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Is ceramic tint more clear than regular tint? 

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The results of this research indicates that this new fabrication technique for ceramic has more flexibility compared to traditional solid-phase sintering process, and can be used for rapid fabricating of pure and complex ceramic structures.
A better route for good looking TiNT is to grow them under magnetically stirred solution followed by cleaning by sonication in deionized water for 30 seconds.
Increasing the sintering temperature above 1500 °C yields a more compact ceramic, with less, but larger, pores, containing more crystalline fraction and less amorphous.
Successful refractory metallization of green ceramic is shown to require close matching of the shrinkages of the metal layer and the ceramic substate.
With limit of this study, the final color of the all ceramic system definitely affected by the number of firing cycle exposed to, and the veneering ceramic thickness have a clear effect on the final shade of the all ceramic tested.
In addition, TiNT-120-2 is well suited to sedimentation, and so has strong potential for application as an easily separable and recoverable material.
The thickness of the ceramic has significant effect in the L* value of the titanium ceramic restoration.
The variations in metal-ceramic alloy and porcelain can influence the shade of a metal-ceramic restoration.
Clinicians can therefore prescribe opaque tint lenses on the basis of cosmetics and the proposed wearing schedule, with awareness that the quality or sharpness of vision may be reduced, especially under low-contrast/illumination conditions.
The results indicate that the surface quality obtained with the wiper ceramic insert significantly improved when compared with conventional ceramic insert is 2.5.
Ceramic thickness could be thinner than the minimum ceramic thickness parameter.
The microwave transmittance in 2–18 GHz is higher than 90% when the thickness is within 1.7 mm, suggesting that this kind of LAS glass-ceramic possesses excellent wave-transparent properties.
The XRD analysis indicates that the ceramic coating is poorly crystalline.
Microstructural, physical, chemical and mechanical properties of the produced glass-ceramic samples are better than those of the produced glass and ceramic samples.
Its comprehensive performance is much better than that of existing ceramic materials.
The optical parameters deduced from the colorimetry measurements are more interesting to establish the homogeneity of the perceived tint.
Porosity is a dominant factor affecting the performance of ceramic materials.
The obtained results make it possible to predict the tint and tint shade of glass at the stage of batch preparation.

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