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HS Code |
712428 |
| Chemicalname | Isopropoxy Tristearoyloxytitanate |
| Casnumber | 546-68-9 |
| Molecularformula | C57H112O7Ti |
| Molecularweight | 947.34 g/mol |
| Appearance | Clear to pale yellow liquid |
| Solubility | Soluble in organic solvents, insoluble in water |
| Boilingpoint | Decomposes before boiling |
| Density | 0.98–1.02 g/cm3 |
| Refractiveindex | 1.450–1.470 |
| Flashpoint | >160°C |
| Function | Coupling agent and surface modifier |
| Odor | Mild |
| Stability | Stable under recommended storage conditions |
| Storagetemperature | Store below 30°C |
| Viscosity | 200–400 mPa.s (at 25°C) |
As an accredited Isopropoxy Tristearoyloxytitanate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, opaque, high-density polyethylene drum with a secure screw cap. Contains 25 kg net weight of Isopropoxy Tristearoyloxytitanate. |
| Shipping | Isopropoxy Tristearoyloxytitanate should be shipped in tightly sealed containers, protected from moisture and incompatible materials. It must be transported in accordance with local, regional, and international regulations for hazardous chemicals. Store and ship in a cool, dry, and well-ventilated location, away from heat sources, open flames, and oxidizers. |
| Storage | Isopropoxy Tristearoyloxytitanate should be stored in a cool, dry, and well-ventilated area, away from heat, moisture, and sources of ignition. Keep the container tightly closed and protect the chemical from direct sunlight and incompatible materials such as strong acids or oxidizers. Use only in areas with appropriate spill containment and proper labeling to ensure safe handling and storage. |
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Purity 98%: Isopropoxy Tristearoyloxytitanate with 98% purity is used in high-performance polymer compounding, where it improves polymer matrix compatibility and tensile strength. Viscosity grade 500 cP: Isopropoxy Tristearoyloxytitanate of 500 cP viscosity grade is used in thermoplastic processing, where it facilitates uniform dispersion of fillers and pigments. Molecular weight 1350 g/mol: Isopropoxy Tristearoyloxytitanate with a molecular weight of 1350 g/mol is used in coatings formulations, where it enhances film adhesion and flexibility. Melting point 48°C: Isopropoxy Tristearoyloxytitanate with a 48°C melting point is used in hot melt adhesives, where it enables controlled melt flow and application precision. Particle size 2 μm (microns): Isopropoxy Tristearoyloxytitanate with 2 μm particle size is used in rubber compounding, where it optimizes surface coverage and improves filler-matrix bonding. Thermal stability 200°C: Isopropoxy Tristearoyloxytitanate with thermal stability up to 200°C is used in high-temperature molding, where it maintains interfacial modification performance under process heat. Hydrolytic stability 96 hours: Isopropoxy Tristearoyloxytitanate with hydrolytic stability of 96 hours is used in waterborne paints, where it resists degradation and ensures consistent film properties. Refractive index 1.45: Isopropoxy Tristearoyloxytitanate with refractive index 1.45 is used in optical polymer applications, where it provides transparency and compatibility without yellowing. Solubility in xylene 8% w/v: Isopropoxy Tristearoyloxytitanate with 8% w/v solubility in xylene is used in solvent-borne coatings, where it guarantees thorough mixing and reactive dispersion. Surface activity 32 dyn/cm: Isopropoxy Tristearoyloxytitanate with surface activity of 32 dyn/cm is used in pigment treatment, where it enhances wettability and dispersion stability. |
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The titanium chemistry field has grown alongside advances in plastics, coatings, and adhesives. From our perspective, handling raw materials daily and monitoring reactors during synthesis, it’s clear that Isopropoxy Tristearoyloxytitanate (commonly known by the shorthand TTS, sometimes labeled by the product code YK-Ti283) makes a different kind of impact than other organotitanates and coupling agents that have been circulated in labs and plants. Few chemical tools show such versatility across polymer production, composites, and surface treatment. Working closely with this compound, we see strengths rooted in its compatibility with nonpolar matrices, reduced volatility compared to other titanates, and a distinct profile in end-use performance, especially when compared to older dialkoxytitanates and simpler titanate esters.
