| Literature DB >> 28439085 |
M Agostini1,2, S Brutti3,4, M A Navarra5, S Panero5, P Reale6, A Matic7, B Scrosati8.
Abstract
Electrochemical energy storage devices based on Li-ion cells currently power almost all electronic devices and power tools. The development of new Li-ion cell configurations by incorporating innovative functional components (electrode materials and electrolyte formulations) will allow to bring this technology beyond mobile electronics and to boost performance largely beyond the state-of-the-art. Here we demonstrate a new full Li-ion cell constituted by a high-potential cathode material, i.e. LiNi0.5Mn1.5O4, a safe nanostructured anode material, i.e. TiO2, and a composite electrolyte made by a mixture of an ionic liquid suitable for high potential applications, i.e. Pyr1,4PF6, a lithium salt, i.e. LiPF6, and standard organic carbonates. The final cell configuration is able to reversibly cycle lithium for thousands of cycles at 1000 mAg-1 and a capacity retention of 65% at cycle 2000.Entities:
Year: 2017 PMID: 28439085 PMCID: PMC5430621 DOI: 10.1038/s41598-017-01236-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) XRD pattern, (b) SEM and (c) TEM micrographies of the LNMO powder. (d) XRD pattern, (e) SEM and (f) TEM micrographies of the TiO2-B powder.
Figure 2(a) Voltage profiles and (b) specific capacity performance of the Li/LP30/LNMO half-cell at different current rates. (c) Voltage profiles and (d) specific capacity performance of the Li/LP30/TiO2-B half-cell at different current rates.
Figure 3(a) Voltage profiles, (b) rate performance and (c) extended cycling-performance at 1000 mAg−1 of the TiO2-B/LP30/LNMO Li-ion cell.
Figure 4(a) Voltage profiles, (b) rate performance and (c) extended cycling performance at 1000 mAg−1 of the TiO2-B/LP30 + IL/LNMO Li-ion cell.