Understanding the diffusion mechanisms of Li ions through host materials and the resulting phase evolution of intercalated phases is of paramount importance for designing electrode materials of rechargeable batteries. The formation of lithiation gradients and discrete domains during intercalation leads to the development of strain within the host material and is responsible for the observed capacities of most cathode materials being well below theoretically predicted values. Such mesoscale heterogeneity has also been implicated in the loss of capacity upon cycling. Due to their inherent complexity, the analysis of such heterogeneity is rather complex and precise understanding of the evolution of metal sites remains underexplored. In this wo...
The implications of climate change and resource scarcity stand to impose great strain on society, an...
Efficient inexpensive energy storage is essential for widespread adoption of alternatives to fossil ...
The epsilon polymorph of vanadyl phosphate ε-VOPO4 is a promising cathode material for high-capacity...
The rapid insertion and extraction of Li ions from a cathode material is imperative for the function...
Increasing intercalation of Li-ions brings about distortive structural transformations in several ca...
Lithium-ion batteries dominate the battery field, particularly for electric and hybrid vehicles. Mon...
Electrochemical reactions within Li-ion batteries occur far from equilibrium and are accompanied by ...
Vanadium pentaoxide, V2O5, is an attractive cathode material for Li-ion batteries, which can store u...
Substantial improvements in cycle life, rate performance, accessible voltage, and reversible capacit...
Vanadium pentoxide materials prepared through sol-gel processes (xerogel, aerogel, and aerogel-like)...
Vanadium pentaoxide, $\mathrm{V_{2}O_{5}}$, is an attractive cathode material for Li-ion batteries, ...
In the constant race for more efficient Li-ion batteries, extensive research has focused on the desi...
International audienceReversible chemical reactions are the most common mechanism storing electroche...
With the development of stable alkali metal anodes, V2O5 is gaining traction as a cathode material d...
The lithium ion battery cathode material β-VOPO4 is capable of intercalating more than one Li ion pe...
The implications of climate change and resource scarcity stand to impose great strain on society, an...
Efficient inexpensive energy storage is essential for widespread adoption of alternatives to fossil ...
The epsilon polymorph of vanadyl phosphate ε-VOPO4 is a promising cathode material for high-capacity...
The rapid insertion and extraction of Li ions from a cathode material is imperative for the function...
Increasing intercalation of Li-ions brings about distortive structural transformations in several ca...
Lithium-ion batteries dominate the battery field, particularly for electric and hybrid vehicles. Mon...
Electrochemical reactions within Li-ion batteries occur far from equilibrium and are accompanied by ...
Vanadium pentaoxide, V2O5, is an attractive cathode material for Li-ion batteries, which can store u...
Substantial improvements in cycle life, rate performance, accessible voltage, and reversible capacit...
Vanadium pentoxide materials prepared through sol-gel processes (xerogel, aerogel, and aerogel-like)...
Vanadium pentaoxide, $\mathrm{V_{2}O_{5}}$, is an attractive cathode material for Li-ion batteries, ...
In the constant race for more efficient Li-ion batteries, extensive research has focused on the desi...
International audienceReversible chemical reactions are the most common mechanism storing electroche...
With the development of stable alkali metal anodes, V2O5 is gaining traction as a cathode material d...
The lithium ion battery cathode material β-VOPO4 is capable of intercalating more than one Li ion pe...
The implications of climate change and resource scarcity stand to impose great strain on society, an...
Efficient inexpensive energy storage is essential for widespread adoption of alternatives to fossil ...
The epsilon polymorph of vanadyl phosphate ε-VOPO4 is a promising cathode material for high-capacity...