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HS Code |
441668 |
| Cas Number | 112-14-1 |
| Molecular Formula | C10H20O2 |
| Molar Mass | 172.27 g/mol |
| Iupac Name | Octyl acetate |
| Appearance | Colorless liquid |
| Odor | Fruity odor |
| Boiling Point | 211 °C |
| Melting Point | -38 °C |
| Density | 0.87 g/cm3 (20 °C) |
| Solubility In Water | Insoluble |
| Refractive Index | 1.412 (20 °C) |
| Flash Point | 87 °C (closed cup) |
As an accredited Acetic Acid Octyl Ester factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 500 mL amber glass bottle with screw cap, clearly labeled "Acetic Acid Octyl Ester," includes hazard symbols and lot number. |
| Shipping | Acetic Acid Octyl Ester should be shipped in tightly sealed containers, protected from moisture and direct sunlight. It is classified as a flammable liquid and should be transported according to relevant hazardous material regulations. Ensure proper labeling, use non-reactive packaging, and store upright to prevent leaks during transit. |
| Storage | Acetic Acid Octyl Ester should be stored in a cool, dry, well-ventilated area away from sources of ignition and incompatible substances, such as strong oxidizers. Keep the container tightly closed and protected from direct sunlight. Store in approved flammable liquid containers. Ensure proper labeling and avoid prolonged exposure to air to prevent degradation and vapor accumulation. |
Applications of Acetic Acid Octyl Ester in Industrial ManufacturingAcetic acid octyl ester, also known as octyl acetate, is a high-purity organic solvent widely integrated into industrial production by paint, coatings, ink, plasticizer, and flavor and fragrance manufacturers. As a primary manufacturer, we supply this material for specialized downstream processes, supporting strict compliance and formulation control across multiple sectors. Below, we present the key application scenarios grounded in actual industries, highlighting compliance, usage, integration points, and final product types for each. 1. Industrial Paints and Coatings FormulationPaint and coatings producers utilize acetic acid octyl ester as a solvent to improve flow, leveling, and application properties in both solventborne and waterborne systems. Its mid-range evaporation rate allows formulators to control drying times during manufacturing of high-performance architectural or industrial coatings. Compatibility with acrylics, nitrocellulose, and alkyd resins supports smoother production lines with reliable batch-to-batch quality. Operations implement this ester primarily during letdown and blending stages to ensure consistency and downstream process efficiency. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Printing Ink ManufacturingCommercial ink producers rely on acetic acid octyl ester for its effective solvency of dyes and resins used in gravure and flexographic inks, specifically for flexible packaging and specialty printing applications. Manufacturers value its adequate drying characteristics, which help minimize ink set-off and ghosting on high-speed presses. It also enables precise viscosity and film formation control during ink mill and letdown stages, supporting vibrant color development and printability on diverse substrates, such as PE films and coated papers. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Plasticizer and Polymer Processing AdditivesPlastics compounders and additive manufacturers utilize acetic acid octyl ester as an intermediate and processing aid in the production of certain plasticizers and specialty copolymers, especially in PVC modification and coatings for wire and cable insulation. It enhances workability by improving plastisol compatibility and mixing behavior, streamlining downstream compounding and extrusion. Incorporation as a copolymerizable ester also helps reduce fusion temperatures and promotes clarity in clear PVC applications. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Flavors and Fragrances ManufacturingThe flavors and fragrances sector employs acetic acid octyl ester as a fruity, naturally occurring aroma compound during blending and dilution of flavor oils and fragrance bases. Its desirable scent and recognized status as a GRAS (Generally Recognized as Safe) flavoring ingredient allow use in both food-grade and cosmetic-grade blends. Accurate dosing during essence compounding ensures batch-to-batch reproducibility and compliance with food and personal care regulations. Our controlled supply enables consistent production of bases for beverages, confectioneries, perfumes, toiletries, and homecare products. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
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Acetic Acid Octyl Ester, often recognized in industry circles as Octyl Acetate, carries the chemical formula C10H20O2 and draws attention for more than just its fruity scent. People in labs and on plant floors know it as a clear, colorless liquid with practical uses that stretch from fragrance manufacturing to specialty coatings. At our manufacturing site, we produce Octyl Acetate under tight quality checks—pureness exceeding 99%, with strict limits on moisture and acidity, letting formulators count on consistency without needing to troubleshoot impurities batch-to-batch. The CAS number for this ester is 112-14-1, which helps technical folks reference it in regulatory and safety paperwork, but over years of handling drums, beakers, and bulk tanks, it’s the material’s performance and cleanliness that speak loudest.
