oxide-Based Solid-State Batteries.

Authors:  Ander Orue Mendizabal; Nuria Gomez; Frédéric Aguesse; Pedro López-Aranguren
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  6 in total

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