In this paper we report a new, high performance lithium-ion battery comprising a nanostructured Sn-C anode and Li[Li0.2Ni 0.4/3Co0.4/3Mn1.6/3]O2 (lithium-rich) cathode. This battery shows highly promising long-term cycling stability for up to 500 cycles, excellent rate capability, and a practical energy density, which is expected to be as high as 220 Wh kg-1 at the packaged cell level. Considering the overall performance of this new chemistry basically related to the optimized structure, morphology, and composition of the utilized active materials as demonstrated by XRD, TEM, and SEM, respectively, the system studied herein is proposed as a suitable candidate for application in the lithium-ion battery field. © 2014 American Chemical Society.

A new, high energy Sn-C/Li[Li0.2Ni0.4/3Co 0.4/3Mn1.6/3]O2 lithium-ion battery / Elia, G. A.; Wang, J.; Bresser, D.; Li, J.; Scrosati, B.; Passerini, S.; Hassoun, J.. - In: ACS APPLIED MATERIALS & INTERFACES. - ISSN 1944-8244. - 6:15(2014), pp. 12956-12961. [10.1021/am502884y]

A new, high energy Sn-C/Li[Li0.2Ni0.4/3Co 0.4/3Mn1.6/3]O2 lithium-ion battery

Elia G. A.;
2014

Abstract

In this paper we report a new, high performance lithium-ion battery comprising a nanostructured Sn-C anode and Li[Li0.2Ni 0.4/3Co0.4/3Mn1.6/3]O2 (lithium-rich) cathode. This battery shows highly promising long-term cycling stability for up to 500 cycles, excellent rate capability, and a practical energy density, which is expected to be as high as 220 Wh kg-1 at the packaged cell level. Considering the overall performance of this new chemistry basically related to the optimized structure, morphology, and composition of the utilized active materials as demonstrated by XRD, TEM, and SEM, respectively, the system studied herein is proposed as a suitable candidate for application in the lithium-ion battery field. © 2014 American Chemical Society.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2959245