Please use this identifier to cite or link to this item: http://dx.doi.org/10.25673/122223
Title: High-rate performance solid-state lithium batteries achieved by infiltrating a single-layer LLZO scaffold
Author(s): Zubair, Muhammad
Liu, Xiaochen
Touidjine, Kaouther
Veerapanaicker Soundaraj, Pradhyun
Finsterbusch, MartinLook up in the Integrated Authority File of the German National Library
Tietz, FrankLook up in the Integrated Authority File of the German National Library
Fattakhova‐Rohlfing, DinaLook up in the Integrated Authority File of the German National Library
Guillon, OlivierLook up in the Integrated Authority File of the German National Library
Issue Date: 2026
Type: Article
Language: English
Abstract: Ceramic-based lithium metal batteries widespread application is limited by the persistent difficulty in achieving stable performance under high c-rate conditions. Herein, we designed flat, thin (~200 μm) Li6.45Al0.05La3Zr1.6Ta0.4O12 single-layer 3D porous scaffolds by the tape-casting technique. Leveraging a meticulously engineered single-layer scaffold, lithium metal is uniformly infiltrated to an average thickness of 35 μm, ensuring seamless interfacial contact. Concurrently, a solid polymer electrolyte is integrated, facilitating the formation of a robust composite solid polymer-garnet separator with a precise thickness of 165 μm, all within a unified structural framework. The integrated single-framework not only reinforces structural and interfacial stability of the metallic anode but also facilitates rapid Li+transport, markedly enhancing ionic conductivity. This synergistic effect enables exceptionally high-rate performance, paving the way for more efficient and reliable electro chemical applications. Full cells with lithium iron phosphate cathode and the Li-infiltrated single-layer ceramic/ polymer electrolyte cycled at record current rates of 2C and 5C at room temperature and achieved 100 % pacity retention for 30 cycles at 0.1C. The discharge specific capacities at 2C and 5C are 106.4 and 76.7 mAh g􀀀1, respectively. This innovative single-layer framework is designed to enable high-current-density, room- ature solid-state lithium-metal batteries while eliminating the need for stacking pressure.
URI: https://opendata.uni-halle.de//handle/1981185920/124169
http://dx.doi.org/10.25673/122223
Open Access: Open access publication
License: (CC BY 4.0) Creative Commons Attribution 4.0(CC BY 4.0) Creative Commons Attribution 4.0
Journal Title: Journal of power sources
Publisher: Elsevier
Publisher Place: New York, NY [u.a.]
Volume: 666
Original Publication: 10.1016/j.jpowsour.2025.239065
Page Start: 1
Page End: 8
Appears in Collections:Open Access Publikationen der MLU

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