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3-Methoxyacrylonitrile

    • Product Name 3-Methoxyacrylonitrile
    • Alias 3-Methoxypropenenitrile
    • Einecs 702-144-3
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    933968

    Cas Number 3016-16-8
    Molecular Formula C4H5NO
    Molecular Weight 83.09 g/mol
    Iupac Name 3-methoxyprop-2-enenitrile
    Appearance Colorless to yellowish liquid
    Boiling Point 129-130 °C
    Density 0.991 g/cm³
    Melting Point -26 °C
    Flash Point 37 °C
    Solubility In Water Slightly soluble
    Refractive Index 1.4160
    Purity Typically ≥ 98%

    As an accredited 3-Methoxyacrylonitrile factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 250g of 3-Methoxyacrylonitrile is supplied in a sealed amber glass bottle, labeled with hazard warnings and handling instructions.
    Shipping 3-Methoxyacrylonitrile is shipped in tightly sealed containers, protected from light, moisture, and heat. It is classified as a hazardous chemical, requiring proper labeling and documentation. During transport, it must be handled according to relevant regulations for toxic and flammable substances, ensuring safe storage and prevention of leaks or spills.
    Storage Store **3-Methoxyacrylonitrile** in a cool, dry, well-ventilated area away from heat, sparks, and open flames. Keep the container tightly closed and protected from moisture and direct sunlight. Store separately from oxidizers, acids, and strong bases. Use only in a chemical fume hood. Ensure appropriate spill containment and clearly label storage areas to prevent accidental exposure or mixing.
    Application of 3-Methoxyacrylonitrile

    Applications of 3-Methoxyacrylonitrile in Industrial Manufacturing

    As a specialized manufacturer of high-purity 3-Methoxyacrylonitrile, we serve leading chemical enterprises engaged in advanced synthesis for pharmaceuticals, agrochemicals, specialty polymers, electronic chemicals, and liquid crystal intermediates. The following application areas reflect verified industrial uses where this molecule supports efficient synthesis, strict compliance with regulatory standards, and precision in formulation for downstream innovation.

    1. Pharmaceutical Intermediate Synthesis

    3-Methoxyacrylonitrile functions as a key intermediate for the synthesis of active pharmaceutical ingredients (APIs), particularly in heterocyclic scaffold formation and C–C bond extensions critical for central nervous system (CNS) compounds, oncology, and antiviral drug candidates. Downstream pharmaceutical firms leverage this material during late-stage modification steps to introduce nitrile or methoxy functionalities with high selectivity, thus supporting process yields and facilitating purification. The molecule regularly enters Suzuki, Heck, and nucleophilic substitution protocols on kilo-scale batches governed by rigorous validation and traceability requirements.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • United States Pharmacopoeia (USP), European Pharmacopoeia (Ph. Eur.) for related substances
    • FDA 21 CFR Part 211 Process Validation
    • NMPA (China) Drug Registration Standards—API Material Traceability

    Typical usage ratio

    • 0.5–2% (w/w) of total batch mass, with precise adjustment based on desired substitution pattern, reaction scale, and downstream purification requirements

    Downstream process integration

    • Charged post-halogenation or into transition-metal catalyzed coupling reactions; often used during the late intermediate or penultimate API stage to enable controlled functionalization before crystallization/purification

    Final product types

    • API key intermediates (e.g., substituted acrylonitriles, methoxyaryl frameworks)
    • CNS drug substance intermediates
    • Oncological and antiviral precursors

    2. Agrochemical Intermediate Manufacturing

    This acrylonitrile derivative supports the synthesis of selective herbicides, fungicides, and insecticides—particularly in forming methoxyacrylate motifs and nitrile-containing scaffolds compatible with crop protection and yield enhancement products. Formulators in crop science typically introduce it at key carbon–carbon bond formation stages, optimizing activity spectra and environmental breakdown profiles. Regulatory-driven batch tracking underpins all downstream usage as agricultural end products undergo field deployment and residue analysis.

