Reactive sintering forms dense, hermetic Li-ion ceramic electrolyte membranes at lower temperatures, improving conductivity, flexibility, and cost.
Electrophoretic graphene oxide deposition and heat reduction create uniform graphene layers on uneven objects for durable electric devices.
Controlling surface silanol groups to 15% or less improves silica particle strength, storage stability, and semiconductor wafer polishing.
Point-defect nanocrystals use localized plasmon resonance and plasmon-exciton coupling to control carrier polarization at room temperature.
A carbide-coated current collector lets CNT media bond without a separate layer, cutting ESR and improving ultracapacitor energy and power density.
Infiltrated and laminated LIG composites improve substrate adhesion and robustness while enabling flexible gas sensing and Joule heating.
A Schlenk line and all-glass reaction setup remove gases and trace contaminants to produce surfactant-free metal nanoparticles.
Chromium-substituted copper ferrite nanoparticles are synthesized by co-precipitation to suppress surface microbial growth with stronger E. coli activity.
Controlled silicon nanoparticle spacing and an amorphous carbon shell curb expansion and electrolyte side reactions in lithium battery anodes.
Magnetic nanoparticles in an insulating lacquer cut eddy current losses while preserving lamination factor and magnetic permeability in electrical steel stacks.
Bulk electrodeposition places copper inside a CNT porous matrix, raising ampacity and conductivity without the strength loss of thick surface coatings.
Ionic polymer chains grafted onto less active catalyst facets bridge deep pores to sustain reactant transport, conductivity, and durability.
A polar-organic solvent with tetramethylammonium salt removes element A to delaminate monolayer MXene and lower thin-film sheet resistance.
Staged thermal decomposition with reducing additives forms single-phase wurtzite manganese oxide nanoparticles while avoiding template aggregation.
Phenolic solvents disperse carbon nanotubes at high concentration without surface modification, enabling films, fibers, and 3D forms.
Microwave irradiation embeds isolated metal sites in holey graphene, avoiding aggregation while improving ORR activity and oxidation durability.
A CMP slurry with abrasive particles, organic acid, and pH control smooths laser-crystallized polysilicon while limiting crystal damage.
Mechanically inlaid thermally stable nano-particles help nickel-rich cathodes curb oxygen release and cut heat generation during abuse.
Electric charge across a free-standing HARM-structure film creates magnetic attraction that raises tension and prevents sagging or rupture.
Porous silicon with carbon and oxygen stabilizes anodes against lithium-driven expansion, improving cycle life and capacity retention.
Vapor-phase ALD/MLD coats macroscopic CNT assemblies with uniform metal oxides, improving composite properties without lattice defects.
Hydrangea-like cobalt oxyhydroxide nanospheres grown on a cobalt carrier reduce active component loss, ease separation, and extend catalyst life.
Pre-shaped firing film matched to chip size avoids brittle cutting debris and damage while enabling stable, thermally conductive sinter bonding.
Composite conductive particles replace fragile fine metal terminals, maintaining low resistance under repeated compression in dense CPU sockets.
Long CNT bridges and binder-coated active particles help preserve conductive paths in SiOx-based negative electrodes during charge-discharge cycling.
Titanium nanotubes on chemically strengthened glass improve angled solar gain, weather resistance, and facade-like aesthetics in laminated PV panels.
Thermal or light-driven conversion of carbon nanodots builds porous graphene networks with high surface area and conductivity for energy storage.
A graphene oxide and nanocrystalline diamond transistor uses receptor binding and conductivity shifts for rapid, accurate pathogen detection.
Uniform Na introduced during coprecipitation enables simpler cathode synthesis with better capacity, voltage retention, and cycling stability.
Disposable-spacer-defined SAGE endcaps let GAA transistors shrink diffusion spacing without extra mask margin, improving density and variability.
A wider-bandgap shell lets low-toxicity ternary quantum dots achieve sharp band-edge emission with short photoluminescence lifetime.
UV-responsive inorganic ligands enable direct nanocrystal film patterning at 1 μm resolution while preserving electronic and optical properties.
A hierarchically porous holey graphene scaffold speeds ion and electron transport, helping thick Nb2O5 electrodes keep high areal capacity.