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2-Fluoro-6-Methoxybenzoyl Chlorid

    • Product Name 2-Fluoro-6-Methoxybenzoyl Chlorid
    • Alias 2-Fluoro-6-Methoxybenzoyl chloride
    • Einecs 841-405-0
    • 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

    592948

    Product Name 2-Fluoro-6-Methoxybenzoyl Chloride
    Cas Number 850568-91-9
    Molecular Formula C8H6ClFO2
    Molecular Weight 188.59 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥ 97%
    Solubility Hydrolyzes in water; soluble in organic solvents
    Smiles COC1=C(C=CC(=C1)F)C(=O)Cl
    Iupac Name 2-fluoro-6-methoxybenzoyl chloride
    Storage Conditions Refrigerate; keep container tightly closed; store under inert atmosphere
    Hazard Class Corrosive, causes burns
    Synonyms 2-Fluoro-6-methoxybenzoic acid chloride

    As an accredited 2-Fluoro-6-Methoxybenzoyl Chlorid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 2-Fluoro-6-Methoxybenzoyl Chloride, 10g, packaged in a sealed amber glass bottle with a tamper-evident cap and hazard labeling.
    Shipping 2-Fluoro-6-methoxybenzoyl chloride is shipped in tightly sealed containers, protected from moisture and light, and clearly labeled according to chemical regulations. Shipment must comply with hazardous materials guidelines, utilizing appropriate cushioning and secondary containment to prevent leaks. Transport is typically conducted by certified carriers, with accompanying safety data sheets and hazard communication.
    Storage 2-Fluoro-6-Methoxybenzoyl chloride should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area. Keep it away from moisture, heat, and incompatible substances such as strong bases, oxidizing agents, and alcohols. Store under an inert atmosphere (e.g., nitrogen or argon) if possible, and protect from light. Handle in a chemical fume hood and avoid exposure.
    Application of 2-Fluoro-6-Methoxybenzoyl Chlorid

    Applications of 2-Fluoro-6-Methoxybenzoyl Chlorid in Industrial Manufacturing

    2-Fluoro-6-Methoxybenzoyl Chlorid serves as a precision intermediate in multiple specialized chemical manufacturing streams, where its reactivity and substitution pattern meet exacting process requirements. As an experienced manufacturer, we supply this material to downstream integrators who depend on reliable identity and purity throughout their established industrial workflows.

    1. Pharmaceutical Active Ingredient Synthesis

    Research-driven API manufacturers apply this material as an acylation agent during late-stage benzamide formation, enabling fluorine-contaning drug candidates or blockbusters with 2,6-methoxybenzoyl motifs. Due to continued regulatory scrutiny on genotoxic impurities and trace byproducts, precise stoichiometric control and validated handling are critical throughout scaled batch and continuous flow processing.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP EudraLex Volume 4
    • US FDA 21 CFR 210/211
    • Certificate of Suitability (CEP) for relevant monograph conformity

    Typical usage ratio

    • 0.98–1.05 molar equivalents against amine functional group, adjusted to minimize unreacted acyl chloride and minimize byproduct traces

    Downstream process integration

    • Fed into the benzamidation reactor as a final acylation step, often at controlled low temperatures (0–15°C) in inert or nitrogen atmosphere; inline monitored for HCl release and endpoint

    Final product types

    • Oral tablet or injectable drug APIs featuring 2-fluoro-6-methoxybenzamide structures (e.g., CNS agents, oncology compounds, anti-infectives)

    2. Agrochemical Active Compound Synthesis

    Leading crop protection manufacturers employ this intermediate in assembling fluorinated benzoyl structures, which form the core of advanced herbicides and fungicides. Quality assurance teams monitor for regulated impurity levels and ensure process residues comply with global agrochemical registration requirements at each development and scale-up stage.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products (JMPS)
    • OECD Principles of Good Laboratory Practice
    • EU Regulation (EC) No 1107/2009 for pesticide registration
    • ISO 17025 for analytical testing

    Typical usage ratio

    • 1.0–1.2 molar equivalents relative to nucleophilic intermediates, adjusted per specific synthetic target and pilot yield optimization

    Downstream process integration

    • Introduced at the mid or late cyclization stage, following intermediate aromatic substitution; batch reactors configured for continuous HCl vent scrubbing and environmental monitoring

    Final product types

    • Technical grade and formulated crop protection agents (granules, suspension concentrates, ECs) incorporating fluorinated benzoyl derivatives for enhanced biological activity

    3. Fine Chemical Synthesis for Optical Brighteners

    Producers of specialty optical brighteners and related performance chemicals utilize 2-fluoro-6-methoxybenzoyl derivatives to create highly substituted aromatic cores, supporting improved stability and tuned emission wavelengths for plastics and detergents. Stringent QC and colorimetric standards must be maintained at every step to meet downstream customer validation and sector-specific certification audits.

