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Exceptional interfacial conduction and LiF interphase for ultralong life PEO-based all-solid-state batteries
Composite electrolytes, with large ionic conductivity and stable seamless interfaces, are recognized as potential ones for solid-state batteries (SSBs). Herein, a flexible all-solid-state composite electrolyte composed of TiO2 (Bronze) nanotubes and poly(ethylene oxide) was synthesized. The composit...
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Published in: | Nano energy 2023-12, Vol.118, p.108985, Article 108985 |
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Main Authors: | , , , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Composite electrolytes, with large ionic conductivity and stable seamless interfaces, are recognized as potential ones for solid-state batteries (SSBs). Herein, a flexible all-solid-state composite electrolyte composed of TiO2 (Bronze) nanotubes and poly(ethylene oxide) was synthesized. The composite electrolyte was found to be able to offer an exceptional interfacial conduction and a reasonable electrode compatibility in the SSBs. The interfacial phase between TiO2(B) and polymer formed a new lithium-ion transport pathway, which enhanced the interfacial conduction. Moreover, DFT and MD simulation showed that TiO2(B) can promote the dissociation of lithium salts and produce more free lithium ions, thereby enhancing the ionic conductivity. Furthermore, the incorporations of TiO2(B) can achieve a rich LiF interphase layer, realizing a rapid lithium-ion transport and uniform Li deposition, as was revealed by the results of TOF-SIMS, Cryo-TEM, and COMSOL Multiphysics. Consequently, the symmetric lithium cell obtained an excellent electrochemical performance of more than 2350h and a high critical current density of 1.6mAcm-2. The as-prepared LiFePO4/Li SSBs exhibited an impressive ultralong cycle lifespan of over 3100 cycles at 1C. This work is regarded as opening a new avenue for designing reasonably the ultralong life of PEO-based SSBs.
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•TiO2 (Bronze) nanotubes as an additive is firstly applied in solid-state electrolytes.•Mechanism of modulating interfacial conduction and electrode interfaces by TiO2 (Bronze) is proposed.•Optimized electrolyte exhibits superior ionic conductivity and remarkable interface compatibility.•Solid-state lithium metal batteries show excellent electrochemical performance. |
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ISSN: | 2211-2855 |
DOI: | 10.1016/j.nanoen.2023.108985 |