This work aims to review and understand the behavior of the electrochemical lithiation onset of amorphous silicon (a-Si) films as electrochemically active material for new generation lithium-ion batteries. The article includes (i) a review on the lithiation onset of silicon films and (ii) a mechanochemical model with numerical results on the depth-resolved mechanical stress during the lithiation onset of silicon films. Recent experimental studies have revealed that the electrochemical lithiation onset of a-Si films involves the formation of a Li-poor phase (Li0.3Si alloy) and the propagation of a reaction front in the films. The literature review performed reveals peculiarities in the lithiation onset of a-Si films, such as (i) the build-up...
Silicon is considered as a promising electrode material for next-generation, high-performance lithiu...
Lithiation-induced plasticity is a key factor that enables Si electrodes to maintain long cycle life...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
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...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is a promising anode material for lithium-ion batteries with a high specific capacity, ...
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 due ...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
A fundamental understanding of mechanical behavior of a Li–Si system is necessary to address the poo...
In this study, we revisit experiments by Sethuraman et al. (2010 J. Power Sources, 195, 5062–5066. (...
In this study we revisit experiments by Sethuraman et al. [J. Power Sources, 195, 5062 (2010)] on th...
An in situ study of deformation, fracture, and fatigue behavior of silicon as a lithium-ion battery ...
Silicon is considered as a promising electrode material for next-generation, high-performance lithiu...
Lithiation-induced plasticity is a key factor that enables Si electrodes to maintain long cycle life...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...
This work aims to review and understand the behavior of the electrochemical lithiation onset of amor...
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...
Silicon (Si) is widely regarded as one of the most promising anode materials for Li ion battery (LIB...
Silicon (Si) is a promising anode material for lithium-ion batteries with a high specific capacity, ...
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 due ...
In the search for high-energy density materials for Li-ion batteries, silicon has emerged as a promi...
A fundamental understanding of mechanical behavior of a Li–Si system is necessary to address the poo...
In this study, we revisit experiments by Sethuraman et al. (2010 J. Power Sources, 195, 5062–5066. (...
In this study we revisit experiments by Sethuraman et al. [J. Power Sources, 195, 5062 (2010)] on th...
An in situ study of deformation, fracture, and fatigue behavior of silicon as a lithium-ion battery ...
Silicon is considered as a promising electrode material for next-generation, high-performance lithiu...
Lithiation-induced plasticity is a key factor that enables Si electrodes to maintain long cycle life...
A better understanding of lithium-silicon alloying mechanisms and associated mechanical behavior is ...