As a chemical manufacturer focused on esters, we see daily how Acetic Acid Octyl Ester forms a bridge between nature-inspired scents and the technical needs of industrial processes. It’s not a mystery why perfume houses and flavor blenders order ton lots: this ester delivers a nuanced, citrusy-fruity profile with hints of jasmine that can lift the dullest blend into something vibrant, without drowning out subtler notes. Personal care formulators often want a soft, sweet finish in shampoos or bath oils, and this ester manages to resist volatility, staying present longer than the shorter-chain acetates. Mixing Acetic Acid Octyl Ester in food flavors or beverages happens only under strict regulations, but its presence in these applications, when appropriately used, creates a recognizable, pleasing aroma that is difficult to recreate with other compounds.
On our end, synthesis involves controlled esterification, and we source both glacial acetic acid and carefully selected 1-octanol, with each shipment logged and sampled to guarantee repeatable performance for end-users. Heating, agitation, and precise removal of water drive the reaction as we balance reaction time and temperature to keep byproducts below thresholds—all methods fine-tuned through decades of experience, not just textbook trial and error.
Customers often ask for specs, but in application, the feel of the material matters most. We control water content below 0.1%, keep acidity minimal, and limit color to a near-water-white appearance—anything less and your fragrance blends can brown or lose clarity after a month on the shelf. Impurities above trace levels ruin the delicate top notes of a luxury perfume or skew a beverage flavor, so real-world attention goes far beyond numbers on a sheet. Consistency means no hesitation on your end—blenders, perfumers, and formulators that return to us year after year recognize batches that pour the same, dilute the same, and work up reliably, whether it’s 200 kilograms in a drum or smaller pails shipped for pilot batches.
We fill each order in pure steel or high-density polyethylene containers and store finished Acetic Acid Octyl Ester in temperature-stable warehouses to minimize oxidation. This reduces breakdown of the ester and helps keep off-notes out of your product line, an issue we catch immediately through headspace-gas chromatography in our onsite lab. Our approach to documentation has grown from dealing with regulatory agencies and strict customer audits—full certificates of analysis accompany every shipment, detailing moisture, acidity, and purity tested from retained samples.
People new to the world of esters might group this compound with simpler acetates like ethyl acetate or butyl acetate. Anyone who has used them knows the story is more nuanced. Ethyl acetate, with its sharp, volatile character, flashes off nearly as soon as it’s applied. Butyl acetate still evaporates quickly and fits well in fast-drying lacquers and certain adhesives, giving a punchy, short-lived apple note in fragrances. Now, compare that to Octyl Acetate: the longer octyl chain slows evaporation, offering persistence in a finished formulation. This trait, valuable for perfumers and flavorists, means your top notes remain approachable much longer, whether diffused in a room or worn on skin.
Our team frequently solves problems for customers who “just need a longer-lasting acetate.” Using Acetic Acid Octyl Ester, you get a larger molecular structure, which resists quick breakdown and volatility. It also brings low solubility in water but great affinity for oils and alcohols. This property is why it integrates seamlessly into oil perfumes and lends a buttery, juicy roundness to citrus and tropical flavors in drinks without causing haze issues.
