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Tetrabutyl titanate, also known as n-butyl titanate, n-butyl titanate, tetrabutoxy titanium, tetrabutoxy titanium, or tetra-n-butoxide titanium (IV), is formed by covalently connecting titanium atoms with four butoxide groups (C4H9O -). It is a colorless to light yellow viscous liquid at room temperature, and a glassy solid below -55 ℃. It must be stored in an anhydrous environment because it has a very high chemical activity towards water and will decompose when in contact with water. It is a flammable liquid. It can participate in ester exchange reactions and exhibit good catalytic performance. It is also used as a modifier for high-strength polyester paints to improve the performance of coatings, especially in the preparation of high-temperature resistant coatings, which can enhance the heat resistance, adhesion, mechanical properties, and corrosion resistance of coatings.

Additional information of chemical compound:
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Chemical Formula |
C16H36O3Ti |
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Exact Mass |
324.21 |
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Molecular Weight |
324.33 |
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m/z |
324.21(100.0%),325.22(17.3%),322.22(11.2%),323.22(10.1%),325.21 (7.3%), 326.21 (7.0%), 323.22 (1.9%), 324.22 (1.7%), 326.22 (1.4%), 326.22 (1.3%), 327.21 (1.2%) |
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Elemental Analysis |
C, 59.25; H, 11.19; O, 14.80; Ti, 14.76 |
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Melting point |
-55℃ |
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Boiling point |
206℃/10 mmHg (lit.) |
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Density |
1.00 g/mL at 20℃(lit.) |
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Storage conditions |
Store at +2℃ to +8℃. |
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Butyl titanate can be used as a crosslinking agent and comprehensive reaction catalyst to improve the adhesion of polymers, and can be used to prepare modified adhesives for metal rubber and metal plastic.In polymerization reactions such as PE, PP, etc., it is used as a Ziegler Natta catalyst with high stereoselectivity and efficiency. It is also commonly used as a catalyst in ester exchange reactions, esterification reactions, and condensation reactions. In the surface treatment of metal materials, Tetrabutyl titanium can be used as a substitute for phosphating treatment, reducing environmental pollution and improving treatment efficiency. It can also be used as a silane treatment agent to improve the wettability of metal surfaces and enhance the adhesion between subsequent coatings, rubber or plastics and metal substrates.Tetrabutyl titanate is an organic titanium compound with multiple uses. The following is a detailed explanation of its purpose:
Coatings and paints field
This substance can significantly improve the heat resistance of coatings, enabling them to withstand high temperature environments without performance degradation. This is crucial for equipment or components that need to work at high temperatures, such as aircraft engines, car exhaust pipes, etc. By adding n-butyl titanate, the corrosion resistance of the coating can also be improved, thereby extending the service life of the equipment.
As a modifier for polyester paint, n-butyl titanate can improve the leveling and smoothness of polyester paint, enhance the adhesion and mechanical properties of the paint film. When preparing high-strength polyester paint, its addition can enhance the hardness and wear resistance of the paint film, making it more durable. As a crosslinking agent, n-butyl titanate can promote the chemical reaction between resin and curing agent in coatings, forming a denser paint film structure. At the same time, it can also serve as a condensation catalyst, accelerating the reaction rate of various components in the coating and improving production efficiency.
Adhesive and sealant field&metal material surface treatment
Butyl titanate can enhance the bonding strength between different substrates, such as metal and plastic, metal and rubber, etc. This makes it widely used in fields such as automobile manufacturing, aerospace, electronics, and electrical appliances. As a water absorbing agent, Tetrabutyl titanium can absorb the moisture in the sealant, thereby reducing its hygroscopicity and prolonging its storage time. This is of great significance for sealant products that require long-term storage.
In the pre-treatment industry of painting, n-butyl titanate can be used as a substitute for phosphating treatment. It can not only reduce environmental pollution, but also improve treatment efficiency and quality. As a silane treatment agent, n-butyl titanate can improve the wettability of metal surfaces and enhance the adhesion between subsequent coatings, rubber or plastics and metal substrates. This is of great significance for improving the corrosion resistance and durability of metal components.