    Industry compliance standards

    • OECD Guidelines for the Testing of Chemicals—Synthetic Process Purity Controls
    • China GB 2763-2022 Maximum Residue Limits for Pesticides
    • European Chemicals Agency (ECHA) REACH Registration—Intermediate Use
    • ISO 9001:2015 Quality Management applied in agrochemical synthesis

    Typical usage ratio

    • 1–5% (w/w) of target intermediate mass; specific proportion governed by the activity endpoint and environmental safety requirements for the formulated pesticide

    Downstream process integration

    • Added into Michael addition, alkylation, or nucleophilic substitution steps, often preceding esterification or further functionalization needed for agrochemical actives

    Final product types

    • Methoxyacrylate herbicide intermediates (e.g., for strobilurin-class fungicides)
    • Nitrile-substituted insecticide intermediates
    • Crop protection active ingredient synthons

    3. Specialty Polymer and Co-monomer Production

    Downstream specialty polymer producers employ this compound as a functional co-monomer to introduce polar and electron-donating groups into high-performance resins. This approach enables tailored tuning of glass transition temperatures, optical properties, and chemical resistance in resins used in microelectronics, coatings, and adhesives. Typical integration involves solution or emulsion polymerization reactors controlled for temperature and radical generation, with all composition controlled under regulated synthesis environments.

    Industry compliance standards

    • ISO 14001:2015 Environmental Management for Polymer Manufacturing
    • RoHS (Restriction of Hazardous Substances Directive) for electronic applications
    • UL 94 Flammability Standard for Plastics
    • ASTM D2564 for Chemical Resistant Coatings

    Typical usage ratio

    • 2–8% (mol/mol) in copolymerization formulations; adjusted according to molecular weight targets, crosslink density, and required dielectric performance or adhesion

    Downstream process integration

    • Incorporated during the co-monomer charge alongside acrylates, styrenics, or methacrylates, typically by continuous dosing in the main reactor to achieve uniform chain growth and prevent premature polymerization

    Final product types

    • Functional acrylic and styrenic copolymers for microelectronic encapsulation
    • High-performance UV-resistant coatings
    • Specialty adhesives and optical resins

    4. Liquid Crystal Intermediate Synthesis

    Producers of advanced display materials utilize this compound to synthesize intermediates for liquid crystal molecules, particularly in methoxy- and nitrile-substituted biphenyls or phenylcyclohexyl structures. The raw material is employed in precision reactions such as nucleophilic aromatic substitution and palladium-catalyzed cross-couplings, each batch validated for ultra-high purity to avoid downstream color point shifts or optical defects in LCD panel manufacturing.

    Industry compliance standards

    • ISO 9001:2015 Quality Assurance for Electronic Chemicals
    • IPC-4101/101B Standards for LCD Substrate Materials
    • RoHS and REACH for final electronic display components
    • JEITA (Japan Electronics and Information Technology Industries Association) chemical purity requirements

    Typical usage ratio

    • 0.3–1.5 molar equivalents relative to aryl halide starting materials, balancing yield, and subsequent purification constraints for high-purity liquid crystal output

    Downstream process integration

    • Dosed precisely into high-purity glass-lined vessels, primarily in the aromatic substitution or coupling phase, where trace level control is essential for batch-to-batch consistency

    Final product types

    • Liquid crystal display (LCD) intermediates
    • Functionalized biphenyls and phenylcyclohexyls with fine-tuned optical properties
    • Advanced display panel material precursors
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    Certification & Compliance
    More Introduction

    3-Methoxyacrylonitrile: Direct from the Manufacturing Line

    Real-World Manufacturing Perspective

    In tough synthetic applications, 3-Methoxyacrylonitrile serves as a cornerstone material for many chemical businesses. Offering this compound straight from our own production site, we see every batch from the inside out and know where product integrity makes the difference down the line. Drawing from years at the reactor, I can say that customers often seek out 3-Methoxyacrylonitrile not as a stock item to check off a list, but as a tool solving real formulation challenges—especially where reactivity and selectivity matter.

    We produce this compound under continual supervision, not by just ticking boxes, but by following it through every stage of the reaction. This means tighter control over the impurity profile and more predictable downstream outcomes for our clients. The analytical data gathered here, not copied from a vendor pamphlet, give us immediate feedback on how to keep the process sharp and the output right for the kinds of specialized reactions our customers are running.

    Product Identity and Specifications: What Sets Us Apart

    Chemists in the field know 3-Methoxyacrylonitrile by its clean, sharp odor and its distinctive chemical structure: a vinyl nitrile moiety attached to a methoxy group. These functional features make it stand out during the quality control phase, but in our shop, consistency goes deeper. Our product, identified as Model 876-CX in our internal tracking system, offers a tightly-defined purity range above 98%. Every metric—moisture, acidity, assay by gas chromatography—gets verified using regularly calibrated equipment. These are not standards borrowed from someone else’s data sheet, but targets set up through direct feedback from our process lines and customer needs.

