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The production of titanium dioxide traditionally involves processes that can be energy-intensive and potentially harmful to the environment. However, leading manufacturers have embraced cleaner technologies such as the chloride process, which yields high-purity TiO2 while significantly reducing waste and emissions. By utilizing this method, factories can minimize the release of contaminants and conserve resources more effectively than older techniques.

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In conclusion, suppliers of 30-50nm TiO2 powders play an instrumental part in advancing technological frontiers. Their ability to provide high-quality, consistent, and responsibly sourced materials is vital for driving innovation across multiple sectors. As research continues to unlock new potential uses for these remarkable nanoparticles, the partnership between industry and supplier will be essential for translating scientific breakthroughs into practical solutions that benefit society.

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  • FAQ – EFSA 2021 safety assessment of titanium dioxide (E171)

  • From dyes to flavorings, many people are becoming increasingly aware of the ingredients in their food.

  • Zinc oxide. Zinc oxide is a popular cross-linking agent for rubber and for various resins. It is essential in the formulation of solvent-borne polychloroprene adhesives. Furthermore, zinc oxide is a good UV stabilizer, has biocidal activity and has a relatively high refractive index (2.0) which makes it an efficient white pigment. Some typical properties are: density 5.6 g/cm3; particle size 0.036-3 μm; oil absorption 10–20 g/100 g; specific surface area 10–45 m2/g. Zinc oxide is produced by reaction of the metal in the vapour state with oxygen. Zinc oxide is nonporous and is quite pure. Thus, the high surface area of some grades is due to the small particle size of zinc oxide. Some grades, especially for use in the rubber industry, are surface modified by deposition of 0.2-0.4% of stearic acid, propionic acid, or light oil [47].