|
HS Code |
560807 |
| Chemicalname | 3,7-Dimethyl-2,6-Octadienenitrile |
| Molecularformula | C10H15N |
| Molecularweight | 149.23 g/mol |
| Casnumber | 5146-66-7 |
| Appearance | Colorless to pale yellow liquid |
| Boilingpoint | 233-235 °C |
| Density | 0.85 g/cm3 (approx.) |
| Refractiveindex | 1.479-1.482 |
| Flashpoint | 95 °C |
| Solubilityinwater | Insoluble |
| Odor | Characteristic, often described as green or fruity |
| Meltingpoint | -60 °C (approx.) |
As an accredited 3,7-Dimethyl-2,6-Octadienenitrile factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, tightly sealed, labeled with chemical name "3,7-Dimethyl-2,6-Octadienenitrile", hazard warnings, and 100 mL quantity. |
| Shipping | 3,7-Dimethyl-2,6-octadienenitrile should be shipped in tightly sealed, chemical-resistant containers. Ensure packaging complies with all relevant transport regulations for hazardous chemicals. Keep away from heat, ignition sources, and oxidizers. Ship at ambient temperature with proper labeling, including hazard identification, and accompany with relevant safety data documentation. Handle only by trained personnel. |
| Storage | Store 3,7-Dimethyl-2,6-octadienenitrile in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat sources, open flames, and incompatible materials such as strong oxidizers and acids. Protect from direct sunlight and moisture. Clearly label the container and keep it in a designated chemical storage cabinet. Use proper personal protective equipment when handling. |
Applications of 3,7-Dimethyl-2,6-Octadienenitrile in Industrial ManufacturingAs a direct manufacturer of 3,7-dimethyl-2,6-octadienenitrile, we supply this intermediate for specialized industrial sectors. This raw material plays a critical role in synthesis, formulation, and finishing processes where high purity, technical consistency, and strict compliance are essential. Below we detail several precise downstream applications based on our customers’ manufacturing requirements and industrial regulation environments. 1. Fragrance Ingredient Synthesis for Fine and Functional PerfumesOur customers in aromatic compound manufacturing use 3,7-dimethyl-2,6-octadienenitrile as a reactive intermediate during the synthesis of key aroma chemicals. It provides the required molecular backbone for formulating high-impact citrus and floral notes. The processing environment demands high control of byproduct profiles and phase purity, as regulatory bodies mandate traceability from raw material to finished perfume oil. Customers adjust dosage to achieve intended olfactory profile, balancing intensity and longevity for niche fragrance compounds. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Pharmaceutical Intermediate for Cardiovascular APIsPharmaceutical synthesis routes for selective vasodilators and hypotensive agents utilize this compound as a nitrile synthon. Its highly reactive double bonds enable efficient construction of complex molecular scaffolds with tight stereochemical requirements. Customers must meet pharmacopoeial standards for impurity profiles, trace solvent residues, and overall yield in the conversion to bulk active pharmaceutical ingredients (APIs). All process parameters—temperature, pH, and reagent ratios—undergo strict qualification runs before production scale-up. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Agrochemical Synthesis: Precursor for Plant Growth ModifiersAgrochemical processors use this material to construct key nitrile-functional compounds that regulate crop growth. Its unique diene structure allows for targeted synthesis of bioactive agents with enhanced soil mobility and uptake profile. All batch preparations require compliance with international pesticide registration standards, and the QC laboratories analyze for specific degradation products before technical concentrate formulation. End-users rely on stable supply of defined purity to optimize formulation loading and field performance testing. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Intermediate for High-Performance Polymeric AdditivesProducers of specialty polymer additives incorporate this nitrile compound during the manufacture of performance modifiers for high-durability plastics. The dual double bonds allow for controlled functionalization, yielding improved compatibility for polyolefin and PVC systems. All input materials must comply with food contact and environmental migration rules if the final plastics target regulated markets. Operators track reaction completeness via NMR and HPLC to prevent residual odors or color bodies. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 3,7-Dimethyl-2,6-Octadienenitrile prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
In the specialty chemicals sector, 3,7-Dimethyl-2,6-Octadienenitrile stands out for its distinct role in fragrance, flavor, and chemical synthesis applications. Having spent years refining large-scale synthesis of this molecule, my colleagues and I take considerable pride in what careful engineering turns out. This isn’t just a theoretical accomplishment — it emerges from daily operations marked by technical demands and frequent requests from downstream formulators.
