A two-layer anode stabilizes the solid electrolyte and guides uniform lithium deposition to prevent short-circuits and improve cycle life.
A glassy solid polymer electrolyte replaces liquid sealing in bipolar batteries, enabling high voltage, lower impedance, and safer cell isolation.
A porous 5-20 μm support filled with sulfide electrolyte keeps the sheet thin, flexible, and self-supporting while reducing short-circuit risk.
An ionically conductive, electronically insulating coating shields electrode surfaces from sulfide electrolyte reactions while preserving battery performance.
A freestanding sulfide glass electrolyte sheet enables lithium-ion conduction and dendrite resistance with scalable melt-and-quench manufacturing.
Cooling a complex sulfide electrolyte slurry suppresses lithium and halogen separation, helping maintain high ionic conductivity in scale-up.
A tuned solid-electrolyte to negative-electrode thickness ratio suppresses lithium dendrites while preserving output and cycle life.
Biaxial stretching of fluorinated ionomer membranes cuts vanadium crossover while preserving proton conductivity and low water swell.
Using Nb-W-O anode materials with a sulfide solid electrolyte helps maintain capacity durability while supporting Li diffusion and thermal stability.
A metal sulfide-carbon protective layer fills interface pores and guides uniform lithium deposition on the anode current collector.
A heat-treated polythiophene and PEDOT:PSS blend enables solid electrolytes with high ionic and electronic conductivity and lower interfacial resistance.
Electron-acceptor doping suppresses polymer crystallinity to raise ionic conductivity, strength, and high-temperature stability in lithium batteries.
Halogen or pseudohalogen phosphate substitution helps solid electrolytes resist moisture and strong bases while retaining ionic conductivity.
Controlling iodine concentration through a sulfide separator helps cut all-solid-state battery resistance while improving ionic conduction.
Amorphous and crystalline solid electrolytes are combined in a 3D cathode assembly to raise capacity and rate capability while maintaining ion conduction.
A PVDF-HFP gel electrolyte with LiDFOB and LiTFSI improves cycling stability, suppresses lithium dendrites, and adds self-extinguishing safety.
A conductive sheet over a recessed insulating substrate improves battery power extraction while maintaining hermetic sealing and stable positioning.
A thin solid-state interlayer with electrolyte particles and gel-filled voids improves ion transport, cuts parasitic currents, and stabilizes battery interfaces.
Controlling the Li/P ratio in a phosphorus coating helps positive electrode particles cut initial resistance and suppress endurance-related resistance growth.
A phosphorus-based coating with surface Li/P at 2.5 or less cuts initial resistance and limits resistance growth in sulfide solid-state batteries.
A polymeric ionic liquid with inorganic particles balances ion conductivity and mechanical strength to suppress dendrites in lithium batteries.