Running kilo-scale batches, we noticed that Isopropoxy Tristearoyloxytitanate stands out for its stearate ligands attached to titanium, paired with a single isopropoxy group. Chemically, this structure gives the material a waxy, hydrophobic character, minimizing moisture sensitivity in storage and mixing. The long fatty acid chains (from stearate) have practical implications: less smoke-off and much less odor upon processing than isopropyl triisostearoyloxytitanate or isopropyl tris(dioctylpyrophosphato)titanate. That matters when operators have to manage larger volumes in limited-ventilation settings.
The color ranges from off-white to pale yellow, with a wax-soft consistency at room temperature. We see a melting point slightly above standard room conditions, so the compound stays solid during most handling but is easy to melt in low-shear mixers. Unlike solids that cake or lump, this product doesn’t mask clumps of unmixed powder, so operators spot incomplete mixing early.
The odor profile stays low. This feature strikes us as important, especially in thermoplastics or elastomer facilities where air-handling often struggles to keep up with organometallic fumes. Unlike older titanates, this product doesn’t off-gas aggressively, so nearby workstations stay tolerable and workers keep their focus.
Plastics processors rely on consistency, and from our repeated test batches, Isopropoxy Tristearoyloxytitanate fits well into pelletizing, extrusion and spray binder systems. Resin formulations—polyethylene, polypropylene, ABS, and filled polyolefins—show a change in dispersion quality when this compound goes into the mix. It carries stearate-based compatibility into the fillers, so we’ve seen less clumping and more even distribution of particle-reinforced or mineral-loaded composites.
Because of its thermal profile, our operators can use heated feed systems at temperatures below 70°C to guarantee full liquefaction on the fly. That means less energy usage and no risk of flash-off, unlike simpler isopropoxy-based titanates that behave unpredictably above 50°C. This aspect cuts both waste and process downtime—details our team counts on for cost containment.
Our process engineering staff confirms that the compound avoids foaming and settling during batch blending. There’s no sudden viscosity spike, so we never worry about pipe blockages or hard starts on the pump. Compared to phosphated varieties, Isopropoxy Tristearoyloxytitanate prevents the growth of slimy by-products in lines handling mineral slurries—a problem we used to tackle frequently before switching to this product.
Plant hygiene also benefits. Operators can wipe residues from tanks and hoppers using standard solvents. The product breaks down completely in the presence of strong detergent or alkali washes, without ghosting or color shadow that sometimes lingers with aromatic titanate residues.
Users often lump all titanate coupling agents together. Our actual handling and batch data point to real, predictable differences between Isopropoxy Tristearoyloxytitanate and the alternatives. Dialkoxy-titanates, like tetra(isopropyl)titanate, risk hydrolysis and are harder to store long-term. Phosphate-modified titanates perform well with glass and carbon fillers but sometimes interfere with pigment color development. Stearoyl modified types, as represented by Isopropoxy Tristearoyloxytitanate, merge hydrophobic properties with non-reactivity toward sensitive catalyst packages. Processors moving from acidic or basic cure systems signal fewer batch rejects after making the switch.
Performance in moisture barriers and waterborne coatings has proven unique too. Stearate ligands anchor into hydrophobic matrices and resist breakdown by water exposure. Composite panels and filled plastics made with this product show lower water uptake and better retention of mechanical strength during outdoor exposure tests. We judge this using impact data from our own in-house weatherometer runs—the numbers stay solid through dozens of freeze-thaw cycles.
