The use of role-assigned ionic additives with different adsorption energies and distinct electron-accepting abilities enables the construction of a multilayer solid electrolyte interphase (SEI) with a sequential structure of lithiophilic, mechanically robust, and ion-permeable layers on Li metal anodes. The uncontrollable Li dendrite formation, which is promoted by localized electric fields on the Li metal anode, is suppressed by the lithiophilic Ag-containing inner SEI and LiF + Li3N-enriched outer SEI with reduced overpotentials upon Li deposition
Constructing an advanced artificial solid electrolyte interphase (SEI) on lithium metal anodes is a ...
With the fullness of time, metallic lithium (Li) as an anode could become highly promising for high-...
Interfacial problems, including interfacial stability and contact issues, severely plague the practi...
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Li metal has been widely regarded as a promising a...
The growth and proliferation of Li dendrites during repeated Li cycling has long been a crucial issu...
The growth and proliferation of Li dendrites during repeated Li cycling has long been a crucial issu...
Utilization of lithium (Li) metal anode is highly desirable for achieving high energy density batter...
Li metal has been widely regarded as a promising anode for next-generation batteries due to its high...
Lithium metal anodes are considered as the "Holy Grail" to achieve high energy density of rechargeab...
Lithium metal anodes are considered as the "Holy Grail" to achieve high energy density of rechargeab...
Thanks to its high specific capacity and low electrochemical potential, lithium metal is an ideal an...
Li metal is among the most attractive anode materials for secondary batteries, with a theoretical sp...
Li metal batteries have attracted much attention due to their superior theoretical capacity with res...
Lithium is a highly reactive metal that can react with most of the organic electrolytes. Here, we re...
© 2020 Elsevier Ltd Li metal anode has become a research hotspot again because of its high specific ...
Constructing an advanced artificial solid electrolyte interphase (SEI) on lithium metal anodes is a ...
With the fullness of time, metallic lithium (Li) as an anode could become highly promising for high-...
Interfacial problems, including interfacial stability and contact issues, severely plague the practi...
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Li metal has been widely regarded as a promising a...
The growth and proliferation of Li dendrites during repeated Li cycling has long been a crucial issu...
The growth and proliferation of Li dendrites during repeated Li cycling has long been a crucial issu...
Utilization of lithium (Li) metal anode is highly desirable for achieving high energy density batter...
Li metal has been widely regarded as a promising anode for next-generation batteries due to its high...
Lithium metal anodes are considered as the "Holy Grail" to achieve high energy density of rechargeab...
Lithium metal anodes are considered as the "Holy Grail" to achieve high energy density of rechargeab...
Thanks to its high specific capacity and low electrochemical potential, lithium metal is an ideal an...
Li metal is among the most attractive anode materials for secondary batteries, with a theoretical sp...
Li metal batteries have attracted much attention due to their superior theoretical capacity with res...
Lithium is a highly reactive metal that can react with most of the organic electrolytes. Here, we re...
© 2020 Elsevier Ltd Li metal anode has become a research hotspot again because of its high specific ...
Constructing an advanced artificial solid electrolyte interphase (SEI) on lithium metal anodes is a ...
With the fullness of time, metallic lithium (Li) as an anode could become highly promising for high-...
Interfacial problems, including interfacial stability and contact issues, severely plague the practi...