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2-Fluoro-4-Methylanisole

    • Product Name 2-Fluoro-4-Methylanisole
    • Alias 2-Fluoro-p-cresol methyl ether
    • Einecs 697-689-9
    • 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

    633109

    Chemical Name 2-Fluoro-4-Methylanisole
    Molecular Formula C8H9FO
    Molecular Weight 140.16 g/mol
    Cas Number 705-76-0
    Appearance Colorless liquid
    Boiling Point 170-171°C
    Melting Point -17°C
    Density 1.09 g/cm3
    Refractive Index 1.505
    Smiles COC1=C(C=CC(=C1)F)C

    As an accredited 2-Fluoro-4-Methylanisole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle with secure screw cap, labeled "2-Fluoro-4-Methylanisole, 25g", includes hazard symbols, lot number, and manufacturer details.
    Shipping **Shipping Description:** 2-Fluoro-4-Methylanisole should be shipped in tightly sealed containers under cool, dry conditions. It must be clearly labeled with appropriate chemical hazard and handling information. Follow all local, national, and international regulations for transport, including any specific labeling, packing group, and safety measures required for flammable or hazardous liquids.
    Storage Store 2-Fluoro-4-Methylanisole in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Keep the container tightly closed and clearly labeled. Protect from direct sunlight and moisture. Use appropriate chemical-resistant containers and avoid prolonged exposure to air. Follow all standard chemical hygiene and safety protocols when handling and storing.
    Application of 2-Fluoro-4-Methylanisole

    Applications of 2-Fluoro-4-Methylanisole in Industrial Manufacturing

    2-Fluoro-4-Methylanisole serves as a key intermediate in the synthesis of specialized agrochemicals, pharmaceuticals, fine chemicals, and advanced materials. As an original manufacturer, we supply this compound to multiple regulated downstream sectors requiring consistent purity, precise formulation, and rigorous traceability during scale production.

    1. Crop Protection Chemical Intermediates

    Major agricultural manufacturers use 2-Fluoro-4-Methylanisole as a building block in the synthesis of herbicide and fungicide active ingredients, particularly for selective chemical modification in heterocyclic ring systems. The intermediate enters coupling or condensation steps where its fluorinated and methoxy substituents offer enhanced metabolic stability and increased activity for final pesticide formulations. Our QC teams ensure compliance from raw material intake through to delivery, with lot traceability supporting contract manufacturing audits and regulatory filings.

    Industry compliance standards

    • Regulation (EC) No 1107/2009 on plant protection products
    • China GB/T 1604 (Pesticide Technical Material Standard)
    • ISO 9001:2015 Quality Management System
    • US EPA Federal Insecticide, Fungicide, and Rodenticide Act (FIFRA)

    Typical usage ratio

    • 5–25% by mass in key synthetic steps, adjusted based on target molecule complexity, reaction conversion rate, and batch scale

    Downstream process integration

    • Charged with organometallic bases or halogenation agents in closed reactors during condensation and cyclization reactions for pesticide active intermediate preparation

    Final product types

    • Novel triazole fungicides
    • Fluorinated phenoxy herbicides
    • Pyridyl-based insecticides
    • Registered crop protection technical concentrates

    2. Pharmaceutical API Synthesis

    2-Fluoro-4-Methylanisole is incorporated into regulated pharmaceutical API manufacturing owing to its unique substitution pattern, which enables targeted aromatic substitutions and offers sites for further elaboration in late-stage medicinal chemistry workflows. Our production lines guarantee traceable GMP handling, with comprehensive analytical documentation for all API supply contracts. Its primary usage includes providing a fluorinated aromatic scaffold in second- and third-generation small-molecule drug cores, and as a precursor for pyridine and pyrimidine derivative synthesis.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for APIs
    • United States Pharmacopeia (USP) requirements for reference standards
    • EU GMP EudraLex Volume 4
    • China Drug Master File (DMF) registration