    Industry compliance standards

    • REACH Annex VII–X (EU Chemical Safety Assessment)
    • ISO 9001 Quality Management Systems
    • ASTM D1203 for colorant stability in polymers
    • IEC 62471 for photobiological safety (relevant for optical additives)

    Typical usage ratio

    • 0.95–1.10 molar equivalents per coupling partner, with dose optimization trials conducted for target chromophore purity and emission intensity

    Downstream process integration

    • Dosed during aromatic core coupling or condensation phases in sealed glass-lined vessels; downstream distillation purifies the intermediate before finishing formulation

    Final product types

    • Optical brightening agents (OBAs) for plastic films, detergent compositions, paper coatings, and technical textiles

    4. Liquid Crystal Intermediate Synthesis

    Manufacturers of advanced display materials employ this compound to introduce specific fluoro-methoxy substituted linkers, facilitating molecular alignment and thermal stability in liquid crystal monomers. Stringent particle and purity controls are mandated at every integration point, especially when serving electronics industry clients with exacting quality supply agreements.

    Industry compliance standards

    • IEC 61249-2-41 for electronics base materials
    • ISO 14001 Environmental Management for chemical process plants
    • JIS K 5600-1-8 for fine chemical testing in electronics
    • RoHS Directive 2011/65/EU (limiting hazardous substances in electronics)

    Typical usage ratio

    • 0.95–1.10 equivalents on the functional group basis, tuned to achieve monomer sequence specificity and minimize chain defects

    Downstream process integration

    • Fed at the fine chemical chain extension or terminal modification stage, typically under high-purity nitrogen and using pre-dried solvents to avoid hydrolysis

    Final product types

    • Liquid crystal intermediates, later converted into main-chain or side-chain LC monomers for TFT panels, OLED displays, and advanced imaging substrates
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    Certification & Compliance
    More Introduction

    2-Fluoro-6-Methoxybenzoyl Chloride: Direct Insight from the Manufacturer

    Our Commitment to Purity and Precision in Fine Chemical Production

    Manufacturing chemicals for specialty applications involves more than simply following a formula. At our facility, producing 2-Fluoro-6-Methoxybenzoyl Chloride draws on years of direct experience in reaction control, raw material sourcing, and quality testing. Every batch reflects our understanding of what happens at the reactor, the filtration station, and the loading dock. For us, quality arises from working hands-on with the material and making dozens of small decisions at each stage.

    What Sets 2-Fluoro-6-Methoxybenzoyl Chloride Apart

    2-Fluoro-6-Methoxybenzoyl Chloride, known among chemists for its nuanced reactivity, has become an important intermediate in pharmaceutical synthesis and advanced materials. A single misplaced impurity—especially chlorinated or fluorinated byproducts—can derail downstream processes. Our in-house technicians notice the difference immediately when a batch comes off with the right clarity and spectral profile. We run batch-level HPLC and NMR—not simply because a certificate demands it—but because subsequent reactions go more cleanly when the input is this precise. Even cleanroom procedures are adjusted over years to avoid particulate and contamination, learned through repeated scale-up runs and real process feedback.

    Model and Key Specifications from Practical Production Experience

    Our 2-Fluoro-6-Methoxybenzoyl Chloride model features high assay specifications, typically above 99%, with residual moisture and acid chlorides kept minimal through controlled drying. Not every producer manages to keep HCl content consistently low; carriers of uncontrolled moisture or acid traces hurt sensitive synthesis yields downstream. Packing lines have been modified over the years to finish the product as a colorless or nearly colorless liquid, keeping out any trace yellowing. This contrasts with older processes, which often produced batches that, on opening, released harsh odors or precipitated out solids after storage. Consistency—not just assay statistics—counts for our customers who run automated dosing and preparative reactions on kilo scales.

    Applications Shaped by Chemist Input and Customer Feedback

    Work on 2-Fluoro-6-Methoxybenzoyl Chloride started due to increased demand for modified aromatic acid chlorides in small-molecule drug development. In-house R&D teams fielded requests from process chemists asking for reliable, large-volume supplies of this specific benzoyl chloride derivative for heterocycle functionalization and selective acylation. This prompted us to fine-tune our purification columns and batch workups. Our product supports custom synthesis of bioactive ingredients where substitution patterns—including para-methoxy and ortho-fluoro modification—play a role in receptor targeting and ADME characteristics. Demand from medicinal chemistry teams led us to minimize trace halogenated impurities, since these can complicate molecule registration and upscaling.