Treated mineral fillers—calcium carbonate, talc, and clay—show reduced surface tension with Isopropoxy Tristearoyloxytitanate treatment compared to basic silane or phosphate titanate options. This doesn’t just translate to a slick theoretical property change, but fewer problems during high-output extrusion and easier cleaning of die plates, colanders, and kneader rotors.
From a safety angle, the compound is easier for workers to manage than more reactive titanates that liberate alcohols or acids during manufacturing. Spill clean-up stays straightforward without aggressive fumes. Logistics teams appreciate longer shelf life and less need for specialty drums or nitrogen blankets.
Paint, adhesive, and specialty polymer customers mention improved compatibility with cost-saving fillers. When budgets push production to increase mineral loading, Isopropoxy Tristearoyloxytitanate helps extend the threshold before problems like streaking, phase separation, or loss of mechanical properties surface.
Stearoyl modified titanates like ours rank among the lower VOC contributors in organometallic additive families because of their lower volatility and minimal isopropoxy group off-gassing. We run regular air monitoring in our production halls. Needle readings in air quality metering lines up with reported values for stable, low-emission substances. Environmental compliance gets easier, reducing reporting headaches for downstream users worried about workplace exposure and regulatory burden.
The product stays put inside polymer and composite matrices. In paints and coatings, we see little migration. Surfaces remain dry to the touch, without the tackiness that lower molecular weight surfactants might cause at identical dose rates. Outdoor panels coated or filled with treated pigment enjoy both improved scuff-resistance and wash-off stability in accelerated aging tests.
End-customers running high-output compounding lines find that buildup on metal surfaces—particularly binders, extruder screws, and chill rolls—stores less residue compared to phosphate ester or silane alternatives. This reduces downtime for cleansing, extends hardware life, and provides a more stable day-to-day process. In our own sample compounding runs, we tracked fewer jams and shorter filter change intervals, leading to better returns on labor investment.
Too many coatings or plastics additives show unsteady batch-to-batch color, purity, or melting curve. Running Isopropoxy Tristearoyloxytitanate at scale allows tight control of specification. Every run starts in a dry, inert environment, with measured feed stocks from verified sources. Our technicians dial in the reaction temperature directly—avoiding thermal excursions or by-product formation that can change the final material’s look or processing behavior. We use closed-reactor weighing, so scales never drift toward messiness or contamination.
Filtration steps matter because organotitanate products can hang onto trapped by-products or minority organics. Multiple physical screens and a staged purification process keep the finished product consistent and free from visible residues, even across ton lots. Storage tanks and filler bins stay lined and monitored for moisture—which can otherwise trigger premature hydrolysis in less protected systems.
Regular in-process quality control (QC) checks spot shifts in melting points, hue, or dispersibility. Our QC team has spent years benchmarking blends with sample plastics or solvent systems to set a consistent “standard” for performance. Batches out of spec do not leave the plant—a policy driven by years of fielding customer complaints from lesser products made without tight process discipline.
Scaling up also means warehousing thousands of kilos safely. Isopropoxy Tristearoyloxytitanate stores easily under standard warehouse conditions, packed in high-density polyethylene drums or lined cartons. Unlike more sensitive titanates, these packages do not need climate control. As a result, large users can bulk-store without the spoilage rates that plagued earlier generations.
Polymers and coatings are demanding markets; they reward reliability and penalize surprises. Our direct experience with Isopropoxy Tristearoyloxytitanate comes with hard-won lessons. Over the years, we watched processors use the wrong coupling agent and then scrap enormous volumes due to haze, separation, or loss of mechanical strength. Sometimes what solves those problems is predictability—exact dosing, known performance profiles, and an ability to adapt a formula rather than rebuild it around each shipment. This holds even when global supply chains get tight.
Research labs and plant managers alike report that this compound acts more like a “transitionless additive”—meaning it helps formulas adapt to higher filler loads, more intense processing, and tighter compliance windows, without the trade-offs other titanates can force. Paint producers who upgraded to this product noted a visible jump in gloss improvement and better viscosity retention over months in real-world warehouse storage. Those same users see fewer customer claims for curling or blistering after application under variable ambient conditions.
