See how sequential polymer and nanoparticle deposition forms a transparent, highly ordered barr
A Mg-silicate shell and two-stage sintering help silicon oxide anodes retain capacity while limiting aggregation and preserving Li-ion permeability.
Vapor-phase metal doping and carbon coating create a silicon anode with uniform silicate distribution, high initial efficiency, and stable cycling.
Gas-phase metal doping and carbon coating create a silicon anode with uniform silicate distribution, limiting expansion and improving cycle life.
A gas-phase Si/SiO2/Mg composite with carbon coating limits anode swelling while improving conductivity, capacity retention, and cycle stability.
An MgO and MgxSiOy coating on a silicon-carbon anode limits expansion to improve energy density, initial efficiency, and cycle life.
A MgxSiOy shell around Si clusters buffers anode expansion and cuts irreversible reactions, improving lithium secondary battery capacity retention.
Internal pores in a silicon oxide composite buffer silicon expansion during charging, improving lithium secondary battery cycle life.
Mg and Mn in a silicon-based anode silicate improve cycle retention and cut direct current resistance by boosting conductivity and limiting electrolyte reaction.
Combining sulfur and magnesium in a silicon anode silicate helps limit particle expansion and improve initial coulombic efficiency.
Magnesium compounds and carbon shells restrain silicon expansion, helping lithium battery anodes keep conductivity, capacity, and cycle retention.
Metal-doped M-SiOx with a controlled amorphous phase and carbon coating limits silicon swelling while maintaining conductivity and cycle life.
Carbon-coated SiOx composite anode particles balance capacity and conductivity while limiting side reactions that hurt initial efficiency and cycle life.
Internal pores in a silicon oxide anode composite buffer charging expansion, preserving conduction paths and extending lithium secondary battery life.
Balancing 20-70 wt% amorphous phase in M-SiOx anodes helps limit silicon volume change while improving initial efficiency and cycle life.
A linked lithium silicate and water-insoluble silicate skeleton limits gas during pre-lithiation while preserving first efficiency and capacity.
Magnesium silicate with controlled surface area and pores promotes SEI formation, suppresses side reactions, and preserves battery capacity.
Porous aluminum silicate in the electrolyte suppresses side reactions, stabilizes SEI formation, and preserves capacity during high-voltage cycling.
A Si-SiOx-magnesium silicate composite anode limits silicon swelling and cracking while improving initial efficiency and cycle life in lithium batteries.
Crosslinked carbon nanotubes preserve charge pathways in silicon-carbon anodes, limiting short circuits during volume change and extending battery life.
Crosslinked SWCNTs connect a carbon-coated silicon anode to a spaced conductive network, preserving contact during volume change and reducing short circuits.
Fluoride etching creates porous silicon that buffers anode expansion, while a carbon layer preserves capacity retention and initial efficiency.
MgF2-assisted etching and carbon coating create porous silicon anodes that limit expansion, preserve conductivity, and improve capacity retention.
Mg-tuned porous silicon-carbon particles and a carbon coating curb silicon expansion, improving initial efficiency, capacity retention, and discharge capacity.
Pressure-assisted low-temperature bonding joins magnesium oxide particles into a dense, strong inorganic structure with lower energy use.
A self-equilibrating precipitation route avoids acid or base additives and yields high-purity synthetic minerals with narrow particle size.