A high-capacity cathode based on silicates material for advanced lithium batteries

Silicate materials have been proposed as alternative cathodes for Li-ion battery applications. A novel mixture of silicates, labelled Li 6 MnSi 5 , based on the molar ratio among the Li/Mn/Si precursors, with promising electrochemical properties as positive electrode material is synthesized through...

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Veröffentlicht in:Journal of solid state electrochemistry 2017-11, Vol.21 (12), p.3381-3388
Hauptverfasser: Vankova, Svetoslava, Versaci, Daniele, Amici, Julia, Ferrari, Anna, Rizzi, Rosanna, Altomare, Angela, Guastella, Salvatore, Francia, Carlotta, Bodoardo, Silvia, Penazzi, Nerino
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Sprache:eng
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Zusammenfassung:Silicate materials have been proposed as alternative cathodes for Li-ion battery applications. A novel mixture of silicates, labelled Li 6 MnSi 5 , based on the molar ratio among the Li/Mn/Si precursors, with promising electrochemical properties as positive electrode material is synthesized through a solid-state reaction. The results indicate the proposed synthetic method as effective for preparation of nanostructured silicate powders with average particle diameter of 30 nm. Structural morphology of the samples was determined using X-ray powder diffraction (XRPD), XPS and FESEM analysis. A joint analysis by XRPD data and by density functional theory (DFT) identified LiHMn 4 Si 5 O 15 , Li 2 Mn 4 Si 5 O 15 , Li 2 Si 2 O 5 and Li 0.125 Mn 0.875 SiO 4 as components of Li 6 MnSi 5 mixture. The electrochemical performance of Li 6 MnSi 5 was evaluated by charge/discharge testing at constant current mode. Li 6 MnSi 5 discharge behaviour is characterized by high capacity value of 480 mA h g −1 , although such capacity fades gradually on cycling. Ex situ XPS studies carried out on the electrode in both full charged and discharged states pointed out that Li 2 Si 2 O 5 is decisive for achieving such high capacity. The discharge/charge plateau is most probably related to the change in the oxidation state of silicon at the surface of the silica material.
ISSN:1432-8488
1433-0768
DOI:10.1007/s10008-017-3663-7