Symmetric Vs Asymmetric Imide Anion Decomposition Pathways And Their Influence On Solid Electrolyte Interphase Stability For Si Anodes
Abstract
Abstract A sturdy solid electrolyte interphase (SEI) is imperative for extending the calendar‐life of Si anodes in lithium‐ion batteries (LIBs). However, carbonate electrolytes form unstable interphases, hindering their practical implementation. Alternatively, fluorinated sulfonylimide (FSI − /TFSI − ) based ionic liquid (IL) electrolytes, coupled with Li‐imide salts, enable anion‐derived SEI formation, thereby enhancing capacity retention. However, the functional role of these anions in directing SEI formation and evolution within IL‐based systems is poorly understood. Moreover, the mechanistic interplay between the decomposition pathways of symmetric and asymmetric anions in governing interfacial chemistry remains elusive. Herein, we investigate the chemistry and morphology of SEIs formed using various imidazolium‐based ILs containing both symmetric and asymmetric anions. We reveal that the synergistic interactions between symmetrical bis(fluorinated sulfonyl)imide anions and imidazolium cations facilitate an inorganic‐rich (LiF/LiOH) inner and a Li 2 SO 4 /polymeric outer layer SEI, conformally coating the 3D Si interface. The complementary effects of inorganic‐rich and polymer components, featuring key Li 2 SO 4 species, reinforce mechanical integrity and flexibility, suppressing pulverization and enabling reversible capacity of 2489 mAh/g at 1C over 250 cycles. Correlating electrochemical performance with surface analysis provides critical insights into the impact of fluorinated sulfonylimide on passivation behavior and battery performance, guiding future design of ionic liquid electrolytes for LIBs.
Article Details
Authors (10)
Abinaya Sankaran
Department of Chemical Sciences and Bernal Institute University of Limerick Castletroy Limerick V94T9PX Ireland
Fathima Laffir
Department of Chemical Sciences and Bernal Institute University of Limerick Castletroy Limerick V94T9PX Ireland
Giovanna Maresca
Technologies and Devices for Electrochemical Storage (TERIN‐DEC‐ACEL) Technical Unit ENEA (Italian National Agency for New Technology, Energy and Sustainable Economic Development) Rome 00123 Italy
Nilotpal Kapuria
Department of Chemistry Indiana University −Bloomington Bloomington Indiana 47405 USA
Marc Van der Velden
Smit Thermal Solutions B.V. Marinus van Meelweg 20 Eindhoven 5657 EN Netherlands
Temilade E. Adegoke
Department of Chemical Sciences and Bernal Institute University of Limerick Castletroy Limerick V94T9PX Ireland
S. Sananes Israel
Advanced Li‐ion group CIDETEC Energy Storage San Sebastian Basque Country Spain
Giovanni Battista Appetecchi
Technologies and Devices for Electrochemical Storage (TERIN‐DEC‐ACEL) Technical Unit ENEA (Italian National Agency for New Technology, Energy and Sustainable Economic Development) Rome 00123 Italy
Hugh Geaney
Department of Chemical Sciences and Bernal Institute University of Limerick Castletroy Limerick V94T9PX Ireland
Kevin M Ryan
Department of Chemical Sciences and Bernal Institute University of Limerick Castletroy Limerick V94T9PX Ireland