Dual grain size dielectric powders prevent abnormal growth and maintain electrical stability in multilayer ceramic capacitors.
A multicomponent layered dielectric film uses discrete polymer interfaces to delocalize charge buildup across the structure.
Optimizing central glass area to 35-80% prevents plating infiltration and maintains air-tightness in thin external electrodes.
Bottom terminal placement and insulator precursor application prevent solder bridges while maintaining inductance.
A polyimide condenser stabilizes pulse voltage and spectral width in gas laser devices.
Light curing of photocurable polyimide precursors eliminates high-temperature processing, enabling reliable dielectric layers on polycarbonate substrates.
Precursor polymer capacitors convert to conductive states under heat, preventing uncontrolled electricity buildup in high-voltage devices.
A flat opposing face on a metal terminal receives uniform force from a thermally expanding member to separate bonded components.
Adding a β-diketone chelating agent to ceramic raw powder slurries prevents crosslinking reactions that cause gelling, ensuring stable viscosity.
Barium titanate powder coated with glass prevents abnormal grain growth during firing to stabilize microstructure.
A dielectric composition incorporates Ca-RE-Si-O segregation phases to enhance density and strength.
Barium titanate dielectric composition enables multilayer ceramic capacitors to sinter below 1000°C using silver-rich electrodes.
Crosslinked polyvinyl acetal and polyisocyanate raise the glass transition temperature above 130°C, solving heat resistance limits in thin film capacitors.
A laminated ceramic capacitor terminal electrode uses an extended conductive resin layer to absorb mechanical stress and prevent cracking.
A dielectric ceramic composition with controlled MnO and SiO2 additives refines grain structure in laminated capacitors.
MnO-modified glass suppresses crystallization during co-firing, stabilizing relative permittivity and insulation reliability.
A multilayer ceramic capacitor uses a barium titanate dielectric composite to maintain stable capacitance under direct electric fields.
Segmented outer electrodes use conductive resin layers to relieve thermal stress while maintaining low contact resistance for stable capacitor performance.
Cubic barium titanate dielectric layers in a laminated ceramic capacitor stabilize temperature characteristics and prevent thermal shock damage.