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The photocatalytic properties of titanium dioxide are particularly interesting. When exposed to ultraviolet radiation, TiO2 can catalyze reactions that decompose organic compounds, leading to its use in self-cleaning surfaces and air purification systems When exposed to ultraviolet radiation, TiO2 can catalyze reactions that decompose organic compounds, leading to its use in self-cleaning surfaces and air purification systems When exposed to ultraviolet radiation, TiO2 can catalyze reactions that decompose organic compounds, leading to its use in self-cleaning surfaces and air purification systems When exposed to ultraviolet radiation, TiO2 can catalyze reactions that decompose organic compounds, leading to its use in self-cleaning surfaces and air purification systemschemical titanium dioxide. This property is utilized in construction materials like concrete and glass, where the titanium dioxide helps to break down pollutants and reduce maintenance requirements.

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Another approach utilizes titrimetry, where a standard solution of a titrant, such as lead perchlorate or barium perchlorate, is used to react with the sulfate ions. The endpoint of the titration is determined either by a color change indicator or more sophisticated instrumentation like a potentiometric titrator The endpoint of the titration is determined either by a color change indicator or more sophisticated instrumentation like a potentiometric titrator The endpoint of the titration is determined either by a color change indicator or more sophisticated instrumentation like a potentiometric titrator The endpoint of the titration is determined either by a color change indicator or more sophisticated instrumentation like a potentiometric titratordetermination of sulphate as tio2. The volume of titrant used corresponds to the concentration of sulfate in the sample. Again, a stoichiometric calculation converts this to TiO2 content.

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