Silicon is amongst the most attractive anode materials for Li-ion batteries because of its high gravimetric and volumetric capacities; importantly, it is also abundant and cheap, thus sustainable. For a widespread practical deployment of Si-based electrodes, research efforts must focus on significant breakthroughs to addressing the major challenges related to their poor cycling stability. In this work, we focus on the electrolyte-electrode relationships to support the scientific community with a systematic overview of Si-based cell design strategies reporting a thorough electrochemical study of different room temperature ionic liquid (RTIL)-based electrolytes, which contain either lithium bis(fluorosulfonyl)imide (LiFSI) or lithium bis(trifluoromethylsulfonyl)imide (LiTFSI). Their galvanostatic cycling performances with mixed silicon/graphite/few-layer graphene electrodes are evaluated, with first cycle Coulombic efficiency approaching 90% and areal capacity ?2 mAh/cm2 in the limited cut-off range of 0.1-2 V vs. Li+/Li0. The investigation evidences the superior characteristics of the FSI-based RTILs with respect to the TFSI-based one, which is mostly associated with the superior SEI forming ability of FSI-based systems, even without the use of specific additives. In particular, the LiFSI-EMIFSI electrolyte composition shows the best performance in both Li-half cells and Li-ion cells in which the Si-based electrodes are coupled with 4V-class composite NMC-based cathodes.

An electrochemical compatibility investigation of RTIL-based electrolytes with Si-based anodes for advanced Li-ion batteries

Paolone A;Brutti S;
2023

Abstract

Silicon is amongst the most attractive anode materials for Li-ion batteries because of its high gravimetric and volumetric capacities; importantly, it is also abundant and cheap, thus sustainable. For a widespread practical deployment of Si-based electrodes, research efforts must focus on significant breakthroughs to addressing the major challenges related to their poor cycling stability. In this work, we focus on the electrolyte-electrode relationships to support the scientific community with a systematic overview of Si-based cell design strategies reporting a thorough electrochemical study of different room temperature ionic liquid (RTIL)-based electrolytes, which contain either lithium bis(fluorosulfonyl)imide (LiFSI) or lithium bis(trifluoromethylsulfonyl)imide (LiTFSI). Their galvanostatic cycling performances with mixed silicon/graphite/few-layer graphene electrodes are evaluated, with first cycle Coulombic efficiency approaching 90% and areal capacity ?2 mAh/cm2 in the limited cut-off range of 0.1-2 V vs. Li+/Li0. The investigation evidences the superior characteristics of the FSI-based RTILs with respect to the TFSI-based one, which is mostly associated with the superior SEI forming ability of FSI-based systems, even without the use of specific additives. In particular, the LiFSI-EMIFSI electrolyte composition shows the best performance in both Li-half cells and Li-ion cells in which the Si-based electrodes are coupled with 4V-class composite NMC-based cathodes.
2023
Istituto dei Sistemi Complessi - ISC
Inglese
21
11
https://www.sciencedirect.com/science/article/pii/S2589234722001919?via=ihub
High voltage cathode; Ionic liquid; Lithium battery; Safe electrolyte; Silicon anode
The authors acknowledge financial support by the Si-DRIVE Project, which received funding from the EU's Horizon 2020 research and innovation (R&I) programme under GA 814464. This study was carried out within the MOST-Sustainable Mobility Center and received funding from the European Union Next-Gen-erationEU (PIANO NAZIONALE DI RIPRESA E RESILIENZA (PNRR) -MISSIONE 4 COMPONENTE 2, INVESTIMENTO 1.4-D.D. 1033 17/06/2022, CN00000023) . This manuscript reflects only the authors? views and opinions, neither the European Union nor the European Commission can be considered responsible for them. Part of research leading to this result has been supported by the project CALIPSOplus under the GA 730872 from the EU Framework Pro-gramme for Research and Innovation HORIZON 2020, for the beamtimes 20190616 and 20210263 at Soleil Synchrotron
13
info:eu-repo/semantics/article
262
Falco, M; Lingua, G; Destro, M; Silvestri, L; Meligrana, G; Lin, R; Fantini, S; Maresca, G; Paolone, A; Brutti, S; Appetecchi, Gb; Elia, Ga; Gerbaldi,...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/412504
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