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Summary
After dispersion, synthesis and analytical techniques, barium titanate products in the form of solid-phase method are realized in the form of finer particles and higher crystallinity. Solid-phase barium titanate can achieve superior thinning and multilayering on MLCCs, resulting in smaller compaction and higher capacity.
Feature
Nanoscale particles, purity up to 99.9%, good dispersion; narrow particle size distribution, good sphericity; high C/A ratio, stable barium-titanium ratio; excellent dielectric properties, can improve the reliability and stability of MLCC.
Function
Electronic ceramic, PTC thermistor, multilayer ceramic capacitor, optoelectronic device.
| BTS Series | ||||
| Typical Physical Data | Test Item | Unit | Typical Value | Test Method |
| D50 | μm | 0.523~1.001 | Laser PSA | |
| Lattice | - | tetragonal | XRD | |
| c/a | - | 1.01 | XRD | |
| A/B | - | 0.998 | XRF | |
| SSA | m2/g | 4.5 | BET | |
| Typical Chemical Data | BaTiO3 | % | 99.9 | ICP Gravimetric Method |
Summary
After dispersion, synthesis and analytical techniques, barium titanate products in the form of solid-phase method are realized in the form of finer particles and higher crystallinity. Solid-phase barium titanate can achieve superior thinning and multilayering on MLCCs, resulting in smaller compaction and higher capacity.
Feature
Nanoscale particles, purity up to 99.9%, good dispersion; narrow particle size distribution, good sphericity; high C/A ratio, stable barium-titanium ratio; excellent dielectric properties, can improve the reliability and stability of MLCC.
Function
Electronic ceramic, PTC thermistor, multilayer ceramic capacitor, optoelectronic device.
| BTS Series | ||||
| Typical Physical Data | Test Item | Unit | Typical Value | Test Method |
| D50 | μm | 0.523~1.001 | Laser PSA | |
| Lattice | - | tetragonal | XRD | |
| c/a | - | 1.01 | XRD | |
| A/B | - | 0.998 | XRF | |
| SSA | m2/g | 4.5 | BET | |
| Typical Chemical Data | BaTiO3 | % | 99.9 | ICP Gravimetric Method |