    Distinguishing Features Rooted in Hands-On Process Control

    Experience shows that aromatic acyl chlorides react unpredictably to handling. Batches mishandled during chlorination or not stabilized at the right temperature tend to hydrolyze, releasing HCl gas and forming corrosive residues. We avoid such pitfalls with real-time inline monitoring and temperature control honed from repeated production cycles. The 2-Fluoro-6-Methoxybenzoyl Chloride we supply resists breakdown better during transport and storage due to extra drying steps and the use of specialized drums. These details make the difference for partners running kilogram-to-ton scale acylations, where downtime and contamination costs quickly escalate. No automated process substitutes for eyes-on-glass judgment during final checks, something our people take seriously after learning from past capping failures and leaked drums in transit.

    Reflecting Customer Requirements in Batch Customization

    Pharmaceutical customers, especially those in advanced synthesis, often request tighter tolerances or alternate packaging to streamline their workflows. Some labs request easily resealable HDPE containers to lower risk of atmospheric moisture ingress; others want pumped totes for continuous flow reactions. Over time, we’ve built lines to handle tailored fills, along with protocols for inerting and sealed storage. No two customers use this product the same way. Organic synthesis shops appreciate sealed ampoules for sensitive research, whereas process groups in generic pharma demand kilogram pails with tamper-evident closures. Stepping inside these labs during technical visits, we see how small tweaks make a big impact—prompting iterative adjustments at our end and influencing future lot protocols.

    Why Reaction Control and Trace Analysis Make a Difference

    Chlorinated intermediates show dramatic differences batch-to-batch without keen process oversight. We have watched yields collapse in customer pilot plants because a supplier cut corners, letting through dimers, ring-opened compounds, or traces of iron from aging reactors. Such contaminants increase API purification costs and can force multistep repurification runs. Every run at our plant undergoes LC-MS confirmation and residual halide checks, guided by a decade of troubleshooting failed scale-ups and feedback from customer QC labs. Even the ID of packaging lots gets scanned in so traceability runs both forwards and backwards on every drum sent out. This traceability doesn’t just satisfy audits—it guards relationships built over years of finished product reliability.

    Safety Considerations Learned from Direct Material Handling

    Anyone who has handled 2-Fluoro-6-Methoxybenzoyl Chloride knows its acyl chloride functionality brings a strong, pungent odor and reactive fumes at the first whiff of water. Our operators are drilled in the consequences of not respecting its volatility. Eye shields, gloves, and distributed ventilation are essential—not only as policy but because we’ve seen firsthand what happens otherwise. Spills and improper closures linger in memory; these events led to tightening up procedures and investing in faster ex-proof extraction. Shipping logistics reflect this reality. We double-tighten drums with PTFE and lock in forklift routes that minimize jarring. End-users thank us for fewer unexpected pressure releases, a benefit of rigorous material handling guidelines developed from experience, not just documentation.

    Process Evolution: Learning from Real-World Challenges

    Producing 2-Fluoro-6-Methoxybenzoyl Chloride hasn’t always been seamless. During early days, we faced unexpected side-reactions when atmospheric moisture crept into the reactor—leading to hydrolysis and unplanned pressure buildups. Equipment updates followed, along with the practice of direct inert gas purging and humidity mapping near storage areas. Test runs rarely go smoothly the first time. Technicians have responded to filter clogging by redesigning pre-treatment steps and noticing where trace particulates originate, whether from solvents or line wear. Success is less about buying fancy gear and more about incremental change—fixing one choke-point at a time and listening to user feedback.

    Contrasting with Other Benzoyl Chlorides from Practical Results

    Compared to generic benzoyl chlorides, the 2-Fluoro-6-Methoxy derivative provides a finer balance of electrophilicity and ring activation due to the methoxy and fluoro groups at strategic sites. Analytical work confirms higher selectivity during targeted acylation reactions—feedback echoed by our largest users. Non-fluorinated or non-methoxylated analogs react less precisely, requiring extra purification steps to remove unreacted starting materials or over-acylated side products. Handling characteristics differ as well; our product, with the added fluoro and methoxy substitution, demonstrates greater stability in controlled storage. Over time, reliability in upstream materials translates to cost savings in wasted solvents and reaction time—one of the most common points raised by synthesis directors during technical review.

