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HS Code |
395231 |
| Product Name | Allyl (3-Methylbutoxy)Acetate |
| Cas Number | 67634-20-2 |
| Molecular Formula | C10H18O3 |
| Molecular Weight | 186.25 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 230-235°C |
| Density | 0.96 g/cm³ |
| Refractive Index | 1.423 - 1.427 |
| Flash Point | 90°C |
| Odor | Fruity, apple-like |
| Solubility | Insoluble in water; soluble in organic solvents |
| Purity | Typically ≥ 95% |
| Storage Temperature | Store in a cool, dry, well-ventilated place |
| Stability | Stable under recommended storage conditions |
| Uses | Primarily used as a flavor and fragrance ingredient |
As an accredited Allyl (3-Methylbutoxy)Acetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Allyl (3-Methylbutoxy)Acetate, 100g, is supplied in a sealed amber glass bottle with a tamper-evident cap and chemical label. |
| Shipping | Allyl (3-Methylbutoxy)Acetate should be shipped in tightly sealed containers, clearly labeled, and protected from heat, ignition sources, and direct sunlight. Follow all relevant chemical transportation regulations. Ensure proper ventilation and secure upright to prevent leaks or spills. Handle with gloves and eye protection; use UN-approved packaging if required by local regulations. |
| Storage | Allyl (3-Methylbutoxy)acetate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition, heat, and direct sunlight. Keep away from incompatible substances such as strong oxidizing agents. Store at room temperature, and ensure containers are clearly labeled. Use appropriate chemical storage cabinets if available to minimize risk of spillage and exposure. |
Applications of Allyl (3-Methylbutoxy)Acetate in Industrial ManufacturingAllyl (3-Methylbutoxy)Acetate is valued for its unique molecular structure and its stable physicochemical properties, finding primary adoption in several specialized sectors. As the original manufacturer, we ensure all applications follow established regulations, leveraging the material’s targeted attributes for efficient downstream integration. Below we outline key industrial scenarios where this compound plays an irreplaceable role, providing details on compliance, dosage, processing, and finished product forms. 1. Fine Fragrance CompoundingFragrance compounding houses select Allyl (3-Methylbutoxy)Acetate for its distinct, fruity-green aromatic tone and excellent tenacity. Formulators introduce it during the blending stage to design top and middle notes, enhancing perfume compositions that demand both bloom and longevity. This material also supports batch consistency across diverse perfumery portfolios. Industry compliance standards
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2. Flavoring in Food & Beverage MatricesSpecialty flavor manufacturers utilize this acetate ester to create fresh, peach-apricot and fruity undertones for beverages and confectionery. Precise dosing is essential to comply with organoleptic and safety requirements, often following thorough panel testing and regulatory review. Its stability allows use in both shelf-stable and ready-to-drink formats. Industry compliance standards
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3. Solvent and Intermediate in Agrochemical FormulationsAgrochemical formulators adopt this acetate for its dual function: as an active solvent in emulsifiable concentrates and as a reactive intermediate in custom synthesis routes. The compound enables effective solubilization of certain active ingredients, supporting product stability and field efficacy. QC laboratories monitor all batches for residual solvent content to meet export controls. Industry compliance standards
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4. Modification of Polymer and Resin SystemsSpecialty polymer producers integrate this acetate as a functional co-monomer or reactive plasticizer in resin synthesis. The compound enables tailored modification of glass transition temperature, flexibility, and migration resistance in advanced acrylic and polyurethane coatings. Each formulation batch undergoes post-polymerization analytics to document integration within the backbone structure. Industry compliance standards
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5. Pharmaceutical Synthesis of Active Molecules and ExcipientsPharmaceutical synthesis lines utilize this acetate as a protected intermediate or esterification agent in multi-step reactions for specialty APIs and drug excipients, especially where mild reaction conditions and distinctive reactivity are critical. The compound supports process scalability from pilot to commercial batches under validated GMP controls. Analytical teams test for purity, impurity profile, and stereochemical integrity at each key stage. Industry compliance standards
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In our labs, we view Allyl (3-Methylbutoxy)Acetate not just as another specialty ester, but as a versatile compound that has unlocked unique capabilities across fragrance, flavor, and fine chemical synthesis. For decades, we’ve stood at the bench, working directly with our synthesis teams, seeing this product go from raw materials to the carefully monitored reaction vessel, through fractionating columns, and finally into the hands of formulators and perfumers who know it by its distinct notes and functional properties.
Our focus lands on product consistency and purity, not just figures printed on a certificate. Allyl (3-Methylbutoxy)Acetate, with typical purity above 98%, emerges from our reactors with a faintly sweet, fruity aroma at room temperature. Our own daily checks ensure every batch passes through a battery of tests: GC-MS, water content analysis, and impurity profiling. We don’t cut corners with dilution or mixed-source supply. Each drum or container coming off our filling line bears the batch number linked to complete traceability, which helps our partners in perfumery, flavor design, and fine chemical intermediates production to avoid off-odors and unwanted byproducts.
