A grid-guided freezing process aligns graphene to raise through-thickness and in-plane thermal conductivity for 5G device heat dissipation.
Controlled graphite particle sizes, coating, and pore volume suppress electrode expansion and preserve Li-ion battery cycle capacity.
KOH-treated natural graphite with controlled particle distribution and surface pores improves fast charging, cycle swelling, and anode stability.
A low-softening graphitizable carbon coating forms an amorphous layer that boosts fast charging, preserves initial efficiency, and limits anode cracking.
Hard-carbon-coated artificial graphite balances rolling density and electrolyte access to improve fast charging and high-temperature storage.
Internal voids in artificial graphite particles absorb crystal-layer expansion, reducing negative electrode swelling while preserving battery capacity.
Controlled oxidation creates graphite additives with low oxidability and low resistance, improving battery and fuel cell electrode stability.
A graphite and graphitizable carbon blend suppresses battery power resistance growth during high-temperature charge-discharge cycling.
Liquid-agent granulation creates spherical microporous carbon that improves electrolyte distribution, cuts fine powder, and stabilizes Li-ion battery cycling.
Controlled surface area and pore distribution in carbon-coated graphite anodes improve initial efficiency, output, and cycle life.
Controlled pore size and volume in carbon-coated graphite particles improve Li-ion anode output while suppressing electrolyte reaction.
Controlled graphite particle sizing and amorphous carbon coatings reduce side reactions and pore growth, improving lithium battery cycle life.
A hard-carbon coating on artificial graphite balances rolling density and lithium-ion diffusion to improve fast charging and hot storage.
Covalently binding binder moieties to graphite prevents binder floating in anode coating, improving adhesion and battery cycle performance.
Controlled graphite surface roughness and graphitization improve battery energy density, suppress side reactions, and extend service life.
Sulfur dispersed in artificial graphite improves lithium-ion diffusion, boosting output and initial efficiency without sacrificing capacity.
Matching positive and negative electrode OI values improves fast-charging capability while limiting dendrite risk and preserving cycle life.
Mechanochemical coating and amorphous carbon create spherical graphite anodes with internal gaps that improve rate capability and cycle life.
A porous SiOx anode with polymer-filled pores and metal compounds buffers expansion and limits electrolyte side reactions for longer battery life.