Confining Li metal in a three-dimensional (3D) matrix has been proven effective in improving the Li-metal anodes; however, in most studies, the loading of Li in the 3D matrix is far excessive, resulting in a dense bulk Li-metal anode with a low Li-utilization rate, forfeiting the effect of the 3D matrix. Here, we show that limiting the loading of Li metal within an interface-modified 3D carbon matrix not only increases the Li-utilization rate but also improves the electrochemical performance of the Li-metal anode. We use lithiophilic Fe2O3 granules anchored on a 3D carbon fiber scaffold to guide molten Li dispersion onto the fibers with controlled Li loading. Limiting Li loading maximizes the interface lithiophilic effect of the Fe2O3 granu...
For future applications in portable electronics, electric vehicles and grid storage, batteries with ...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
Lithium metal has the highest theoretical specific energy density (3860 mAh.g(-1)) and the most nega...
Confining Li metal in a three-dimensional (3D) matrix has been proven effective in improving the Li-...
Three-dimensional (3D) host architectures have emerged as promising strategies for resolving the cri...
Suppressing the formation of lithium (Li) dendrites is central to implementing Li-metal anode, which...
3D hosts are promising to extend the cycle life of lithium metal anodes but have rarely been impleme...
Lithium (Li) dendrite alleviation via three-dimensional (3D) structured current collectors has been ...
The practical application of lithium metal batteries (LMBs) is obstructed by the uncontrollable dend...
Three-dimensional (3D) porous hosts with abundant space inside can accommodate volume variation duri...
The formation and growth of lithium dendrites have dramatically limited the application of lithium m...
In past decades, lithium-ion batteries (LIBs) were the dominant energy storage systems for powering ...
Although metallic lithium is regarded as an ideal anode material for high-energy-density batteries, ...
Lithium metal has been considered as an anode material to improve energy densities of lithium chemis...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
For future applications in portable electronics, electric vehicles and grid storage, batteries with ...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
Lithium metal has the highest theoretical specific energy density (3860 mAh.g(-1)) and the most nega...
Confining Li metal in a three-dimensional (3D) matrix has been proven effective in improving the Li-...
Three-dimensional (3D) host architectures have emerged as promising strategies for resolving the cri...
Suppressing the formation of lithium (Li) dendrites is central to implementing Li-metal anode, which...
3D hosts are promising to extend the cycle life of lithium metal anodes but have rarely been impleme...
Lithium (Li) dendrite alleviation via three-dimensional (3D) structured current collectors has been ...
The practical application of lithium metal batteries (LMBs) is obstructed by the uncontrollable dend...
Three-dimensional (3D) porous hosts with abundant space inside can accommodate volume variation duri...
The formation and growth of lithium dendrites have dramatically limited the application of lithium m...
In past decades, lithium-ion batteries (LIBs) were the dominant energy storage systems for powering ...
Although metallic lithium is regarded as an ideal anode material for high-energy-density batteries, ...
Lithium metal has been considered as an anode material to improve energy densities of lithium chemis...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
For future applications in portable electronics, electric vehicles and grid storage, batteries with ...
Practical application of metallic Li anode in Li-ion batteries has been restricted because of dendri...
Lithium metal has the highest theoretical specific energy density (3860 mAh.g(-1)) and the most nega...