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  • Iron oxide pigments, known for their robust stability and versatile coloring capabilities, play a pivotal role in various industries, from construction and coatings to cosmetics and plastics. These natural or synthetic compounds, derived primarily from iron ores, have become indispensable elements in the world of colorants. This article delves into the significance of iron oxide pigment suppliers and their impact on the global market.
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  • However, it is important to note that while mica and titanium dioxide can be beneficial in shampoo, they may not be suitable for everyone. Some individuals may experience allergic reactions or irritation when using products containing these minerals, especially if they have sensitive skin or hair. Therefore, it is always advisable to conduct a patch test before using any new product, especially if you have never used mica or titanium dioxide before.
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  • Because of health risks, France banned titanium dioxide as a food additive in 2020. Two years later the European Union also banned titanium dioxide as a food additive. 

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  • In the paper industry, TiO2 is used to create high-quality, bright white paper products. By adding TiO2 to pulp, paper manufacturers can improve the opacity, brightness, and printability of their products. TiO2 also enhances the lightfastness and aging resistance of paper, ensuring that it maintains its appearance and quality over time. With TiO2, paper products can achieve a superior level of whiteness and visual appeal.


  • In addition to its functional benefits, titanium dioxide also plays a crucial role in UV protection. It acts as a shield against harmful ultraviolet radiation, preventing premature degradation and maintaining the integrity of the rubber over time It acts as a shield against harmful ultraviolet radiation, preventing premature degradation and maintaining the integrity of the rubber over time It acts as a shield against harmful ultraviolet radiation, preventing premature degradation and maintaining the integrity of the rubber over time It acts as a shield against harmful ultraviolet radiation, preventing premature degradation and maintaining the integrity of the rubber over timetitanium dioxide for rubber supplier. This is particularly important in outdoor applications where rubber products are exposed to sunlight and weathering.
  • In addition to its cosmetic benefits, titanium dioxide also has a number of other uses. It is commonly used in the food industry as a coloring agent, and in the pharmaceutical industry as a coating for pills and tablets. Titanium dioxide is also used in the production of paints, plastics, and other industrial products
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    china cosmetic grade titanium dioxide.
  • In an early study Jani et al. administred rutile TiO2 (500 nm) as a 0.1 ml of 2.5 % w/v suspension (12.5 mg/kg BW) to female Sprague Dawley rats, by oral gavage daily for 10 days and detected presence of particles in all the major gut associated lymphoid tissue as well as in distant organs such as the liver, spleen, lung and peritoneal tissue, but not in heart and kidney. The distribution and toxicity of nano- (25 nm, 80 nm) and submicron-sized (155 nm) TiO2 particles were evaluated in mice administered a large, single, oral dosing (5 g/kg BW) by gavage. In the animals that were sacrificed two weeks later, ICP-MS analysis showed that the particles were retained mainly in liver, spleen, kidney, and lung tissues, indicating that they can be transported to other tissues and organs after uptake by the gastrointestinal tract. Interestingly, although an extremely high dose was administrated, no acute toxicity was observed. In groups exposed to 80 nm and 155 nm particles, histopathological changes were observed in the liver, kidney and in the brain. The biochemical serum parameters also indicated liver, kidney and cardiovascular damage and were higher in mice treated with nano-sized (25 or 80 nm) TiO2 compared to submicron-sized (155 nm) TiO2. However, the main weaknesses of this study are the use of extremely high single dose and insufficient characterisation of the particles.

  • The gravimetric determination of titanium dioxide is vital for several reasons. First and foremost, it ensures product consistency and quality, allowing manufacturers to produce coatings and plastics that meet industry standards. In industries where color consistency is crucial, such as paint production, maintaining a uniform concentration of TiO2 is essential to achieving the desired opacity and brightness.


  • One of the key challenges faced by manufacturers is balancing cost-effectiveness with environmental sustainability. The production of TiO2 pigments can have significant environmental impacts, from energy consumption to waste disposal. In response, many manufacturers have adopted cleaner technologies, such as recycling waste streams and using solar power for energy-intensive stages of production.
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  • Another important aspect of TiO2 is its stability
  • A  2023 study published in the journal Environmental Research, scientists examined the effect of titanium dioxide nanoparticles on important gut bacteria in mice. Their results showed “the growth inhibitory effects could be associated with cell membrane damage caused by titanium dioxide nanoparticles to the bacterial strains. Metabolomics analysis showed that TiO2 NPs caused alterations in multiple metabolic pathways of gut bacteria, such as tryptophan and arginine metabolism, which were demonstrated to play crucial roles in regulating gut and host health.” The researchers also found that four different neuroprotective metabolites “were significantly reduced” in urine and in vitro bacteria and vivo urine samples. The researchers concluded: “Increasing evidence implies that the gut microbiome plays a profound role in regulating host metabolism. Our results illustrated that TiO2 NPs hindered the growth of four beneficial gut bacterial strains.”

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  • For research published in Archives of Toxicology in 2020, scientists fed one group of mice a solution containing titanium dioxide for one month, and compared it to those that did not receive the additive. They found “the richness and evenness of gut microbiota were remarkably decreased and the gut microbial community compositions were significantly changed” in the titanium dioxide group when compared with the control group. The tests also revealed that the titanium dioxide exposure could cause locomotor dysfunction, or mobility issues “by elevating the excitement of enteric neurons, which might spread to the brain via gut-brain communication by vagal pathway.” The researchers concluded: “These findings provide valuable insights into the novel mechanism of TiO2NP-induced neurotoxicity. Understanding the microbiota-gut-brain axis will provide the foundation for potential therapeutic or prevention approaches against TiO2NP-induced gut and brain-related disorders.”