Our actual model reflects what we have refined over years of practical industry use—not just lab protocols. For a compound like Allyl (3-Methylbutoxy)Acetate, stabilizing the reactive allyl group during storage became a cornerstone. Slow, careful blending under inert atmosphere, and anti-oxidant dosing when requested by the customer, keeps this compound fit for longer haul shipping and extended shelf storage. We learned these tactics from dealing with export shipments subject to variable warehouse conditions, protecting our customers against unwanted polymerization or degradation.
Formulators started approaching us years ago, seeking a molecule bridging fruity ester notes with longer-lasting green nuances. Allyl (3-Methylbutoxy)Acetate stepped in as a solution. In fragrance houses, it forms the heart of modern apple, pear, and tropical accords. Perfumers praise its subtle freshness—adding roundness without overwhelming other notes. In flavor laboratories, small doses add juicy, ripe complexity to confections, beverages, and dairy products. Time and again, requests come in for technical support on solubility, dosage, and stability, especially in challenging matrices like aqueous-alcoholic bases or fatty carrier oils. Our technical specialists share real-world tips: slow addition under controlled agitation, close monitoring of pH, and barrier packaging for optimal performance.
Beyond classic industries, chemical companies look to Allyl (3-Methylbutoxy)Acetate as a building block for specialty syntheses. The allyl group makes it especially attractive for cross-coupling reactions or as a pro-reactive intermediate. R&D clients uncover new applications—sometimes using this acetate to introduce branching, flexibility, or reactivity into novel polymers and specialty resins. By keeping synthesis routes documented and customizable, our manufacturing team can fine-tune isomer ratios or impurity profiles when clients request niche grades for such advanced research.
We do not view Allyl (3-Methylbutoxy)Acetate as just another stock item. Overseeing its production reveals quirks: this compound resists easy storage, and uncontrolled temperatures nudge it toward slow decomposition. Experiences with international shipments taught us about the critical role of packaging. In early days, shipments sometimes arrived with a yellow tinge, or a faintly acidic impurity, especially after prolonged customs holds in hot climates. We addressed these challenges with layered drums, nitrogen blanketing, and careful selection of container linings. These changes cut down customer complaints and product losses.
Our plant crews watch for shifts in raw material quality. Tracing every batch of starting alcohol or allyl chloride back to source matters. We never choose the cheapest option when it comes to feedstock; the trace contaminants show up in finished product aroma and reactivity. Regular audits and in-house analytics catch even low-level impurities, ensuring consistency customers build their own products upon.
We compete with many sources worldwide, some cutting corners on isolation or using batch blending to stretch inventory. Every customer who visits our plant asks about this. So we bring them into the distillation hall, let them check samples pulled from intermediary tanks. More than a marketing tactic, opening our process shows buyers how we view partnership: transparent quality control, not just words on paper.
Down on the plant floor, we keep plenty of common esters on hand: ethyl acetate, isoamyl acetate, allyl hexanoate. Each serves a distinct niche, but Allyl (3-Methylbutoxy)Acetate fills a rare gap. Compared to simpler acetates, its structure imparts a longer-lasting, less volatile presence in finished products. If you’ve ever blended a perfume or flavor only to find the ‘top note’ gone a day later, you’ll appreciate the backbone this compound provides. Its slightly bulky methylbutoxy tail delivers fade resistance and warmth, while the allyl group keeps a fresh, almost green undertone alive in formulations.
Many find it useful as a blending partner to offset the tartness of ethyl acetate or the cloying sweetness of amyl acetate. In our own formulation panels, mixing Allyl (3-Methylbutoxy)Acetate into base notes helped perfume chemists lift an otherwise flat apple or pear accord. The flavor teams report similar advantages, especially in hard candy and dairy, where ingredient interactions can be unpredictable. A careful addition, tested over multiple rounds, helps maintain complexity without risking overpowering off-notes or unwanted chemical interactions.
Compared to simpler molecules, its handling characteristics require more investment during manufacturing. Regular acetates store in polyethylene or steel without much difficulty. Allyl (3-Methylbutoxy)Acetate responds best to aluminum, lined steel, or specialty plastics. We document these details for every outbound batch, making sure intermediate storage—whether a half-drum used over several weeks or bulk shipment—doesn’t compromise value for the end user.
Manufacturing this acetate involves real hands-on chemistry, not just reactor sequences recorded in software. Operators with decades at the bench guide new technicians through every exothermic addition, every reflux stage. We’ve had to troubleshoot batch-to-batch consistency, minor odor drifts, and system upsets due to changing ambient conditions. Rainy seasons in the region bring higher air moisture, so we tuned our drying columns and sealed reaction trains accordingly. These may seem like small adjustments, but we’ve learned they protect the final product’s integrity from unseen environmental stresses.
