Silicon, a promising high-capacity anode material of lithium ion batteries, suffers from its volume expansion leading to pulverization and low conductivities, showing capacity decay during cycling and low capacities at fast charging and discharging. In addition to popular active-material-modifying strategies, building lithium-ion-rich environments around silicon surface is helpful in enhancing unsatisfactory performances of silicon anodes. In this work, we accelerated lithium ion transport to silicon surface by using an organogel binder to utilize the electroactivity of silicon in a more efficient way. The cyanoethyl polymer (PVA-CN), characterized by high lithium ion transference number as well as appropriate elastic modulus with strong ad...
Silicon anode materials have been developed to achieve high capacity lithium ion batteries for opera...
Silicon alloys have the highest specific capacity when used as anode material for lithium-ion batter...
Silicon has emerged as the next‐generation anode material for high‐capacity lithium‐ion batteries (L...
Silicon, a promising high-capacity anode material of lithium ion batteries, suffers from its volume ...
Silicon anodes are promising for high energy density lithium-ion batteries because of their high the...
Silicon is widely regarded as one of the most promising anode materials for lithium ion and next-gen...
A novel polymer is designed to serve as the conductive binder for high-capacity silicon anodes in li...
A highly adhesive and thermally stable copolyimide (P84) that is soluble in organic solvents is newl...
The development of silicon-based anodes with high capacity and good cycling stability for next-gener...
A highly adhesive and thermally stable copolyimide (P84) that is soluble in organic solvents is newl...
Silicon (Si) has been counted as the most promising anode material for next-generation lithium-ion b...
Silicon is a strong anode material alternative to graphite in terms of its high energy and power cap...
© 2016 The Royal Society of Chemistry. Nanostructured silicon has garnered considerable attention as...
Nanostructured silicon has garnered considerable attention as a promising lithium-ion battery anode ...
The aggravated environmental issues and limited resources call for renewable substitutions for fossi...
Silicon anode materials have been developed to achieve high capacity lithium ion batteries for opera...
Silicon alloys have the highest specific capacity when used as anode material for lithium-ion batter...
Silicon has emerged as the next‐generation anode material for high‐capacity lithium‐ion batteries (L...
Silicon, a promising high-capacity anode material of lithium ion batteries, suffers from its volume ...
Silicon anodes are promising for high energy density lithium-ion batteries because of their high the...
Silicon is widely regarded as one of the most promising anode materials for lithium ion and next-gen...
A novel polymer is designed to serve as the conductive binder for high-capacity silicon anodes in li...
A highly adhesive and thermally stable copolyimide (P84) that is soluble in organic solvents is newl...
The development of silicon-based anodes with high capacity and good cycling stability for next-gener...
A highly adhesive and thermally stable copolyimide (P84) that is soluble in organic solvents is newl...
Silicon (Si) has been counted as the most promising anode material for next-generation lithium-ion b...
Silicon is a strong anode material alternative to graphite in terms of its high energy and power cap...
© 2016 The Royal Society of Chemistry. Nanostructured silicon has garnered considerable attention as...
Nanostructured silicon has garnered considerable attention as a promising lithium-ion battery anode ...
The aggravated environmental issues and limited resources call for renewable substitutions for fossi...
Silicon anode materials have been developed to achieve high capacity lithium ion batteries for opera...
Silicon alloys have the highest specific capacity when used as anode material for lithium-ion batter...
Silicon has emerged as the next‐generation anode material for high‐capacity lithium‐ion batteries (L...