Other esters sometimes hit limits under regulatory pressures—not all are food grade, and many draw attention for their higher volatility or flammability risks. Octyl Acetate’s flash point, around 76°C, cuts hazards compared to the lighter acetates. The slight increase in viscosity and decreased vapor pressure let formulators work with less stress about rapid solvent loss, workplace exposure, or compliance headaches. In paints or coatings where smooth, slow evaporation matters, this ester stays stable and predictable, a fact firsthand confirmed by cooperative project trials with coating producers and ink makers.
Each season brings new launches in personal care, fine fragrance, and flavors, but trends also circle back. Octyl Acetate’s sweetness and persistent effect mean flavorists reach for it in orange, pear, and apricot notes. Its ability to deliver realistic, natural fruit signatures separates bland candies from products that create a taste memory. Flavored beverages like sodas and energy drinks, though demanding strict purity and documentation, benefit from the ester’s lingering finish. Technical users in fragrance pay close attention to how Octyl Acetate serves both as a fixative and as a brightener in colognes, home air fresheners, and scented detergents.
Experiments in our applications labs, sometimes run with customer samples and feedback, identified blends of this ester with lower-molecular-weight acetates or with certain aldehydes help achieve room fragrances that lift from diffusers for hours longer. Other esters lose impact fast, but Octyl Acetate keeps lighter fruit notes alive. In hair and skincare, formulators find it a safe alternative to phthalate-containing solvents, enhancing aroma longevity without raising red flags under global safety standards.
Beyond scents and flavors, the ester makes its mark in industrial settings. Its solvency profile helps dissolve specialty resins and additives in ink and coatings. Printers and paint companies facing rapid drying or orange-peeling use the compound to adjust open time and flow. In all of these cases, users tell us that switching to shorter-chain esters means reformulating recipes to compensate for faster evaporation—often with disappointing results. Stick with Octyl Acetate, and products retain their workability and shelf life.
Manufacturing isn’t a matter of pushing a button and walking away. Our experience with Acetic Acid Octyl Ester stretches decades, and each improvement stems from direct observation and daily problem-solving. People sometimes ask why invest in such fine tolerances or batch records. Without constantly refining purification, you risk a finished product that fails at the customer’s site. Investing in filtration and distillation improvements, and maintaining separate lines for esters with strong odors, has shielded us and our customers from contamination headaches.
Late-night calls about “off-odor” shipments always trace to lapses in plant hygiene, cross-contamination, or inadequate packaging, not the chemistry itself. Working closely with blenders and formulators, we keep feedback channels open. Adjustments or troubleshooting happen faster, so our customers avoid slowdowns and rejected batches. Inline monitoring with quick GC-FID analysis and qualified staff prevents compromised shipments from leaving the plant. The value of this discipline appears not in neat paperwork, but in formulator trust and uninterrupted production at customer sites.
In complex blends, such as luxury fragrances or beverage enhancers, even a one-percent swing in purity can skew product outcome. That’s why our technical team regularly participates in customers’ pilot runs and doesn’t shy from recommending different grades or blend ratios if conditions suggest it. Hands-on knowledge, not only theoretical guidance, moves projects forward and keeps end products distinguished from generic competition.
As governments and industries watch chemicals more closely, requirements for documentation and compliance grow tougher each year. For Acetic Acid Octyl Ester, detailed traceability—tracking the origin and shipment of raw materials, capturing batch dates, and maintaining production logs—supports not just our peace of mind but the confidence of fragrance and flavor customers who face their own audits. Regulations, such as REACH in Europe and standards from the U.S. Food and Drug Administration, set clear expectations, and we follow them, not only to “tick boxes,” but because lapses expose everyone to unnecessary risks.
Long before shipment leaves the plant, our staff controls quality at every checkpoint. Periodic employee refresher courses—for everything from hazard communication to accurate recordkeeping—aren’t just for paperwork compliance. They build habits of care on the plant floor. Should a shipment need rapid lookup, we keep digital archives of all COAs and batch reports, matched by batch codes on every drum, which customers can check on arrival. For food or pharma customers, who often need kosher or halal certification, we accommodate with fully segregated processing and documented cleaning. Satisfying these requests demands not only documented procedures, but crew vigilance and ongoing management involvement.