Rubber and plastic industry&ester exchange reaction catalyst
Tetrabutyl titanate can enhance the adhesion strength between rubber and metal surfaces, improve the wear resistance and aging resistance of rubber. This makes it widely used in fields such as tire manufacturing and seal production.
Plastic modifiers can be used as modifiers in plastic processing. It can improve the mechanical properties, heat resistance, and processability of plastics, making them more suitable for various application scenarios.
Butyl titanate can lower the temperature of ester exchange reaction, reduce the generation of by-products, and improve the selectivity and yield of the reaction. This makes it widely used in the synthesis of ester compounds such as polyurethane and plasticizers. In both condensation and crosslinking reactions, n-butyl titanate exhibits excellent catalytic performance. It can accelerate the reaction rate, improve the molecular weight and properties of the product.
Pharmaceutical and Biological Fields&Other Application Fields
Butyl titanate can be used as one of the raw materials for medical adhesives to prepare medical materials with excellent adhesive properties and biocompatibility. In some drug synthesis reactions, n-butyl titanate can be used as a catalyst to improve the efficiency and selectivity of the reaction. In the wood processing industry, n-butyl titanate can be used as a preservative and flame retardant. It can improve the durability and fire resistance of wood, making it more suitable for fields such as construction and furniture.
In the field of textiles, it can be used to improve the uniformity of dyeing and enhance the physical properties of fibers. This makes it have potential application value in the production of high-end textiles. In the cosmetics industry, n-butyl titanate may be used as a thickener, emulsifier, or stabilizer. However, due to its toxicity and environmental risks, caution should be exercised when evaluating its safety and compliance during use. Butyl titanate can enhance the adhesion of ink to the system and improve the printing effect of ink.
Field of Nanomaterial and Ceramic Preparation
Tetrabutyl Titanate serves as a core precursor for the preparation of titanium-based nanomaterials and functional ceramics. Endowed with the characteristics of controllable hydrolysis and polycondensation, it acts as a critical bridge linking molecular design and material performance, and is widely applied in the synthesis of various high-end materials.
In nanomaterial preparation, it exerts its effects primarily through the sol-gel method and hydrothermal method: hydrolysis reaction generates a titanium hydroxide intermediate, which further undergoes dehydration and polycondensation to form titanium dioxide-based materials.
By precisely regulating the reaction temperature, pH value, concentration and duration, products with different crystal forms and morphologies can be customized-anatase-type nanoparticles with high crystallinity, uniform particle size and optimal photocatalytic activity are easily formed under hydrothermal conditions at approximately 180℃; while a high-temperature alkaline environment favors the formation of the rutile type, catering to the requirements of different application scenarios.
In the preparation of functional ceramics, it is a high-quality precursor for electronic ceramics, enabling the synthesis of materials such as barium titanate and ferroelectric Bi₄Ti₃O₁₂. Ceramics prepared from it feature well-developed crystal grains and high purity, with their dielectric and piezoelectric properties precisely tunable, making them widely used in the production of electronic devices including high-frequency capacitors, piezoelectric sensors and ceramic filters.In addition, it can act as an interface modifier to improve the dispersibility of nanoparticles in ceramic matrices and enhance the mechanical and chemical stability of composite materials, thus providing technical support for the application of advanced ceramics in the fields of high-end electronics and precision instruments.

Tetrabutyl titanate (TBT) has unique physical and chemical properties and has shown extensive potential for applications in multiple fields. The following are its development prospects:
Market demand growth
With the continuous growth of the global economy and the acceleration of industrialization, the market demand for n-butyl titanate will continue to increase. Especially in high-end fields such as aerospace, chemical metallurgy, and medical equipment, the application of n-butyl titanate will become increasingly widespread. Meanwhile, with the increasing emphasis on environmental protection and sustainable development, the application of n-butyl titanate as an environmentally friendly catalyst and additive in coatings, paints, adhesives and other fields will gradually increase.
