Segmented internal electrodes with stepped dimensions control electric field intensity to suppress silver migration and maintain insulating resistance.
Coarse particle direct plating creates a porous substrate film that blocks moisture intrusion paths in miniaturized laminated ceramic capacitors.
A multilayer ceramic device incorporates a crack guide pattern to redirect cracks from the circumferential surface toward inactive sides.
Interleaved laminations of graphene and hafnium oxide create compact supercapacitors that store more energy in smaller volumes for IoT devices.
Groove parts and via electrodes extend internal electrode overlap in the stacking direction, increasing capacitance without reducing dielectric layer thickness.
Metal oxide barriers at capacitor electrode interfaces prevent plating solution permeation to maintain moisture resistance reliability.
A core-shell dielectric composition with controlled bismuth ratios enhances electrical properties.
A multilayer ceramic capacitor electrode uses a low-glass base layer and thick copper plating to ensure strong adhesion.
Intermediate conductive resin layer with controlled spectral intensity ratios prevents interface separation in ceramic electronic components.
A wiring structure embeds three-dimensional metal-insulator-metal capacitors within the middle-end-of-line architecture to boost capacitance density.
A monolithic ceramic capacitor uses external terminal electrodes with a resistive component to adjust equivalent series resistance.
A multi-layer ceramic capacitor positions internal electrode end portions inward within a drawn portion to maintain large capacitance.
Differential sintering controls electrode shrinkage to enable thinner multilayer capacitor structures while preventing breakage and short-circuit defects.
Segmented regions with distinct capacitance and inductance ratios enable multiple resonance frequencies to suppress noise across various frequency bands.
Segmented multilayer NTC components limit inrush currents and prevent hotspots by distributing thermal energy across specialized ceramic layers.
Segmented Cu, Ni, and Pd external electrode layers prevent copper damage and suppress cracking during mounting.
Segmented inner electrodes with controlled gaps prevent ceramic body cracking during outer electrode formation.
A dielectric composition incorporating germanium oxide enhances voltage resistance and specific resistivity in multilayer ceramic capacitors.
Segmented outer electrodes with specific length ratios generate down force to prevent component inclination and improve fixing strength.
Control conductive metal particle concentration in internal electrodes to maintain connectivity during sintering.
Metal-insulator-metal capacitors use via fill to deposit uniform electrode layers over glass substrate surfaces.
Intersecting recesses on both substrate surfaces increase electric capacity while maintaining mechanical strength.
Internal support structure prevents adjacent capacitors from leaning, enabling uniform dielectric layer formation on segmented lower electrodes.
Optimizing the width-to-margin ratio of external electrodes reduces piezoelectric acoustic noise in multilayer ceramic capacitors.
Segmented via holes with varying diameters block hydrogen diffusion from insulating layers, preventing dielectric degradation in thin film capacitors.
Dielectric ceramic particles bridge internal electrode layers in multilayer ceramic components to suppress cracks and delamination at sub-micron thicknesses.
A monolithic ceramic capacitor uses a perovskite compound with controlled rare earth and secondary element mole ratios to achieve high relative dielectric constant.
A multilayer capacitor uses segmented conductor layers and dielectric laminates to form outer electrodes via stretching and bending processes.
A perovskite-based dielectric ceramic composition incorporating rare earth, magnesium, and transition metal oxides to enhance insulation resistance.
Segmented side margins with protruding extensions block plating solution entry, reducing pore formation at the body interface.
Segmented active layer with thicker lower cover disperses strain to reduce acoustic noise below 20 dB in multilayer ceramic capacitors.
An anodic aluminum oxide substrate with nanometer pores increases capacitance while side terminals reduce equivalent series inductance.
Specific nickel-tin plating thickness ratios strengthen thin multilayer ceramic capacitors against breakage during processing without reducing capacitance.
Thicker lower cover layers with additional electrodes reduce acoustic noise by managing strain, preventing delamination.
Curved internal electrode edges control the narrowest gap between adjacent electrodes in multilayer ceramic capacitors.
A laminated capacitor merges spiral coil patterns with dielectric electrodes to create a single integrated component.
Asymmetric upper electrode design minimizes parasitic capacitance, ensuring accurate gate voltage levels and preventing image quality deterioration.
Tapered penetrating hole draws solder upward via capillary action, preventing protrusion and reducing mount space on the circuit board.
Four-sided electrode arrangement cancels mutual inductance, reducing ESL in downsized capacitors to stabilize impedance for high-frequency circuits.
A controller system boosts input signals via a charge pump to adjust the bias voltage of voltage tunable capacitors.
Segmented via levels with insulating layers prevent dielectric breakdown and leakage currents while maintaining high capacitance density.
A multi-layer ceramic capacitor uses specific first electrode layer thickness ratios to enhance moisture resistance and bending strength.
Lowering porosity in MLCC corner portions through localized pressure treatment suppresses cracks from external impacts while maintaining thin device profiles.
An asymmetric electrode configuration on a ceramic body decreases equivalent serial inductance while improving adhesion strength and minimizing acoustic noise.
Removing the superficial layer from cut MLCC chips before applying side margins prevents electrode short circuits while maintaining capacity.
A multilayer capacitor uses carbon-based reinforcing layers on external electrodes to enhance structural integrity and conductivity.
Internal resistance electrodes connect external terminals to adjust equivalent series resistance in multilayer ceramic capacitors.
A coil terminal electrode features a protruding part that concentrates laser energy to form a strong electrical connection with the coil structure.
A specific MnO2-based dielectric composition prevents copper oxidation during low-temperature sintering, ensuring high reliability without toxic additives.
Segmented inner electrodes with glass buffers stabilize multilayer ceramic capacitors against positional deviations.