    Typical usage ratio

    • 2–15% w/w, optimized per process route and multistep batch yield, with ratio impacting impurity profile management

    Downstream process integration

    • Undergoes halogen-lithium exchange, catalytic cross-coupling, or nucleophilic aromatic substitution in core-building or side-chain attachment steps of API routes

    Final product types

    • Active pharmaceutical ingredients for CNS and oncology therapeutics
    • Antiviral intermediates with fluorinated motifs
    • Fine chemical intermediates for branded drug pipelines
    • Chiral building blocks for stereoselective pharmaceutical synthesis

    3. Specialty Fragrance Intermediate for Fine Chemicals

    The compound functions as a pivotal intermediate in the controlled industrial synthesis of high-value fragrance molecules used within premium perfumery and flavor compositions. It provides a unique balance of volatility and stability due to its methoxy and fluoro substituents, which allows downstream processors to introduce fluorinated aromatic notes with consistent batch reproducibility. We deliver established quality documentation and batch-specific technical data to all fragrance industry clients.

    Industry compliance standards

    • International Fragrance Association (IFRA) Code of Practice
    • EU REACH Regulation (EC) No 1907/2006 for chemical registration
    • ISO 9001:2015 for fine chemical manufacturing
    • Food Chemical Codex (FCC) for flavor precursor compliance

    Typical usage ratio

    • 1–8% in key synthetic steps, with precise ratios dictated by downstream olfactive profile and stability requirements

    Downstream process integration

    • Acts as a substrate for Friedel-Crafts acylation or methylation during synthesis of fluorinated musks and unique aroma molecules, utilized in closed loading and controlled reaction environments

    Final product types

    • Fluorinated musky base notes for luxury perfumes
    • Aroma chemicals for high-end consumer flavors
    • Fragrance intermediate concentrates supplied to multinational formulators
    • Isolated aromatic ketones for aroma R&D labs

    4. Advanced Electronic Chemical Synthesis

    Leading electronics chemical manufacturers integrate 2-Fluoro-4-Methylanisole during the synthesis of specialized fluorinated aromatic compounds for use in microelectronic photoresists and LCD materials. The compound offers high purity and predictable reactivity needed for tight physical property control in materials designed for high-resolution photolithography and display performance. Our advanced QA ensures contaminant-free lots, supporting critical device fabrication protocols.

    Industry compliance standards

    • SEMI S2 Environmental, Health, and Safety Guideline for semiconductor chemicals
    • IEC 62474:2018 for material declaration in electronics
    • Electronic Chemicals ISO 9001:2015
    • Japan Chemical Substances Control Law (CSCL) for industrial chemicals

    Typical usage ratio

    • 0.5–5% loading in oligomerization and surface modification reactions, based on resist formulation requirements and end-use photo-physical characteristics

    Downstream process integration

    • Introduced early in the synthesis as a fluorinated ring donor for ARGE copolymer backbones or terminal modifiers in liquid crystal monomers, handled under nitrogen in high-purity reactors

    Final product types

    • Photoresist resins for semiconductor lithography
    • Advanced LCD alignment layers
    • Dielectric intermediate compounds for microchip fabrication
    • Functionalized oligomers for OLED development
    Free Quote

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    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

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    Certification & Compliance
    More Introduction

    2-Fluoro-4-Methylanisole: Reliable Chemical Performance Forged by Direct Manufacturer Experience

    Introducing 2-Fluoro-4-Methylanisole: Model, Structure, and Purity

    For years on the factory floor, we have handled the manufacture of specialty aromatic compounds with our own hands, and 2-Fluoro-4-Methylanisole has earned its place as a crucial building block in our product line. This molecule’s structure, with its exact placement of fluorine and methyl substitutions on an anisole backbone, opens up possibilities that stretch far beyond the basics of benzene chemistry. Chemists in pharmaceuticals, crop protection, and advanced materials count on its reliable reactivity and predictable properties. Our usual model follows the CAS reference for purity and structure; with rigorous controls, we consistently reach purities at or above 99 percent, relying on GC and NMR validation, never cutting corners or skipping over any aspect of analysis.

