Progress and Perspectives of Lithium Aluminum Germanium Phosphate‐Based Solid Electrolytes for Lithium Batteries

Author:

Zhang Yue12,Liu Hanshuo3,Xie Zhong3,Qu Wei3,Freschi Donald J.4,Liu Jian12ORCID

Affiliation:

1. School of Engineering Faculty of Applied Science University of British Columbia 3333 University Way Kelowna British Columbia V1V 1V7 Canada

2. Pacific Institute for Climate Solutions and School of Environmental Studies University of British Columbia Kelowna British Columbia V1V 1V7 Canada

3. National Research Council Canada 4250 Wesbrook Mall Vancouver British Columbia V6T 1W5 Canada

4. Fenix Advanced Materials 2950 Highway Drive Trail British Columbia V1R 2T3 Canada

Abstract

AbstractSolid‐state lithium batteries are considered promising energy storage devices due to their superior safety and higher energy density than conventional liquid electrolyte‐based batteries. Lithium aluminum germanium phosphate (LAGP), with excellent stability in air and good ionic conductivity, has gained tremendous attention over the past decades. However, the poor interface compatibility with Li anode, slow Li‐ion conduction in thick pellets, and high‐temperature sintering procedure limit the further development of LAGP solid electrolytes in practical applications. This review comprehensively summarizes the crystal structure, Li‐ion conducting mechanism, and various synthesis methods, especially the latest thin‐film preparation approach. The underlying reason for Li/LAGP interfacial instability is identified, followed by several advanced interface engineering strategies, for example, introducing a functional interlayer. The integration design of LAGP‐based solid electrolytes and cathode is also highlighted to enable high‐loading cathodes. Additionally, recent progress of lithium‐oxygen and lithium‐sulfur batteries with LAGP‐based solid electrolytes is discussed. Moreover, the different Li‐ion migration pathways, preparation procedures, and electrochemical performance of polymer‐LAGP composite solid electrolytes in Li‐ion batteries are introduced. Lastly, the remaining challenges and opportunities are proposed to encourage more efforts in this field. This review aims to provide fundamental insights and promising directions toward practical LAGP‐based solid‐state batteries.

Funder

Natural Sciences and Engineering Research Council of Canada

Canada Foundation for Innovation

University of British Columbia

Pacific Institute for Climate Solutions

British Columbia Knowledge Development Fund

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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