Technological innovation and industrial upgrading
With the continuous advancement and innovation of technology, the production process and product quality of n-butyl titanate will continue to improve. By improving production processes and optimizing formulas, production costs can be reduced, and the cost-effectiveness and competitiveness of products can be improved. Meanwhile, with the continuous emergence of new materials and the expansion of new application fields, the industrial chain of n-butyl titanate will continue to extend and improve, forming a more complete industrial system.
Policy support and environmental trends
The government's support for environmental protection and sustainable development is constantly increasing, which will promote the application and development of environmentally friendly chemical products such as n-butyl titanate. By formulating relevant policies and standards, enterprises are encouraged to adopt environmentally friendly catalysts and additives to promote the green transformation and upgrading of the industry. At the same time, with the continuous improvement of global environmental awareness and the increasingly strict environmental regulations, the market demand for environmentally friendly chemical products such as n-butyl titanate will further increase.
International competition and cooperation
In the context of globalization, international competition for n-butyl titanate will become increasingly fierce. Enterprises need to strengthen technological innovation and brand building, improve product quality and competitiveness, in order to occupy a larger share in the international market. At the same time, enterprises also need to strengthen international cooperation and exchanges to jointly promote the development and progress of the n-butyl titanate industry.
By introducing advanced technology and management experience, the comprehensive strength and market competitiveness of the enterprise can be improved.
Expansion of application areas
With the continuous progress and innovation of technology, the application fields of n-butyl titanate will continue to expand. In addition to traditional fields such as coatings, paints, adhesives, etc., n-butyl titanate can also be applied in emerging industries such as new energy and new materials. For example, in solar cells, n-butyl titanate can be used as a modifier for electrode materials to improve electrode performance and stability; In lithium-ion batteries, it can be used as an additive to the electrolyte to improve the cycling performance and safety of the battery.
Sustainable Development and Circular Economy
The production and use of n-butyl titanate require attention to its environmental friendliness and sustainability. By adopting advanced production processes and environmental protection technologies, energy consumption and emissions during the production process can be reduced, and resource utilization efficiency can be improved. At the same time, enterprises can also promote a circular economy by recycling and utilizing waste generated during the production process, achieving resource recycling and sustainable industrial development.
Conclusion
It is a versatile compound with a pivotal role in modern industry and scientific research. Its unique chemical properties enable diverse applications, from high-performance coatings to cutting-edge nanomaterials. As sustainability becomes a priority, innovations in TBT synthesis and utilization will drive progress in green chemistry and advanced manufacturing. By addressing safety challenges and expanding its functionalities, TBT will continue to be a cornerstone of material science and engineering in the decades to come.
FAQ
What is tetrabutyl titanate used for?
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Tetra N-butyl Titanate is often used to prepare titanium oxide materials and catalysts. Tetra N-butyl Titanate is used in the preparation of nanosized Titanium dioxide in the anatase form and ferroelectric bismuth titanate thin films. It is most commonly used to prepare nanocrystalline TiO2 at room temperature.
Is tetrabutyl titanate organic or inorganic?
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Tetra-n-butyl titanate belongs to the product group of organic titanates, which are known to be highly reactive organics that can be used in a broad range of processes and applications.
What are 5 uses for titanium?
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These alloys are mainly used in aircraft, spacecraft and missiles because of their low density and ability to withstand extremes of temperature. They are also used in golf clubs, laptops, bicycles and crutches. Power plant condensers use titanium pipes because of their resistance to corrosion.
Should I avoid titanium dioxide in sunscreen?
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Breathing in nanoparticles can lead to lung toxicity and inflammation. Some tests suggest that this could also lead to cancer. In view of this, the SCCS advises not using titanium dioxide nanoparticles in applications that would lead to any significant inhalation exposure such as powders or sprayable products.
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