    Every drum and batch comes directly from our reactors—never relabeled, never repacked through third parties. We keep every step under our roof, from sourcing raw 4-methylanisole and fluorination agents to tight-watched distillation. Our people operate the columns, our QC lab confirms identity and purity, and the people making the product are the same folks answering questions from customers, both in terms of performance and process. We pour decades of practical manufacturing experience into ensuring consistency: from controlling impurity profiles to stabilizing storage conditions to meet the distinct needs of end users.

    What Makes 2-Fluoro-4-Methylanisole Stand Out in Real-world Applications?

    The value of 2-Fluoro-4-Methylanisole comes from its subtle reactivity differences compared to other fluorinated anisole derivatives. It’s a matter of both electronic effects on the aromatic ring and the exact orientation of the substituents. The ortho-fluoro arrangement stabilizes certain intermediates in cross-coupling and electrophilic reactions, which means it often delivers higher selectivity or stability in downstream synthesis. We have heard directly from clients in medicinal chemistry that these slight structural adjustments can weaken off-target effects and enhance metabolic stability for drug candidates. Our own technical teams have also observed consistent reactivity patterns in scale-up, so customers moving from grams to kilograms do not run into surprises.

    We also know that off-the-shelf derivatives without our tightly controlled synthesis bring with them problems—trace levels of difluorinated side products, impurities from alternate methyl group placement, and shifting moisture content due to poorly managed packaging or transport. We have learned by trial, error, and repeated testing that moisture is the enemy; even a half-percent water content can ruin certain catalyst beds or throw off crystallization downstream. By operating our own dehydration and filtration steps on-site and by monitoring for low-level organic residues, we remove doubt and frustration from the user’s workflow.

    Differences in Use: 2-Fluoro-4-Methylanisole Versus Other Anisole Derivatives

    In hands-on applications, 2-Fluoro-4-Methylanisole outperforms many of the more generic anisoles or non-fluorinated analogs frequently pushed by resellers. Generic anisoles often lack the fine-tuned balance between lipophilicity and reactivity that our product provides. In actual lab practice, a researcher working with 2-Fluoro-4-Methylanisole for halogen exchange processes or C–H activation leverages not just theoretical benefits, but also a track record of reliable conversion rates and manageable reaction conditions. Downstream purification is less of a headache, thanks to the minimized burden of extraneous halides or isomeric impurities, something we keep in check by optimizing both our reactor conditions and post-process clean-up.

    Unlike ortho- or para-methyl anisoles without fluorine, our molecule imparts unique steric and electronic features. The methyl group introduces a subtle shielding that helps manage reaction rates and selectivity, while the single fluorine atom adjusts electron density on the ring—this combination proves especially useful in Suzuki and Buchwald–Hartwig couplings, where reactivity without over-activation matters. Pharmasynth labs, both local and multinational, rely on this material as an intermediate for antitumor, antiviral, and neuroactive compound development. In pesticide research, the fine control over aromatic substitution offered by our molecule helps tune environmental persistence and target specificity.

    Specifications: Purity, Appearance, Handling, and Real-life Use Cases

    In direct manufacturing practice, our 2-Fluoro-4-Methylanisole typically appears as a clear, colorless liquid with a distinctive, faintly sweet, phenolic odor. We keep water below 0.1 percent and monitor for any yellowing or impurities that stray batches from less-disciplined suppliers often show. Each batch carries a full set of analytical data, including GC-MS, NMR, and moisture analysis by Karl Fischer titration. Experienced chemists know that batch-to-batch reproducibility saves time and budgets. We take pride in our material’s stability during transport—even across varying temperatures and humidities. We wrap containers for UV and oxygen barrier, guaranteeing long shelf life as long as users store it in the original sealed drums with minimal air headspace.

