See how dual ultrasonic treatment swells CNT fibers and coats them with conductive polymer to a
See how anionically functionalised cellulose nanofibres enable lithium ion transport while bloc
See how aramid fiber electrodes use polydopamine-mediated composite coatings of silver nanopart
See how electrospinning resin-pitch dispersion and thermal treatment produce carbon fiber nonwo
Tailored polymer viscoelasticity improves electrode adhesion while limiting internal resistance for better high-temperature charge-discharge durability.
A stair-like multilayer electrode end improves processing efficiency while controlling positive-negative capacity ratio and limiting lithium deposition.
Fibrous conductive agents and controlled curved-surface geometry help flat wound electrodes resist expansion and preserve discharge capacity.
Boron-sulfur codoping raises porous carbon dopant content and wettability, boosting supercapacitor capacitance, energy density, and cycle life.
A polyimide precursor combined with ether-bonded cyclic molecules boosts binder breaking energy and improves lithium-ion charge-discharge cycling.
A PTFE-PVP composite binder improves dry electrode adhesion while limiting lithium reactions that reduce first-cycle efficiency and capacity.
Water-based electrode slurry removes pre-lithiation from lithium-ion capacitor production, cutting solvent and equipment cost while preserving capacitance.
Controlled surface area, aerated energy, and particle sizing raise electrode density while suppressing irreversible capacity in battery anodes.
A dual-segment polymer binder improves adhesion and toughness in solid electrolyte and electrode layers, helping resist bending stress and tension.
Nanoparticle-based porous electrodes remove organic binders to cut interfacial resistance, improve ion transport, and reduce battery fire risk.
A crosslinked PTC safety coating on the positive electrode rapidly blocks current during overheating or short circuits without harming battery performance.
Specific graphite and silicon particle size ratios preserve conductive paths and adhesion, improving initial cycle life in lithium secondary batteries.
Atomic layer deposition improves conformal coating of high-aspect-ratio VACNT electrodes, boosting loading, gas diffusion, and battery energy density.
Spherical conductive particles in a bipolar electrode adhesive cut resistance while preserving bond strength and reducing air entrapment.
Metal nanoparticle catalysts help lithium compounds decompose fully in positive electrodes, boosting initial efficiency, cycle life, and safety.