Many buyers face urgent orders or recipe tweaks on short notice. Thanks to automated monitoring and a responsive team, we can shift batch sizes or adjust logistics within short lead times. Smaller, custom lots—rare in large commodity chemical plants—are possible here, and our batch-reactor setup means quick turnover when custom blends or particular technical documentation come up.
After delivery, we keep communication open. If performance shifts or application issues arise, our technical staff dig into the problem and troubleshoot formulation questions or regulatory updates. Having worked alongside fragrance developers, beverage companies, and coatings chemists, we see not just the technical parameters but the intended effect. Our recommendations go beyond just spec sheets—suggesting complementary materials, optimal dilution ratios, or even alternate solvents for better performance, always based on bench-level data and shared experience.
Pressure to minimize waste and cut emissions drives investments throughout the production cycle. Recycling heat and solvents during distillation, minimizing residual organics in wastewater, and reducing energy footprints all shape process decisions. We upgraded separation systems to lower waste streams and just as importantly, keep product odor and color at the high quality end-users demand.
We collaborate with waste handlers for responsible disposal or recycling of spent solvents and off-spec material. Our technical group continuously screens alternative catalysts and greener solvents, investigating routes that use less energy or hazardous material while still hitting the same product benchmarks. Customers who prioritize eco-friendly credentials also push us to improve; every update in recycling and emissions control supports both market preference and a healthier work environment. We take pride in progress made, but keep working since customer expectations keep rising—regardless of current “minimum requirements.”
People who visit our facility often ask what makes real quality in Acetic Acid Octyl Ester. The answer isn’t found in just molecular formulas, but in lots of careful choices. Achieving repeatable aroma, minimal impurities, and stable shelf life matter more than theoretical yields or laboratory numbers. The work shows up in long-term customer satisfaction, in solvent blends that stay clear month after month, and in fragrances that deliver consistent effect bottle to bottle or batch to batch.
Another frequent topic is product compatibility. Acetic Acid Octyl Ester blends well with a wide range of essential oils, alcohols, and fatty alcohols, which gives perfumers and flavorists plenty of options. In technical coatings, it works with acrylates and specialty copolymers, adapting to different application systems without precipitation or clouding. Safety and handling, too, draw interest. As an ester, Octyl Acetate asks handlers to take precautions against skin or eye contact and to ensure good ventilation, but it carries fewer risks than some volatile aromatics or chlorinated solvents commonly used in coatings and ink processes.
Shelf life lasts over a year in sealed containers, kept out of direct sunlight and away from oxidizers. We clearly date and sample each drum at shipping, and take pride in a track record of zero returned batches due to performance loss over typical storage timelines. The experience we gather every day refines practices beyond any written procedure, blending technical skill, real feedback, and a shared interest in making high-value chemicals work better for every customer.
We see new uses for Acetic Acid Octyl Ester every year as trends in personal care, beverage, and coatings shift toward natural aromas and user-friendly performance. Labs send in new requests for modifications—sometimes a higher-purity grade aimed at fine perfumery, or blends that keep rising regulatory hurdles in mind. Our commitment runs deeper than just shipping what is asked; we challenge our chemists and production managers to improve yield, odor, and application performance with each cycle.
The technology and methods might change, but it’s the steady connection with formulators, brand owners, and R&D specialists that builds value. In the long run, working on site and walking the factory floor beats arm’s-length commerce. We know firsthand every link in our process, from raw feedstock checks to drums rolling out the door, and stay ready to answer questions, run custom blends, or address product needs that don’t exist yet on today’s market.
To industry peers and buyers alike, Acetic Acid Octyl Ester continues as both a foundation and a differentiator. The subtle differences between this and lighter esters—its aroma, staying power, and technical reliability—aren’t accidents. They’re results of process control, careful chemistry, and years of track record not only in keeping products moving, but in helping customers build theirs better, bottle after bottle, year after year.