The recognition of the solid electrolyte interface (SEI) between the electrode materials and electrolyte is limiting the selection of electrode materials, electrolytes, and further the electrochemical performance of batteries. Herein, we report ZnSe@C core–shell nanocomposites derived from ZIF-8 as anode materials of lithium-ion batteries, the electrochemical performances, and SEI films formed on ZnSe@C in both ether and carbonate electrolytes. It is found that ZnSe@C delivers a reversible capacity of 617.1 mA h·g–1 after 800 cycles at 1 A·g–1 in the ether electrolyte, much higher than that in the carbonate electrolyte. Both ex situ X-ray diffraction and X-ray photoelectron spectroscopies reveal that stable SEI films are formed on ZnSe@C in...
The interfacial decomposition products forming the so-called solid–electrolyte interphase (SEI) sign...
Binder free (BF) graphite electrodes were utilized to investigate the effect of electrolyte additive...
Rechargeable lithium-ion cells battery are widely used today for commercial applications due to thei...
We examine the formation of the solid electrolyte interface (SEI) on anodes made of carbon encapsul...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
A comparative investigation of the different lithium salts on formation of the solid electrolyte int...
Binder free (BF) graphite electrodes were utilized to investigate the effect of electrolyte additive...
Electrolytes, consisting of salts, solvents, and additives, must form a stable solid electrolyte int...
International audienceThis chapter introduces the role of fluorinated and nonfluorinated additives i...
Density functional theory (DFT) was used to investigate the effect of electrolyte additives such as ...
Silicon-based anodes have the potential to be used in next-generation lithium ion batteries owing to...
Understanding the formation of SEI films on Li4Ti5O12 (LTO) anodes offers a major benefit to large-s...
Reducing the ratio of Negative/Positive ratio (N/P ratio) is critical to increase the energy density...
We report the use of vinyl ethylene carbonate as a new solid electrolyte interface (SEI)-forming add...
The interfacial decomposition products forming the so-called solid–electrolyte interphase (SEI) sign...
Binder free (BF) graphite electrodes were utilized to investigate the effect of electrolyte additive...
Rechargeable lithium-ion cells battery are widely used today for commercial applications due to thei...
We examine the formation of the solid electrolyte interface (SEI) on anodes made of carbon encapsul...
The current commercial lithium ion battery utilizes “host-guest” electrodes that allow for the inter...
A comparative investigation of the different lithium salts on formation of the solid electrolyte int...
Binder free (BF) graphite electrodes were utilized to investigate the effect of electrolyte additive...
Electrolytes, consisting of salts, solvents, and additives, must form a stable solid electrolyte int...
International audienceThis chapter introduces the role of fluorinated and nonfluorinated additives i...
Density functional theory (DFT) was used to investigate the effect of electrolyte additives such as ...
Silicon-based anodes have the potential to be used in next-generation lithium ion batteries owing to...
Understanding the formation of SEI films on Li4Ti5O12 (LTO) anodes offers a major benefit to large-s...
Reducing the ratio of Negative/Positive ratio (N/P ratio) is critical to increase the energy density...
We report the use of vinyl ethylene carbonate as a new solid electrolyte interface (SEI)-forming add...
The interfacial decomposition products forming the so-called solid–electrolyte interphase (SEI) sign...
Binder free (BF) graphite electrodes were utilized to investigate the effect of electrolyte additive...
Rechargeable lithium-ion cells battery are widely used today for commercial applications due to thei...