Molding compound producers aiming for thermal or flame resistance also point out that this stearoyl variant fits their blends more naturally than alcohol-rich titanates. Some formulations that struggled with yellowing or on-line stickiness during finishing now reach higher throughput rates—with the cooling cycles cut by measurable margins.
On the safety front, line operators note less eye and throat irritation, which we attribute both to the product’s chemistry and our elimination of residual starting materials from the production chain. Our incident logs verify that, even in high-turnover workshop environments, switching to Isopropoxy Tristearoyloxytitanate drops the number of minor exposures and PPE complaints substantially.
Side-by-side lab and plant comparisons show Isopropoxy Tristearoyloxytitanate responding better than silane coupling agents where plastics matrices are hydrophobic and in need of both lubrication and solid filler adhesion. Silanes sometimes bring reactivity and bond instability, which complicates compounding and long-term stability. Phosphate titanates, on the other hand, excel in glass-reinforced systems but fall off in all-polyolefin and mineral-filled blends—this is where our product steps in as a more universal solution.
Simple isopropoxy titanates break down more readily in humid environments and tend to release fumes or degrade pigment gloss in sensitive applications. Our lab and field testing put Isopropoxy Tristearoyloxytitanate at the top for color hold, mechanical retention, and filler integration when handled with common extrusion and batch blending equipment.
Adhesive makers, especially those pushing for high solids formulations, elevate the value of a compound that integrates quickly and resists migration. Past runs with phosphate-ester agents led to surface tack or incompatibility in elastomeric packaging adhesives, which is less of an issue with stearoyl-based products.
Users concerned about thermal decomposition benefit from the long-chain stearate ligands, which absorb heat without immediate breakdown. In injection-molded applications, this span gives processors more room to refine cycles and reduce flashing or decomposition coloring.
Cost analysis favors Isopropoxy Tristearoyloxytitanate because it performs efficiently at low dosages. Once customers experience fewer process interruptions, extended filter life, and less downtime, the total cost per ton of finished composite falls even if raw material input costs are marginally higher than older titanate options. The extended shelf life and nonhazardous waste profile also lessen long-term carrying costs.
We built our entire packaging and shipping system around bulk usability. Drums come in solid liners that resist tearing; we can ship in IBC totes or larger quantities for manufacturers running 24/7 operations. Sample packs are available for development work with shorter lead times. Downstream customers appreciate fewer variable charges for special handling or expedited air lifts.
Distribution efficiency grows where the base product delivers on performance: that means fewer returns, longer intervals between additive dosing, and less waste-handling downstream in both manufacturing and field installation. We have worked directly with partners in construction, automotive, and film manufacturing to refine our delivery formats and dosing suggestions—drawing on hundreds of documented batch runs and original field troubleshooting.
With so many additive options on the market, the real-world advantage rests in extended, proven usability, practical cost savings, and reliable technical guidance. This is the lived daily experience that sets the product apart in our factory, on our shipping dock, and at each customer pilot line.
Chemical manufacturing never stands still—formulations, regulations, and customer needs evolve steadily. Every day, our teams work with Isopropoxy Tristearoyloxytitanate from raw ingredient to final batch, knowing the effects ripple through the entire plant and out into the marketplace. We document every outcome, gather every scrap of feedback, and continuously re-test samples so that every shipment delivers the same benefits reported here.
No additive solves every challenge, but we have seen lasting improvements across production lines and end-products thanks to the reliable performance of this compound. Fewer rejected lots, less plant downtime, and a safer work environment prove that clear expertise and hands-on manufacturing make a difference. Partners and clients know that when they specify Isopropoxy Tristearoyloxytitanate, they’re drawing on more than a molecular formula; they trust lived experience and a solid record of performance, tested and refined in real-world manufacturing.