    Within chemical manufacturing, the physical form and storage profile play a practical role. Staff members will see it arriving clear and colorless, in drums or steel containers, with a storage regimen aimed to minimize hydrolysis. Early batches years ago clued us in to the compound’s tendency to degrade with atmospheric exposure, so we designed facilities with sealed, ventilated systems. This prevents off-gassing and keeps the material ready for immediate use on arrival—valuable for customers who operate lean and cannot afford quality shortfalls.

    How Chemists Actually Use 3-Methoxyacrylonitrile

    Out in the application lab, our partners keep teaching us new uses for this material. The most active demand comes from the pharmaceutical intermediate sector, where it often features as a precursor in building heterocycles or custom nitrile intermediates. In these settings, clients want a reagent that reacts cleanly, doesn’t leave behind surprises in purification, and performs identically from lot to lot. Our history in fine chemical manufacturing told us there’s no room for batch variability. That expectation drove us to refine our synthetic route, shifting away from traditional copper-catalyzed transformations and toward optimized catalytic processes tailored for higher selectivity.

    Pesticide developers and agrochemical labs often call up needing reactivity in Michael additions or related transformations. There’s an expectation that the methoxy functionality will translate into predictable electronic effects, and they look for us to highlight those. The key difference, as we see in practice, lies in our control over byproducts. With our proprietary purification steps, we’re able to offer customers a sharper profile—what comes in matches the reactivity modeling they do on paper.

    In the context of specialty materials, advanced polymer work, and some textile chemical processes, the introduction of an acrylonitrile with a methoxy substituent might only show up in a late-stage project, but those teams know to ask for a certificate that includes tight trace impurity limits. Drawing on our in-house quality data, we can point to actual results, not just defaults pulled from supplier listings.

    Handling and Safety: Lessons Learned on the Plant Floor

    Long experience handling 3-Methoxyacrylonitrile informs our operational approach. Early in our adoption, we identified the importance of customized ventilation solutions. Details like quick-release couplings and positive-pressure bottling significantly reduce exposure risks for operators. Users in smaller research environments—down to the gram scale—tell us they appreciate container designs that limit evaporation, not just for safety but to prevent material waste. That lesson came directly from feedback after a trial shipment to a specialty pharma startup: a tight lid and inert atmosphere made their small-scale trials far more reliable.

    We remind users that this nitrile, like others, requires gloves and goggles in day-to-day use, and good airflow in storage areas. Closer to production, standard procedures for spill control and neutralization have evolved based on actual plant incidents over the years. Drawing on on-the-ground experience, we advise customers on contingency steps: activated carbon for minor leaks, and acid-scrubbers for airborne traces. These aren’t just checklist items to us; steps like these have brought real incidents under control and spared the business unnecessary downtime.

    Key Differences: What Real-World Experience Shows

    Plenty of customers come with experience using other acrylonitrile derivatives, especially those with conventional hydrocarbon or alkyl substitutions. What stands out in our process is the influence of the methoxy group—chemists see a significant shift in electron density, which translates into nuanced reactivity settings in both nucleophilic addition and cyclization steps. For example, attempts to use methylacrylonitrile in certain heterocycle syntheses often yield lower efficiency or generate process residues. The methoxy variant, as demonstrated by project results in both pharma and agrochemicals, produces higher selectivity and a cleaner downstream process.

    There are everyday technical advantages as well. The methoxy group moderates volatility, meaning less loss to evaporation during open handling or sampling. In pilot-plant trials, techs who once battled with noxious odors and evaporative losses now report easier time at the workbench. They can weigh and dissolve the product with confidence, knowing the batch properties stay stable.

    Feedback from multinational partners brings another important contrast. Supply of non-methoxy analogues from some global regions often arrives with inconsistent impurity matrices. By controlling all our own sourcing and synthesis steps domestically, we keep variability much lower, confirmed by third-party analyses that back up our own internal testing.

    Sustainability and Responsible Manufacturing: Beyond Compliance

    Chemical production today can’t focus only on throughput or theoretical yield. Our team puts a real effort into cutting waste streams by reusing reaction solvents where purity permits, and by capturing fugitive emissions as standard practice. Years of experience convinced us that true quality in chemical manufacturing means producing not just according to codes, but according to the realities of campaign production and the needs of the downstream customer.

    Improved reactor design—using closed-system operations, smart distillation, and online monitoring—originated not from textbooks but from our own experience trying to minimize both product loss and environmental footprint. By adjusting stoichiometry and fine-tuning the purification phase, we manage to pull more high-purity product per run, and send less out as hazardous waste. We’ve seen that process operators, by having real input into continuous improvement, catch problems before they snowball. This human-centric approach to chemical manufacturing translates directly into better product and a safer workplace—not as a slogan, but by experience.

