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HS Code |
608560 |
| Chemicalname | Titanium(IV) Oxide Acetylacetonate |
| Casnumber | 17501-44-9 |
| Molecularformula | C10H14O5Ti |
| Molecularweight | 262.09 g/mol |
| Appearance | Yellow to orange powder |
| Meltingpoint | 153-155 °C |
| Solubility | Soluble in organic solvents such as ethanol, chloroform, and acetone |
| Density | 1.33 g/cm³ |
| Purity | Typically ≥98% |
| Boilingpoint | Decomposes before boiling |
| Storagetemperature | Store at 2-8 °C |
| Synonyms | Titanium acetylacetonate, Titanium(IV) 2,4-pentanedionate |
| Stability | Stable under recommended storage conditions |
| Ec Number | 241-493-8 |
As an accredited Titanium(IV)Oxide Acetylacetonate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Titanium(IV) Oxide Acetylacetonate, 25g, is supplied in a sealed amber glass bottle with a tamper-evident cap and hazard labeling. |
| Shipping | **Titanium(IV) Oxide Acetylacetonate** should be shipped in tightly sealed containers, protected from moisture and direct sunlight. Utilize compatible packaging materials and ensure labeling in accordance with local and international regulations. Transport as a non-hazardous chemical unless specified otherwise, and store in a cool, dry, well-ventilated area during transit. |
| Storage | **Titanium(IV) oxide acetylacetonate** should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area. Protect it from moisture, heat, and direct sunlight. Store away from incompatible materials such as strong acids and oxidizing agents. Ensure proper chemical labeling and restrict access to authorized personnel. Use secondary containment to prevent accidental spills or leaks. |
Applications of Titanium(IV) Oxide Acetylacetonate in Industrial ManufacturingTitanium(IV) Oxide Acetylacetonate delivers controlled reactivity and precise performance for advanced material synthesis, enabling downstream industries to achieve consistent product quality and regulatory compliance. As a manufacturer, we specialize in supplying this organometallic compound with strict attention to purity and lot-to-lot traceability, supporting its well-established use across multiple high-value sectors. 1. Sol-Gel Processing for Optical Thin FilmsManufacturers rely on this titanium complex as an efficient inorganic precursor when formulating sol-gel solutions for fabricating optical coatings. Its chelated structure allows heightened hydrolytic control, producing homogeneous oxide networks essential for anti-reflective and interference coatings on display glass, photovoltaic panels, and sensor substrates. Production teams adjust hydrolysis and condensation kinetics through dosage variation based on substrate geometry and desired refractive index profiles. Industry compliance standards
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2. Catalyst Precursor for Polyolefin ManufacturingThe material supports advanced catalyst synthesis for polyolefin polymerization, particularly in titanium-based Ziegler–Natta systems. Its high solubility and controlled ligand environment facilitate immobilization on magnesium chloride supports, directly impacting catalyst particle size, morphology, and polymer molecular weight distribution. Reactor operators set precursor concentration according to desired catalyst activity and downstream polymer grades, responding to batch data and intermediate QC feedback. Industry compliance standards
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3. Precursor in Advanced Ceramic Nanopowder SynthesisTitanium(IV) Oxide Acetylacetonate serves as a titanium source in non-aqueous synthesis of TiO₂ nanoparticles for ceramics and advanced composites. Chemists favor it for its stability in organic solvents, enabling tight size distribution and phase control during non-hydrolytic sol–gel or thermal decomposition routes. Powder engineering parameters such as crystalline phase, agglomeration, and particle surface modification depend on the precise precursor-to-solvent ratio and decomposition temperature schedule. Industry compliance standards
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4. Crosslinker for Heat-Resistant Polymer CoatingsThe compound acts as a crosslinking agent in specialty resin chemistries for industrial coatings applied on metal and high-temperature exposed surfaces. Its metal-organic bonding accelerates curing, enhances film hardness, and improves network formation at lower bake temperatures, reducing yellowing and increasing durability. Formulators select content levels in direct response to end-use performance data and curing process constraints. Industry compliance standards
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5. Photoactive Component in Photocatalyst ManufacturingDownstream manufacturers employ this precursor in the preparation of Ti-based photocatalysts, where fine phase control and defect minimization are critical for applications in environmental remediation and self-cleaning surfaces. Its organometallic nature enables solution-based deposition and tailored doping at laboratory to industrial scale, directly impacting reactivity under various light spectra. Formulation teams calibrate the precursor level according to performance testing for targeted photodegradation rates and film longevity. Industry compliance standards
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6. Precursor for Dielectric Layer Formation in MicroelectronicsDevice fabricators select this titanium complex for its high purity during atomic layer deposition or chemical vapor deposition of gate dielectrics on silicon wafers. The compound decomposes cleanly, supporting growth of ultrathin, conformal TiO₂ films with precise electrical properties and thickness control. Process engineers fine-tune precursor pulsing or vapor feed rates to meet evolving node technology and leakage current targets. Industry compliance standards
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Inside our production facilities, Titanium(IV) Oxide Acetylacetonate, sometimes called Ti(acac)2O2 or titanyl acetylacetonate, moves from specialty batch to useful building block for chemists seeking reliable results in advanced materials manufacturing. Industry professionals count on clearly defined chemical species that deliver performance, batch after batch. Each run, our technicians control formula and output to avoid inconsistencies that can lead to wasted research hours, failed coatings, or costly rework.
