The ever-increasing demand for electric devices and vehicles prompts the fast development of energy storage systems. Lithium metal is thought to be the most promising electrode for high-performance batteries. However, the growth of lithium dendrites impedes the industrial production of lithium metal batteries. Herein, an effective approach is proposed by coating a commercial separator with three-dimensional porous carbon fibers loaded with silver nanoparticles (Ag-PCNFs), which can be regarded as a subsidiary of the electrode to improve the cycling performance of lithium metal batteries. The porous structure with a high specific surface area endows the electrode with a high lithium-loading capacity. The silver nanoparticles provide the elec...
The formation and growth of lithium dendrites have dramatically limited the application of lithium m...
Lithium metal anodes (LMAs) are desirable for next-generation rechargeable batteries because of thei...
Lithium metal is an ideal anode material due to its high specific capacity and low redox potential. ...
Three-dimensional (3D) porous N-doped carbon nanoflake structures decorated with in situ formed Ag n...
Lithium dendrite formation has hindered the practical implementation of lithium metal batteries with...
Reversible lithium metal plating and stripping are required for the durable operation of lithium met...
Lithium (Li) dendrite alleviation via three-dimensional (3D) structured current collectors has been ...
Suppressing the formation of lithium (Li) dendrites is central to implementing Li-metal anode, which...
Uncontrollable dendrite growth resulting from the non-uniform lithium ion (Li+) flux and volume expa...
Li metal anode is deemed the most promising candidate anode for high-energy battery systems such as ...
For future applications in portable electronics, electric vehicles and grid storage, batteries with ...
We report for the first time, a lithium metal battery (LMB) design based on low-cost, renewable, and...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
Lithium metal has the highest theoretical specific capacity and the most negative redox potential am...
Using lithium metal as anode in lithium batteries has attracted great attention due to its ultrahigh...
The formation and growth of lithium dendrites have dramatically limited the application of lithium m...
Lithium metal anodes (LMAs) are desirable for next-generation rechargeable batteries because of thei...
Lithium metal is an ideal anode material due to its high specific capacity and low redox potential. ...
Three-dimensional (3D) porous N-doped carbon nanoflake structures decorated with in situ formed Ag n...
Lithium dendrite formation has hindered the practical implementation of lithium metal batteries with...
Reversible lithium metal plating and stripping are required for the durable operation of lithium met...
Lithium (Li) dendrite alleviation via three-dimensional (3D) structured current collectors has been ...
Suppressing the formation of lithium (Li) dendrites is central to implementing Li-metal anode, which...
Uncontrollable dendrite growth resulting from the non-uniform lithium ion (Li+) flux and volume expa...
Li metal anode is deemed the most promising candidate anode for high-energy battery systems such as ...
For future applications in portable electronics, electric vehicles and grid storage, batteries with ...
We report for the first time, a lithium metal battery (LMB) design based on low-cost, renewable, and...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
Lithium metal has the highest theoretical specific capacity and the most negative redox potential am...
Using lithium metal as anode in lithium batteries has attracted great attention due to its ultrahigh...
The formation and growth of lithium dendrites have dramatically limited the application of lithium m...
Lithium metal anodes (LMAs) are desirable for next-generation rechargeable batteries because of thei...
Lithium metal is an ideal anode material due to its high specific capacity and low redox potential. ...