We produce 3,7-Dimethyl-2,6-Octadienenitrile with close control of purity and stability. Our usual production model targets a high-purity standard, catering to industries that require minimal contaminants for process consistency. Batches come out clear, pale yellow in color, and the liquid’s volatility mirrors what many flavor and fragrance houses require for blending into complex compositions. Each litre carries the cumulative experience of operators who understand how trace byproducts, even in parts per million, can change a customer’s end note or yield in a downstream reaction.
Achieving the right specifications has required tight attention to the subtleties of plant-scale chemistry. Temperature control, distillation rate, and precise reagent ratios all influence the isomer composition and aldehyde content. We monitor these not only because of regulatory and quality pressures, but because just one deviation can make a difference across thousands of kilos. Our analytical team regularly calibrates GC and NMR instruments against trusted reference standards, tuning protocols to flag any profile shift that might impact downstream blending or shelf life.
3,7-Dimethyl-2,6-Octadienenitrile appears across a surprising range of finished goods. The food and flavor industry values it for its citrusy-green note, blending it into compounds where top-note clarity and persistence are essential. In perfumery, it acts as both a modifier and an enhancer; the molecule can round off sharpness or push a fragrance accord in a fresher direction. For chemical synthesis, its nitrile group opens avenues for further transformation, offering a reliable starting point for complex intermediates.
In production, we know the primary sources of quality risk. These risks have shaped how we train staff, design reactors, and schedule preventive maintenance. For instance, our team reinforces the need for careful loading of precursors and real-time monitoring of reaction progress. An operator missing a shift in pressure can introduce off-odors — problems that surface only weeks later in a customer’s formulation. We draw on process logs and feedback loops with formulators, making ongoing tweaks that reflect real outcomes rather than just specification tables.
Clients often compare 3,7-Dimethyl-2,6-Octadienenitrile to similar molecules like Citral or other unsaturated nitriles. One clear difference stems from its stability. Even after months of shipment or storage, our product shows high resistance to oxidation or polymerization — a real advantage for customers looking to avoid discoloration or loss of aroma intensity. We’ve optimized inert-atmosphere storage and antioxidant dosing not as a luxury, but as a response to years of product returns and claims.
Another comparative advantage rests in the sharpness and longevity of the volatile fraction. Customers testing off-the-shelf alternatives regularly report a flatter, duller sensory impact after a few months. Our production process, by emphasizing clean finishing and swift drum-filling, locks in the “fresh-cut” impression most users want. We often work with R&D labs to benchmark our output not just against competitors, but against the most challenging profile requirements from the industry’s top perfumers and flavorists.
From raw material sourcing to finished batch release, every step invites scrutiny. Our contracts favor regional suppliers who can deliver isoprene and related feedstocks with full traceability. Failing to verify a new source has resulted in detectable changes in olfactory profile and instability under accelerated aging tests. We review supply agreements each year, checking both feedstock data and ethical sourcing certifications. This isn’t a marketing façade — customers routinely audit our chain and lab methods.
Our facility employs closed-system processing to prevent emissions and keep local water bodies free from contamination. We install vapor recovery circuits and continuously sample stacks and effluent to meet local and international compliance standards. These steps came from lessons hard-learned: a single incident of lost containment can shut down a line and threaten staff safety. The team knows that repeated training and third-party reviews aren’t a bureaucratic burden, but insurance against disruptions and recalls.
Quality cannot be left to end-point checks. We analyze all intermediates, watching for clues of incomplete reactions or unplanned side products. Identifying a deviation in the IR spectrum or retention time at an early stage allows corrections before downstream purification. Staff are encouraged to raise a flag on any unexpected trend, knowing that senior chemists listen and respond quickly.
Our QA systems have evolved well beyond minimum regulatory checks. Continual feedback from finished product testing and long-term stability trials cycles back into each batch. We maintain reserve samples from every lot, testing periodically to document performance over time and give customers confidence that a drum delivered six months ago will still perform reliably in their applications.
Working with 3,7-Dimethyl-2,6-Octadienenitrile means taking on the real risks associated with volatile organic compounds. Our operators outfit themselves in full PPE, familiar not just with procedure but with the sensory cues of safe handling — sharpness in the air, slickness on a glove, a sudden whiff on a loading dock. Training drills reinforce what labels cannot: why correct ventilation and spill management save lives and keep production running.