    Over the years, local regulators and partners in supply-chain management have required increasingly stringent documentation of composition and waste controls. By implementing digital batch archiving and real-time analytics, we produce documentation on the spot—so when customers require a detailed batch history, we point them to authenticated data, not reconstructed tables.

    Quality Control: Boots-on-the-Ground Lessons

    Quality control for 3-Methoxyacrylonitrile doesn’t end at the final step in synthesis. Every batch undergoes not just routine inspection, but a parallel review from our in-house chemists—many of whom have run the processes themselves in previous years. This means issues don’t get buried. If there’s a drift in melting point, color, or water content, we catch it before shipping.

    We also value customer-driven innovation. A custom blending project for a specialty intermediate company pushed us to tune our drying and filtration sequence, leading to wider adoption of new inline sensors. These changes didn’t just benefit that order; the learnings rolled into our main production run, raising the quality for all subsequent shipments.

    We run additional checks beyond the typical industry minimums because in our experience, bypassing steps comes back to haunt you. Electrochemical assays, trace chloride testing, and even batch-specific stability checks are part of our practice, because real-world use shows that one weak shipment costs more than the savings from cutting corners. We’ve witnessed the aftereffects elsewhere: off-flavor in pharmaceutical actives, or unexpected failures in agricultural field trials, all traced to an uncontrolled impurity.

    From Manufacture to Use: Supporting Real Projects

    We see ourselves not as a silent producer, but as a working partner with our customers. Fielding questions on processing, storage, or reactivity, we rely on firsthand plant knowledge. When a research chemist runs into trouble with an untested synthetic route, our tech staff responds drawing on actual batch records, not generic talking points. Several customer collaborations led us to identify subtle reaction-byproducts early—giving them better information for process scale-up and reducing their time to market.

    That collaborative spirit has led to on-site visits, where our process experts joined the customer’s team for scale-up. On more than one occasion, adjustments we tested together—such as solvent selection or in-process pH tweaks—improved product yield by double digits. These gains belong to both teams; what counts is that real problems get solved together. This habits sticks with us because it comes from shared experience with raw materials, not a remote distributor’s paperwork shuffle.

    Supply reliability means more these days than ever. We don’t outsource final packaging or warehousing, because lessons from years past clearly showed that control over every step—down to the drums used for export—affects final product quality. When a batch had a seal fault or slow leak, we caught it before it left the dock. Clients working tight on project timelines depend on predictability from us; repeated experience managing logistics, not just manufacturing, keeps our delivery sharp.

    Future Directions: Innovation from the Factory Floor

    Real advancement in the manufacture of 3-Methoxyacrylonitrile comes not from adopting generic new technology, but from integrating feedback and making incremental, practical improvements. We’re not shy about testing competitor batches in our own lab, for direct comparison—measurements aren’t theory here, but day-to-day reality. Tracking data over many years has guided our choice of catalysts, solvents, and purification equipment, driving down impurity formation and product loss.

    Conversations with end-users feed our research. Customers in high-throughput medicinal chemistry flag issues with stability or purity, and we tailor production accordingly. Recent changes in regulatory expectations around residual solvents prompted us to shift to cleaner reagents and tighter gas phase controls, well in advance of formal mandates. Chemists who test our product in their own pilot labs confirm lower baseline volatility and longer shelf-life.

    At the same time, we’ve been looking with our partners for applications beyond today’s most popular transformations. Smart teams in cross-disciplinary materials science challenge us to tweak the manufacturing process for new derivative chemistries. Existing experience with methoxyacrylonitrile informs the way forward, but we combine it with chemistry fundamentals and current safety protocols to adapt to their needs. Innovation doesn’t mean speculation—it translates to tangible process trials, targeted adjustments, and jointly documented outcomes.

    Our Commitment: Real People, Real Product, Real Partnership

    Manufacturing 3-Methoxyacrylonitrile for the market does not mean sending out a generic material. We see every order as a relationship, built on mutual feedback and informed by both our technical knowledge and the working context of our customers. The lessons from the plant floor, from quality assurance labs, from reactive troubleshooting—these shape every drum, every batch, every future improvement. Quality, safety, innovation, and environmental responsibility aren’t buzzwords for us; they are the result of years of shared experience and a hands-on approach to chemical manufacturing.