    Typical reactivity in the lab or plant setting includes nucleophilic aromatic substitution, directed ortho-lithiation, and palladium-catalyzed cross-coupling. Our own R&D teams have optimized protocols for gram and multi-kilogram syntheses of bi-active molecules, dye intermediates, and polymer precursors. Several customers in pigment manufacturing rely on this compound for specialty dye synthesis, where fluorescence tweaking depends on the position of methyl and fluoro substituents. Labs working on OLED and photonic materials report specific advantages with our product: less byproduct formation, easier purification, sharper color emission, and stronger thermal performance.

    Manufacturing Control, Quality, and Commitment to Traceability

    We believe oversight drives quality. Our production lines don’t outsource synthesis steps to off-site contractors. Batch records and raw material traceability tie back to the actual operators and chemists who sign off on each run. This way, we learn from the nuances of every batch—how slight shifts in temperature, pressure, or raw material lot can influence isomer ratios and impurity formation. That is not something you get with anonymous containers or white-labeled intermediates. Only a manufacturer controls the variables that really matter, dialing back on guesswork.

    In our facility, we run closed-system reactors under inert atmosphere, keeping contamination risks to a minimum. Before any shipment leaves the plant, we run parallel batches through final purification to catch anomalies. Our technical support team pulls samples, runs their own lab syntheses, and performs chemical transformations so they can answer real questions with direct data—not sales-talk, but information borne of their own hands’ work. We continue to refine operating procedures as we gather customer feedback and run batch trend analysis, not just to satisfy regulatory audits but to reinforce internal training and problem-solving.

    Environmental and Safety Perspectives

    From years of direct handling and shipment, we see the headaches that come from poorly managed packaging and safety oversight. Our experience has underscored the need for tight control of emissions and safe storage conditions, both for our own staff and for end-user facilities that rely on our chemical. We ship in robust, sealed containers, with secondary containment and pressure-relief for bulk deliveries. Trace impurities like HF or unreacted fluorination agents get scrubbed at the source, not left for someone else to clean up in their waste streams. Strict adherence to environmental controls avoids disposal headaches downstream.

    In actual response scenarios, we have managed vapor leaks and minor spills, learning where weaker drums or line fittings fail over time. Response means more than just MSDS paperwork; it means proactive monitoring and regular review of packaging materials. Some competitors cut costs on drums or omit vapor barriers, increasing risk for everyone on the receiving end. We focus on minimizing risk at every level. This includes providing detailed documentation for safe handling and ensuring rapid response resources in case of emergency—decisions guided by our own direct experience, not guesswork or wishful thinking about chemical safety.

    Supporting Innovation: Giving Chemists Reliable Tools for Discovery

    Chemistry at the interface of research and manufacturing depends on reliable, repeatable intermediates. Our customers, from major pharmaceuticals to advanced materials startups, invest years and millions into bringing new compounds to life. At this scale, unpredictable chemistry from a compromised intermediate can sink a project. We have watched both large and small teams waste budgets chasing purity issues or troubleshooting odd side reactions, simply because a supplier failed to control isomer content or left behind process impurities.

    By prioritizing control of every synthetic parameter, maintaining ongoing dialogue with end users, and solving bottlenecks with fresh technical solutions, we help customers focus on innovation instead of second-guessing their supplies. Our technical specialists offer recommendations based on working directly with this material—not generic advice, but step-by-step guidance rooted in practical use. This means help with solvent choices, purification tactics, or optimization strategies for target reactions. Many of our long-term partners first came to us after failed runs with off-spec materials, and have stayed because of the stability and openness we deliver.