This particular titanium compound steps apart from ordinary titanium dioxide or titanium alkoxides because it merges the robustness of the titanium(IV) core with the chelating action of acetylacetonate ligands. By designing and manufacturing this product at our own site, we maintain oversight from raw material handling through packaging. Our teams study the needs of downstream users: whether you are doping thin films, catalyzing oxidations, or growing hybrid organic-inorganic nanostructures, a predictable and pure reagent proves essential.
Through the years, we adopted a model that combines classical wet chemistry with modern purification techniques. The color, particle habits, and flowability depend heavily on tight moisture exclusion, ligand-to-metal ratio, and reaction temperature. Any small deviation changes not only the visual appearance but also the performance in end applications. Chemists on our line routinely tweak distillation parameters to drive off any side-product that could hinder complexation or crystallinity. As particles form, our crystallization and drying rooms lend both the expected golden to yellow color and the degree of solubility needed for organometallic work, deposition processes, or even surface modification.
Unwanted impurities present the most serious risk to reaction reliability. Water content, hydrolyzable titanium precursors, or unreacted acetylacetone increase the chance of unpredictable color shifts, gelling, or rapid decomposition—often discovered only after hours of synthesis invested. In our experience, proper storage matters almost as much as initial purity: titanium acetylacetonate absorbs water if mishandled, so every container leaving our site receives secondary packaging and clear signage.
Having worked with hundreds of surface engineers, sol-gel researchers, and organic chemists, we hear frustration whenever an off-brand intermediate upsets a pilot run. Our batches of Titanium(IV) Oxide Acetylacetonate meet three priorities developed over years of feedback: reliable solubility in nonpolar and some polar organic solvents, controlled hydrolysis, and minimal color contamination. Many clients use the product in thin-film deposition through sol-gel or vapor-phase methods, as the ligand system allows the compound to dissolve better than many metal alkoxides, but doesn’t break down too quickly. This means clearer reaction progress and a greater chance of success without fiddling with stabilizers or drying agents in every step.
We see the biggest difference over titanium tetra-isopropoxide or titanium butoxide in the way our acetylacetonate product handles air exposure. The acetylacetonate ligands slow down the hydrolysis that usually plagues titanium alkoxides, so solution-phase work becomes less rushed. Researchers synthesizing porous or hybrid materials describe fewer failed runs and a wider range of compatible solvents. This efficiency plays out every day in our quality control labs: comparative runs using alkoxides often gel before the end of a deposition cycle, while the acetylacetonate ligand structure delivers more manageable processing windows and higher yield of target materials.
Several aspects distinguish Titanium(IV) Oxide Acetylacetonate from standard oxide or alkoxide options. One core advantage rests in its chelation stability: acetylacetonate ligands latch onto the titanium center tightly, blocking quick hydrolysis and sidestepping unpredictable oligomerization or precipitation. Many researchers need a titanium reagent that behaves the same under slightly variable conditions; inconsistency wastes both money and credibility for academic or industrial teams. Our product answers this demand with a robust, reproducible synthesis and purification approach.
Titanium(IV) Oxide Acetylacetonate helps users move closer to tunable reactivity as it supports not only controlled hydrolysis into oxides, but also complexation with organic or inorganic network formers. The acetylacetonate ligands do not contribute free alcohol byproducts during hydrolysis, in contrast to titanium alkoxides. This makes cleanup easier in sensitive catalyst systems or microelectronics fabrication. Some users report improvements in the surface smoothness and adhesion of spin-coated films compared to classical titanates.
Our technical development group collects end-user stories from research and manufacturing. Compared to TiO2 nanopowder or bulk rutile/anatase forms, the acetylacetonate product offers much greater solubility control, faster process development, and more predictable outcomes in multi-step syntheses, since chemical reactivity can be dialed up or down with changes in climate, pH, or additive regime. From our hands-on perspective, this product reduces the number of rework cycles in research and increases the reproducibility rate of formulation labs.
Experience counts in making Titanium(IV) Oxide Acetylacetonate that meets demanding project requirements. Our team learned early on that fully anhydrous conditions and slow addition of ligands are key in producing high assay, free-flowing crystals or powders. Aggressive mixing or exposure to acid traces increases the likelihood of subpar batches: hydrolyzed byproducts, tinted off-colors, and sticky cake instead of usable product. In our view, automation only covers half the challenge. Careful physical transfer, analytical spot-checks, and regular batch-to-batch calibration deliver a reliability level that automated-only systems have trouble matching for this compound.
