The solid electrolyte interphase (SEI) is the most critical yet least understood component to guarantee stable and safe operation of a Li-ion cell. Herein, the early stages of SEI formation in a typical LiPF6 and organic carbonate-based Li-ion electrolyte are explored by operando surface-enhanced Raman spectroscopy, on-line electrochemical mass spectrometry, and electrochemical quartz crystal microbalance. The electric double layer is directly observed to charge as Li+ solvated by ethylene carbonate (EC) progressively accumulates at the negatively charged electrode surface. Further negative polarization triggers SEI formation, as evidenced by H-2 evolution and electrode mass deposition. Electrolyte impurities, HF and H2O, are reduced early ...
The structure and chemical composition of solid electrolyte interphase (SEI) play a critical role in...
This thesis focuses on interfacial processes in Li ion batteries. Rechargeable Li-ion batteries are ...
Sulfide‐based Li+ conducting solid electrolytes, such as argyrodite, Li6PS5Cl, for all‐solid‐state b...
The solid electrolyte interphase (SEI) is the most critical yet least understood component to guaran...
The solid electrolyte interphase (SEI) is arguably one of the most critical components of the Li-ion...
The solid electrolyte interphase (SEI) is arguably one of the most critical components of the Li-ion...
The solid electrolyte interphase (SEI) that forms on Li-ion battery anodes is critical to their long...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
In the last decade, lithium ion batteries held a major role in the path towards personal electronics...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
The structure and chemical composition of solid electrolyte interphase (SEI) play a critical role in...
This thesis focuses on interfacial processes in Li ion batteries. Rechargeable Li-ion batteries are ...
Sulfide‐based Li+ conducting solid electrolytes, such as argyrodite, Li6PS5Cl, for all‐solid‐state b...
The solid electrolyte interphase (SEI) is the most critical yet least understood component to guaran...
The solid electrolyte interphase (SEI) is arguably one of the most critical components of the Li-ion...
The solid electrolyte interphase (SEI) is arguably one of the most critical components of the Li-ion...
The solid electrolyte interphase (SEI) that forms on Li-ion battery anodes is critical to their long...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
The key factor in long-term use of batteries is the formation of an electrically insulating solid la...
Advanced metal oxide electrodes in Li-ion batteries usually show reversible capacities exceeding the...
In the last decade, lithium ion batteries held a major role in the path towards personal electronics...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
The structure and chemical composition of solid electrolyte interphase (SEI) play a critical role in...
This thesis focuses on interfacial processes in Li ion batteries. Rechargeable Li-ion batteries are ...
Sulfide‐based Li+ conducting solid electrolytes, such as argyrodite, Li6PS5Cl, for all‐solid‐state b...