    Real-World Consequences of Quality: Lessons Learned Through the Supply Chain

    On several occasions, customers have shared with us the costly lessons suffered with resold or misrepresented 2-Fluoro-4-Methylanisole from less reputable channels: unexpected boiling point shifts, detection of high-level non-anisole aromatics, or failures in downstream polymerizations. Each case involves not just wasted material, but lost production time, delayed research milestones, and additional expense for reprocessing. We step in with analytical assistance, fresh samples, and close technical support, often solving problems that would otherwise go unresolved.

    Our traceability system enables clear investigation of root causes, matching customer batch complaints to specific process records and raw material lots. Direct conversations with lab managers and synthetic chemists guide our troubleshooting—a luxury that trading companies and generic resellers do not offer. By learning from each of these failures, we raise our bar continuously.

    Building Trust: Transparency, Integrity, and the Value of Direct Sourcing

    Our experience over the decades shows that cutting corners or obscuring batch histories creates more problems than it solves. We observe that chemists, purchasing managers, and regulatory auditors ask for more transparency and want direct answers, not scripted reassurance. As the manufacturer, we respond with clean records, open-door audits, and direct communication by the individuals who actually run the process line. This approach builds trust, and ensures that both simple and complex requirements get met without the friction or uncertainty that comes with unknown suppliers.

    While large-scale buyers often care most about price and delivery, more and more appreciate consistency and partnership. Whether we are addressing trace impurities or process improvement, our focus remains on practical solutions. Our aim is to ensure repeat access to the exact same material specification batch after batch—and with that, decrease downtime for customers, and improve R&D outcomes. Users tell us they value the ‘real human’ aspect, where a chemist or plant manager can reach our team directly, and receive specific, actionable advice.

    Future Trends: Anticipating Evolving Needs and Regulatory Demands

    Looking ahead, we see legislation moving toward tighter oversight of specialty aromatic chemicals, especially those involving halogenated intermediates. Greater focus on traceability and documentation drives investments in analytics and process controls on our side. Regulatory agencies now demand proof of low-level impurity profiles, evidence of safe handling from synthesis to delivery, and clear line-of-sight on all raw materials. Having in-house synthesis from start to finish puts us on firm ground to deliver on these requirements, providing secure supply chains for both existing and new molecules.

    Technology development doesn’t stand still, and neither do we. Our teams constantly watch for shifts in synthetic pathway demands: higher selectivity, reduced waste, or stricter toxicological cut-offs. As target molecules and regulatory endpoints change, we adapt both process chemistry and quality systems to fit the challenge. We back up every shift with real-world process validation and full user feedback, never relying simply on literature claims or wishful thinking.

    Practical Solutions for End Users: Direct Applications and Ongoing Support

    From discussions with research labs to onsite visits at custom manufacturing plants, we stay closely tuned to how our product performs during active use. We supply not just the molecule, but the context: how our 2-Fluoro-4-Methylanisole fits optimally into multistep syntheses, how particular impurities might present during thermal processing, and how to manage waste handling efficiently. Customers appreciate our guides for scaling up from milligram R&D to full ton-scale production, minimizing troubleshooting headaches.

    For those in regulated industries, we offer not just analytical data but direct consultation with regulatory professionals who have managed real audits and submissions. We help explain the nuances of batch records, impurity tracing, and best practices for integrating our intermediate into finished product registrations. Our records meet current pharmaceutical and agrochemical regulatory standards, which speeds up both product approvals and ongoing compliance.

    Final Thoughts: A Manufacturer’s Commitment to Sustainable Value

    We have watched the field for years, observing the difference between cut-rate sourcing and direct manufacturing. It isn’t enough to sell a chemical—true value comes from controlling the process, listening to user needs, and adapting with integrity. Each bottle and drum of 2-Fluoro-4-Methylanisole that leaves our site reflects a process honed by technical rigor and direct accountability. By giving users clean quality, practical support, and transparent communications, we empower innovation across pharmaceutical, materials, and agricultural sectors. Our commitment is more than a buzzword; it’s a set of hard-won habits lived by everyone in our plant and supply chain.