We regularly audit storage areas, inspecting drum seals and secondary containment for signs of vapor build-up or corrosion. Proper temperature control extends both safety and product lifespan. Responding to customer feedback, we’ve modified packaging and shipping protocols, adopting more robust seals and improved labeling to reduce cross-contamination risks at customer sites.
Every batch that leaves our facility reflects ongoing conversations with end users. We don’t just ship product; we visit customer plants to observe how 3,7-Dimethyl-2,6-Octadienenitrile interacts with actual processes and formulas. Batch blending for flavor encapsulation, top-loading in fine fragrance pre-mixes, or as a precursor in a new pharmaceutical intermediate — every application reveals fresh challenges. Our technical support team feeds this knowledge back to production, closing the loop on what works and what doesn’t in the field.
Some bakeries and beverage formulators have flagged the need for tighter control of trace aldehydes; our process now includes additional purification passes for food-grade requests. Cosmetic clients insist on a sensory profile indexed to both stability and allergen risk; this pushed us to invest in extra screening and certificate offerings. Phytochemical and pharmaceutical customers push further, requiring documentation throughout the life of a batch — we deliver that by electronically logging all process steps and generating detailed certificates in-house.
Long before sustainability became an industry topic, we faced questions about solvent use, effluents, and process energy. Small process changes add up. Recovery of spent solvents, replacement of hazardous reagents, and lower-waste purification now feature in standard batch runs. Even incremental improvements drive higher safety for our operators and a lower footprint for our production line. Regular engagement with chemical engineers and environmental officers from customer facilities shapes new investments in emission control and waste recycling.
Customers have responded. Global brands want supply partners who anticipate evolving regulations and offer traceable, low-impact materials. 3,7-Dimethyl-2,6-Octadienenitrile gets requested for “greener” lines as clients seek to meet stricter compliance and market expectations. We’re able to show solvent reduction trends and resource audit reports alongside batch data, offering the reassurance that comes only from consistent practice, not press release promises.
Market expectations keep climbing. We invest steadily in equipment that can maximize yield and minimize waste. R&D teams trial new catalytic systems, aiming to reduce unwanted isomers that complicate fractionation and reduce customer complaint rates. Operators participate in these trials, feeding back practical wisdom from years on the bottling line or the control room. Their suggestions, drawn from handling the real material, often lead to creative tweaks: valve modifications, agitation speed changes, or holding tank redesigns that cut delays and off-spec events.
Innovation doesn’t just come from within our plant. Partnership programs with universities and independent chemists feed outside expertise into our process optimization. Several process chemists now split their time between the lab and the plant, translating theoretical findings into production tweaks with real impact. The ongoing exchange with formulators enables us to anticipate demand trends for new grades or packaging types, rolling out changes in line with what the market actually asks for.
Many buyers have faced problems with inconsistent supply or sudden variations between batches. We aim for stability in both quality and delivery. Our plant has invested in automation and digitized tracking, not for the sake of technical sophistication, but to prevent delayed shipments, missed targets, or unplanned stockouts. Decades in production have taught us that trust grows out of regular, predictable performance rather than promises and promotions.
Our sales and technical teams work hand-in-hand — issues raised on a customer call become action items on the production floor. Each member, from the loading dock to the process control office, understands that a missed step can ripple through to a delayed launch or halts at a filling line. We hold regular end-to-end reviews, adjusting production schedules and logistics flows to match both cyclical demand and sudden surges triggered by new product launches downstream.
From molecule design to end-use, 3,7-Dimethyl-2,6-Octadienenitrile reflects more than its molecular formula. Customers rely on the physical realities of performance — aroma stability, clean composition, reactivity when needed, and ease of handling when operational uptime matters. Our entire process centers not just on hitting analytical targets, but on delivering materials that strengthen a customer’s product and reputation, batch after batch.
Decades working shoulder-to-shoulder with process engineers and lab technicians have convinced us: excellence in specialty chemical manufacture requires persistence, skill, and routine adaptation. We advance by solving problems early, sharing insight across teams, innovating on process, and earning the confidence of chemists, perfumers, and production managers around the world who depend on our output.
Every step in our facility — from the selection of raw materials to final batch shipment — is defined by experience, process discipline, and a drive to make each kilogram of 3,7-Dimethyl-2,6-Octadienenitrile count in meaningful ways for those who rely on it.