Our labs run routine sensory panels in addition to instrument-driven checks. A seasoned nose spots batch-to-batch differences even when the numbers look fine. Our R&D team cross-checks these findings, recommending minor process tweaks to keep within client target ranges. That feedback cycle continues through technical support, where field engineers help customers troubleshoot downstream blending, maximize longevity in fragrance ‘top notes,’ or avoid emulsification mishaps in food flavor applications.
We believe knowledge sharing sets a true manufacturer apart. Site visitors take away not just a sample drum, but a sheaf of production notes, guidance on optimal handling, and stories of success (plus a few hard-learned lessons) from years of shipping this ester across the globe.
Our work with fragrance producers revealed early on how much hinges on predictable performance. Perfume launches grind to a halt if a critical intermediate like Allyl (3-Methylbutoxy)Acetate bears subtle off-notes, even below the detection of instruments. In these moments, customer feedback helps us tighten controls, whether in filtering, stabilizing, or pre-blending with compatible solvents. It’s not rare to receive a request for custom stabilizers, blend ratios, or packaging adapted to boutique production runs. Our willingness to customize—even at the cost of slower turnaround—fed long-term partnerships rather than transactional sales.
The food and beverage sector brings its own demands. Producers face constant scrutiny from regulators, brand custodians, and increasingly, consumers with acute sensitivity to trace off-flavors or product instability. Open communication with flavorists ensured product usage fits within local and international regulations. Batch consistency prevents label changes or delayed product launches—real headaches for time-pressed food producers. We maintain detailed records, often crossing national borders, to confirm our acetate meets food-grade requirements and stands up to regional taste panels. Every year, we receive feedback on improved flavor release, longer-lasting taste, and reduced ingredient waste, confirming the value customers find in our approach.
In advanced materials and specialty chemical syntheses, feedback centers on reactivity, impurity profile, and reproducibility. Research clients rely on deliveries that match previous orders—not just a chemical name on a label. Chemical engineers scrutinize reaction kinetics, check for trace halides or solvents, and run pilot reactions before scaling up. Our technical teams walk side-by-side with these clients: conducting joint batch evaluations, advising on in-line filtration, or adjusting purity profiles as innovation demands shift. We see these partnerships as engines of mutual progress, not just order fulfillment.
Through years of production and downstream support, we discovered the biggest headaches rarely come from core chemical structure, but from incidental factors like oxidation, hydrolysis, or physical contamination. Opening discussions with users—whether multinational fragrance houses or local food flavor workshops—helped us refine packaging standards and suggest best-use practices. Even small adjustments like using pre-flushed inert gas packaging, or setting stricter limits for drums in long-term storage, paid measurable dividends in reduced spoilage and customer claims.
One recurring issue: managing trace acidity from hydrolysis, especially under humid storage. Lab experiments gave us protocols for including desiccants, pH monitoring, or periodic re-qualification of open containers. Users looking to stretch the shelf-life of partial containers benefit from detailed advice—based on hundreds of return-case analyses—on transfer practices and drum re-sealing. For major clients, we sometimes arrange quarterly on-site audits, running through entire logistics and storage systems. These efforts deliver practical value beyond bench chemistry, as every avoided recall, or batch saved from off-flavor, accumulates to significant cost savings and product credibility in the market.
On the technical application side, our staff found opportunities to coach R&D teams on safer blending: controlling agitation speeds, adjusting pH, or sequence of ingredient addition. These tailored workshops, whether remote or on-site, turn raw material supply into a reliable relationship.
As manufacturing evolves, so do the demands on specialty intermediates like Allyl (3-Methylbutoxy)Acetate. Through open discussion with our partners in fragrance, flavor, and synthetic chemistry, we anticipate future needs: higher purity, reduced odor drift, sustainable production pathways, and more robust packaging for extreme climates. Each round of feedback seeds our next investment in process control, analytics, or logistics infrastructure.
To meet demands for responsibility and transparency, we’ve bolstered our environmental controls and raw material stewardship. Our teams continually review sourcing channels, energy consumption, and waste treatment protocols, aiming for reduced carbon footprint without compromising product quality. Clients developing ‘green chemistry’ approaches appreciate our transparency on sourcing and toxicity data, even when regulatory pressures shift or new market preferences emerge.
Our story with Allyl (3-Methylbutoxy)Acetate continues as a dialogue: between science, hands-on manufacturing, and customer-focused improvement. Every batch delivered carries the learning, adjustment, and shared expertise grown over decades. By grounding our practice in real-world details and ongoing technical support, we provide customers not just with a chemical, but with a trustworthy ingredient supporting creativity, reliability, and measurable success in their own products.