See how high-energy pulsed-light irradiation rapidly oxidizes polymer-dispersed metal ions to f
Triphase TiO2 core-shell powder enables BaZrTiO3 ceramics to reach colossal dielectric constant while keeping dielectric loss near 10^-3.
A co-sintered LSM/SYTN bilayer interconnect cuts oxygen permeability and area-specific resistance while avoiding Cr-related sintering issues.
Core-shell barium titanate with rare earth and magnesium solid solution cuts leakage current and extends MLCC high-temperature load life.
Using BaCO3 and TiO2 precursors instead of finished BaTiO3 prevents nozzle clogging and enables dense printed passive components after sintering.
Thermal plasma forms BaTiO3 core-shell particles with uniform additive coating, improving dispersion, size control, and MLCC reliability.
A core-dual shell dielectric grain balances oxygen-vacancy suppression with TCC control to extend MLCC high-temperature life.
Balanced donor, acceptor, and vanadium ratios in the dielectric suppress oxygen-vacancy-driven resistance loss while preserving X5R stability.
Ni-Mg-Al-Si-O secondary phases raise grain boundary resistance, helping thin MLCC dielectric layers maintain withstand voltage and time to failure.
Balanced donor, acceptor, and vanadium ratios in an MLCC dielectric curb oxygen-vacancy drift while preserving X5R behavior at high temperature.
Coupling-agent-bridged dielectric particles improve anode dispersion and bonding, reducing fast-charge lithium plating and charging resistance.
Controlled Zr-doped BaTiO3 grains and oxide additives suppress oxygen vacancies, improving moisture resistance and withstand voltage.
Larger-radius atom doping raises permittivity in thin dielectric films while supporting smaller capacitors and transistors with lower leakage.
Ti-substituted barium titanate shells suppress sintering grain growth while preserving MLCC permittivity, capacitance, and DC-bias reliability.
Specific dopants and manganese pyrophosphate help miniaturized ceramic components resist ESD while preserving electrical and mechanical properties.
Specific dopants and manganese pyrophosphate help miniaturized ceramic capacitors resist ESD while preserving electrical properties and lowering sintering temperature.
Controlled donor-acceptor solid solution in barium titanate powder suppresses oxygen defects, cutting leak current while preserving MLCC life.
A decomposable titanate modifier raises high-load brake friction while avoiding copper content and fibrous titanate concerns.
Bonded alkali and alkaline earth titanate particles stabilize friction and reduce counterpart wear in copper-free friction materials.
A layered titanate friction modifier improves brake material formability while limiting rotor rust after long pressed contact in moisture.
Controlled calcium titanate particle circularity and surface area suppress UV-driven color change while preserving resin appearance.
Controlled Sr/Ti ratio and spherical sub-50 nm particles improve resin dispersion stability while preserving transparency in composite films.
Wet synthesis controls BST particle size and lattice constant to improve resin dispersion, transparency, and refractive index.
High-crystallinity spherical strontium titanate nanoparticles improve resin dispersion stability while preserving transparency in composite films.
Surface treatment makes ultrafine spherical strontium titanate less hydrophilic, improving dispersion stability and film transparency.
High-pressure liquid-phase synthesis creates spherical calcium titanate nanoparticles that improve toner fluidity and help prevent particle fusion.
Defect-rich non-metal-doped barium titanate uses light and mechanical force to produce hydrogen from seawater with lower energy input.
An antiperovskite interface layer suppresses oxygen diffusion in ferroelectric tunnel junctions, preserving high TER and memory endurance.
An isostructural antiperovskite interfacial layer suppresses oxygen diffusion while preserving high TER in ferroelectric tunnel junction memory cells.
Controlled spherical strontium titanate particles balance nanoscale size and crystallinity to disperse uniformly in resin without film deterioration.
Sol-gel/combustion synthesis forms porous CaTiO3/MgTiO3-carbon phases with controlled morphology while lowering energy use and production costs.
Polymer surface treatment helps fine titanate powder resist moisture adsorption and re-aggregation for stable dispersion in solvents and resins.
Stacked perovskite layers are hot-pressed with controlled heat and pressure for dense films suited to large-area devices.
A capacitive sensing composition uses a ferroelectric ceramic material to detect temperature changes via capacitance shifts.
Cerium-zirconium-rare earth mixed oxide maintains specific surface area after severe aging, reducing platinum group metal loading in lean NOx traps.
Tuning reduction enthalpy and entropy in a composite perovskite resolves the trade-off between redox capacity and thermodynamic stability.
Barium titanate nanoparticles scatter blue light to enhance quantum dot excitation, reducing heavy metal usage while maintaining brightness.
Optimized calcination of lithium titanate particles enhances electronic conductivity and initial discharge capacity.
Metallic element doping controls primary particle diameter to maintain secondary particle strength and pore volume during electrode manufacturing.
A core-shell dielectric powder uses metal oxide doped barium titanate to boost capacitance density in compact multilayer ceramic capacitors.
Chlorine ions in the slurry form barium chloride to prevent barium carbonate reprecipitation, maintaining crystallinity and grain uniformity.
Lanthanum-containing strontium titanate particles modify toner surface charge distribution to stabilize electrical conductivity during development.
A perovskite dielectric ceramic composition with uniform zirconium solid solution particles enhances insulation resistance and high temperature lifetime.
High-dielectric barium strontium titanate focuses magnetic fields to maintain transfer efficiency across varying air gaps and load conditions.
A perovskite composite oxide absorbs carbon dioxide gas at high temperatures through chemical reaction.
Aqueous strontium titanate synthesis uses a polymer compound to control particle size and crystallinity during thermal processing.
A perovskite dielectric material with 100 to 300 nm particles enables high capacitance in multi-layered capacitors.
Controlled calcination and acid wash break down agglomerates into primary nanoparticles, restoring surface area for high energy density storage.
A solid catalyst component with controlled cross-sectional pore area ratios reduces fine powder generation during olefin polymerization.
A barium titanate coating liquid composition creates highly oriented perovskite films on metal electrodes.
A dielectric ceramic composition combines forsterite and calcium strontium titanate with specific molar ratios to achieve high Q values.