International audienceDeveloping a stable, conformal solid electrolyte interphase (SEI) for aqueous-based Li-ion batteries has been a long-awaited dream to support the development of nontoxic and eco-friendly energy storage technologies. Toward that goal, aqueous superconcentrated electrolytes were recently introduced as their unique solvation structure allows for forming a LiF-rich SEI layer at the negative electrode, imparting the stability to the interface. However, the intrinsic stability of such LiF-rich SEI was never measured, despite growing evidence of poor passivation properties and water reduction upon operation. In this work, LiF conformal layers were coated onto lithium electrodes, and their reactivity toward superconcentrated a...
The combination of solid and liquid electrolytes enables the development of safe and high-energy bat...
Rechargeable lithium-ion battery technology has revolutionized energy storage for small electronic d...
Lithium is a highly reactive metal that can react with most of the organic electrolytes. Here, we re...
International audienceDeveloping a stable, conformal solid electrolyte interphase (SEI) for aqueous-...
The development of superconcentrated aqueous electrolytes, namely Water-in-salt electrolytes (WiSE),...
© 2021 American Chemical Society. The unstable solid-electrolyte interphase (SEI) on Li anodes is th...
International audienceThe latest advances in the stabilization of Li/Na metal battery and Li-ion bat...
The structure and chemical composition of solid electrolyte interphase (SEI) play a critical role in...
The interfacial reactions in sodium-ion batteries (SIBs) are not well understood yet. The formation ...
International audienceUsing solid-liquid hybrid electrolytes is an effective strategy to overcome th...
The construction of stable and reliable electrode interfaces is one of the key scientific issues wid...
It is often stated that formation of a functional solid electrolyte interphase (SEI) in sodium ion b...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
© 2022 American Chemical Society. All rights reserved.A variety of electrolyte engineering strategie...
Li-ion batteries are made possible by the solid electrolyte interphase, SEI, a self-forming passivat...
The combination of solid and liquid electrolytes enables the development of safe and high-energy bat...
Rechargeable lithium-ion battery technology has revolutionized energy storage for small electronic d...
Lithium is a highly reactive metal that can react with most of the organic electrolytes. Here, we re...
International audienceDeveloping a stable, conformal solid electrolyte interphase (SEI) for aqueous-...
The development of superconcentrated aqueous electrolytes, namely Water-in-salt electrolytes (WiSE),...
© 2021 American Chemical Society. The unstable solid-electrolyte interphase (SEI) on Li anodes is th...
International audienceThe latest advances in the stabilization of Li/Na metal battery and Li-ion bat...
The structure and chemical composition of solid electrolyte interphase (SEI) play a critical role in...
The interfacial reactions in sodium-ion batteries (SIBs) are not well understood yet. The formation ...
International audienceUsing solid-liquid hybrid electrolytes is an effective strategy to overcome th...
The construction of stable and reliable electrode interfaces is one of the key scientific issues wid...
It is often stated that formation of a functional solid electrolyte interphase (SEI) in sodium ion b...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
© 2022 American Chemical Society. All rights reserved.A variety of electrolyte engineering strategie...
Li-ion batteries are made possible by the solid electrolyte interphase, SEI, a self-forming passivat...
The combination of solid and liquid electrolytes enables the development of safe and high-energy bat...
Rechargeable lithium-ion battery technology has revolutionized energy storage for small electronic d...
Lithium is a highly reactive metal that can react with most of the organic electrolytes. Here, we re...