During bottling and storage, our technical operations group minimizes labile byproducts and cross-contamination by using sealed, nitrogen-purged environments. Each lot receives moisture and spectroscopic testing to ensure only intended chemical species leave the plant. We notice that excessive time on warehouse shelves, especially under humidity swings, degrades some competitors’ products even before reaching the customer. Our in-house testing confirms that acetylacetonate-titanium complexes are best used within certain time frames for top performance—offering insight to our partners about best practice handling and rotation.
In pilot production for nano-structured films, a research group chose our batch for its greater shelf-life and lower volatility in solution. Once, an electronics coatings team reported blockage issues running a titanium isopropoxide solution through their vapor deposition setup: switching to our acetylacetonate variant reduced downtime, as the mix no longer gelled prematurely. Another partner in organic synthesis found that oxygen transfer reactions using Ti(acac)2O2 met both catalytic efficiency and color requirements, with far less post-reaction cleanup.
Teams developing new protective coatings for glass often seek out our product to tune layer thickness and uniformity by adjusting ligand composition and titanium core ratios. Some specialty polymer researchers work with this titanium complex as a cross-linking or additive precursor, adjusting process temperature and solvent choice for desired dispersion or reactivity. We have helped start-ups and major enterprises alike by advising on the practical aspects of scale-up: solubility in various carrier fluids and how to meter the feed rate for large reactors or spray systems.
One of the largest drivers for adoption in battery and catalysis research comes from the reduced hassle during purification steps. Our experience shows that unwanted hydrolysis often introduces sticky or particulate impurities, jeopardizing the targeted microstructure. Acetylacetonate complexes behave with greater predictability, which translates into fewer interrupted synthesis runs and more reliable batch reports. Scientists return to our support team to discuss fine-tuning process conditions—not to troubleshoot basic reagent failure.
For all the technical performance, we cannot ignore long-term industry and regulatory shifts. Environmental priorities grow every year. Though no pathway fits every use case, we adjust solvent recovery, minimize waste handling, and monitor energy utilization across our production lines. Experience with high-volume contract runs teaches us that proper containment, worker training, and rapid error reporting ensure operations stay compliant, safe, and responsive to any process deviation.
Handling volatile organometallics poses challenges. Titanium(IV) Oxide Acetylacetonate demands careful inhalation, contact, and storage precautions, given its potential for low-level toxicity and tendency to form dust. Our operating guidelines address not just synthetic yield, but also ergonomic handling, PPE selection, and first-response troubleshooting for spills or container leaks. The team learns not just from our own safety audits but also from customer feedback about best practices across diverse lab and plant settings.
Many partners value the transparency we provide about composition and manufacturing process. The growing interest in traceable, well-characterized chemicals goes far beyond regulatory paperwork; it supports robust claims about product origin, handling history, and sustainability strategy. By answering technical questions directly from our chemists—not intermediaries—we share the kinds of process insight that often clarifies scale-up decisions or risk mitigation.
Manufacturing at source builds lasting relationships. Every challenge feeds back into production improvement. Downstream effects, such as delayed runs or odd product appearances, rarely reach the level of persistent issues; we maintain an open channel for field reports, helping researchers understand where formulation quirks originate and how to adjust process conditions for Titanium(IV) Oxide Acetylacetonate. When feedback signals trouble—clumping, unexpected hydrolysis rates, color changes during formulation—we run targeted lab studies to map variables like storage temperature, dosing speed, and co-solvent compatibility.
This model of support, grounded in first-hand experience, helps partners sidestep downtime while pursuing better process outputs. Our in-house specialists consult on blending, dosing, and scale-up variables so that each research or industrial user moves quickly from bench-scale concept to manufacturing-ready process. Quality improvements stem from this constant, direct exchange of experience across disciplines: synthetic chemistry, materials science, process engineering, and HSE (health, safety, and environment) compliance.
Our reputation rests on more than certificates of analysis. Reliable manufacture of Titanium(IV) Oxide Acetylacetonate grows from decades of close work with academic, R&D, and industrial chemists. We document and adjust every aspect of processing so that every container reflects exactly what years of hands-on know-how have taught us. Reproducibility, quick response to problems, proactive advice, and visible supply chain transparency define our approach—not as marketing extras, but as core elements of what makes a chemical product trustworthy and valuable for advanced applications.
Better outcomes in the lab and plant are not coincidences. They reflect chemistry fine-tuned for end-use, not just batch output. Support from our own experts, built-in quality and safety controls, and willingness to adapt manufacturing methods for new challenges mean that Titanium(IV) Oxide Acetylacetonate from our facility answers the call not just for today’s processes, but for the evolving needs of future-facing research and industries.