Despite many existing studies on silicon (Si) anodes for lithium ion batteries (LIBs), many essential questions still exist on compound formation, composition, and properties. Here we show that some previously accepted findings may have limitations in reflecting the lithiation mechanisms in the conventional charging rate. Furthermore, the correlation between structure and mechanical properties in these materials has not been properly established. Here we report a rigorous and thorough study to comprehensively understand the electrochemical reaction mechanisms of amorphous-Si (a-Si) in a conventional charging rate. In-depth microstructural characterization was performed, and correlations were established between Li–Si composition, volumetric...
We have performed a number of experiments to examine the mechanical behavior of amorphous silicon -e...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Silicon monoxide is a promising alternative anode material due to its much higher capacity than grap...
To utilize high-capacity Si anodes in next-generation Li-ion batteries, the physical and chemical tr...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
The guest-free type II Si clathrate (Si136) is an open framework polymorph of Si that displays uniqu...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
Silicon is considered the next-generation, high-capacity anode for Li-ion energy storage application...
Silicon is considered as a promising anode material for lithium ion batteries. Despite the great att...
Determining structural transformations in amorphous solids is challenging due to the paucity of stru...
We perform large-scale density functional theory calculations of various amorphous LixSi (a-LixSi)mo...
Drastic volume change during lithiation and delithiation presents the biggest challenge to the reali...
In recent years, the world has witnessed a dramatic advancement in sustainable energy development. D...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
We have performed a number of experiments to examine the mechanical behavior of amorphous silicon -e...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Silicon monoxide is a promising alternative anode material due to its much higher capacity than grap...
To utilize high-capacity Si anodes in next-generation Li-ion batteries, the physical and chemical tr...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
The guest-free type II Si clathrate (Si136) is an open framework polymorph of Si that displays uniqu...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
Silicon is considered the next-generation, high-capacity anode for Li-ion energy storage application...
Silicon is considered as a promising anode material for lithium ion batteries. Despite the great att...
Determining structural transformations in amorphous solids is challenging due to the paucity of stru...
We perform large-scale density functional theory calculations of various amorphous LixSi (a-LixSi)mo...
Drastic volume change during lithiation and delithiation presents the biggest challenge to the reali...
In recent years, the world has witnessed a dramatic advancement in sustainable energy development. D...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
We have performed a number of experiments to examine the mechanical behavior of amorphous silicon -e...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
Silicon monoxide is a promising alternative anode material due to its much higher capacity than grap...