
Our product, High Quality Titanium propoxide with the CAS number 3087-37-4, stands out in the market due to its exceptional quality and competitive price. Titanium propoxide, also known as Titanium(IV) n-propoxide, has the chemical formula Ti(OC₃H₇)₄. It is a colorless to pale yellow liquid under normal conditions.
The molecular weight of Titanium propoxide is approximately 284.22 g/mol. It has a boiling point range of about 170 - 172 °C at 10 mmHg and a density of around 0.965 g/mL at 25 °C. The refractive index is about 1.468, and it is soluble in common organic solvents such as ethanol, benzene, and toluene.
Titanium propoxide has a wide range of applications across various industries. In the field of materials science, it is a key precursor for the synthesis of titanium dioxide (TiO₂) thin - films. These thin - films are used in optical coatings, photocatalysis, and electronic devices. For example, in photocatalysis, TiO₂ thin - films can be used to decompose organic pollutants in water and air under ultraviolet light, providing an environmentally friendly solution for pollution control.
In the chemical industry, it serves as a catalyst or a reagent in organic synthesis. It can be used in reactions such as esterifications and transesterifications, enhancing reaction rates and yields. Additionally, in the production of advanced ceramics, Titanium propoxide is used to introduce titanium into the ceramic matrix, improving the mechanical properties and thermal stability of the ceramics.
When handling Titanium propoxide, it is essential to follow proper safety procedures. Wear appropriate personal protective equipment, including gloves and safety glasses, as it is flammable and can cause skin and eye irritation.
For storage, keep it in a cool, dry, and well - ventilated place, away from sources of ignition and moisture. When using it in a chemical reaction, typically, it is added slowly to the reaction mixture under an inert atmosphere, such as nitrogen or argon, to prevent hydrolysis. The amount of Titanium propoxide used depends on the specific reaction requirements and stoichiometry.
Case 1: Synthesis of TiO₂ Nanoparticles
In a laboratory setting, researchers aimed to synthesize TiO₂ nanoparticles for photocatalytic applications. They prepared a solution of Titanium propoxide in ethanol under a nitrogen atmosphere. Then, they slowly added a small amount of water to initiate hydrolysis and condensation reactions. After a series of aging and calcination steps, they successfully obtained high - quality TiO₂ nanoparticles with a uniform size distribution. These nanoparticles showed excellent photocatalytic activity in degrading methyl orange dye in water, achieving a degradation rate of over 90% within a few hours under ultraviolet light irradiation.
Case 2: Transesterification Reaction
A chemical company was involved in the production of biodiesel. They used Titanium propoxide as a catalyst in the transesterification reaction between vegetable oil and methanol. By adding a small amount of Titanium propoxide to the reaction mixture and heating it under reflux conditions, the reaction time was significantly reduced, and the yield of biodiesel was increased. The use of Titanium propoxide not only improved the production efficiency but also reduced the cost of biodiesel production.
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This is William, CEO of Zhishang Chemical Co., Ltd.
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