    Tackling Process and Logistic Issues Head-On

    We see recurring issues with inferior lots from less experienced producers: sticky residues, separations on standing, or poor drum packaging. Each failed shipment generates extra cost due to process interruptions and wasted man-hours. By focusing on improved sealing techniques, tamper-resistant drums, and regular logistics route reviews, we avoid these issues on our end and support user needs downstream. Many traditional manufacturers use generic drums or pack materials without inerting, causing rapid degradation. We introduced nitrogen blanketing years ago to prevent these headaches. The result is tangible for operators unpacking drums at the final site—improved handling, fewer unpleasant surprises, and greater peace of mind knowing contamination isn’t carried over from upstream.

    Listening to Lab and Plant Needs: Continual Dialogue

    Professional relationships with research chemists and production managers shape how our 2-Fluoro-6-Methoxybenzoyl Chloride meets real-world standards. We value getting out of the office and visiting customer facilities—seeing first-hand tube-to-reactor connections, discussing residue clean-out issues, or brainstorming faster sample turnaround protocols. Chemists often share where a previous lot worked or failed, telling stories only an operator would notice. These visits help us recalibrate process points: adjusting micron sizing on final filters, tweaking drum headspace, and developing faster documentation turnaround. Through this grounded feedback cycle, our product stays tuned to evolving synthesis and compliance demands.

    Environmental Responsibility and Safe Work Practices

    Producing any acid chloride obliges us to make careful environmental plans. This means more than recycling solvents or treating vent streams; it points to responsible storage, drum reuse, and employee safety. After witnessing the consequences of a single drum breach long ago—both financial and environmental—we built redundant secondary containments and fire-resistant barriers into our logistics system. Waste handling staff attend regular training sessions, armed with experience-based lessons to prevent flare-ups, leaks, and hazards in transit. Our investment in air and effluent monitoring springs from these hard-won lessons, ensuring safe working conditions and neighbor respect, beyond what regulations require.

    Feedback-Driven Quality Improvement

    No production process stands still. As our partners request higher purity lots for preclinical study or automated dosage, we’ve risen to the challenge by upgrading drying infrastructure and refining inline GC analysis. Our sample turnaround times reflect an understanding that process scale-up rarely offers extra time in research settings. Communication from end-users completes the loop. If a batch once generated unexpected crystallization or slow solubility, we review logs, compare plant conditions, and repair any gaps. Incremental improvements, often inspired by QC or bench chemists, have lifted our long-term batch acceptance rates and minimized downtime both in our facility and at customer sites.

    Real Results in Downstream API and Fine Chemical Synthesis

    Success shows up as fewer rejected lots, cleaner reaction profiles, and reduced solvent waste at the customer’s site. Reliable 2-Fluoro-6-Methoxybenzoyl Chloride means chemists spend less time diagnosing failed acylations, more time progressing to the next synthesis target. Many production managers report improved stability and batch reproducibility with our product. This owes much to staff commitment: direct experience handling, improvement, and adaptation rather than resting on years-old SOPs. Our plant serves as a living laboratory where continuous process review based on customer input leads to more consistent, higher-quality product.

    Direct Sourcing Benefits for Advanced Chemistry Applications

    Chemistry-driven manufacturing means making small decisions with big impact. With 2-Fluoro-6-Methoxybenzoyl Chloride, we ensure that buyers access a product shaped through hands-on feedback, process learning, and technical collaboration—not simply a catalog number. Working directly with manufacturers opens channels for process troubleshooting, sourcing adjustments, and bulk customization. Over the years, open doors between our floor staff and customer chemists have helped us learn faster and solve problems before they reach scale-up reactors. This partnership underscores why our 2-Fluoro-6-Methoxybenzoyl Chloride stands out—not just as a reagent, but as a reliable part of advanced chemical development.

    Looking Ahead: Adapting to Evolving Industry Needs

    With regulatory, safety, and competitive pressures driving continuous innovation, we monitor how synthetic targets shift and what regulatory agencies demand from bulk intermediates. Propelled by close contact with working chemists and process teams, we invest in adapting everything from purification protocols to packaging sizes. Advanced drug pipelines and materials science projects increasingly raise their standards: broader analytical support, flexible logistics, and tighter purity profiles. Internally, production staff adapt old workflows, learning from each campaign why one method succeeded and another failed. This flexibility and focus keep our 2-Fluoro-6-Methoxybenzoyl Chloride relevant across diverse sectors, matching the evolving chemistry landscape with every fresh batch.

    Summary of Impact: Trust Anchored in Experience

    Our journey with 2-Fluoro-6-Methoxybenzoyl Chloride illustrates the difference that committed manufacturing makes. Long-term relationships, process tweaks backed by ground-level experience, and direct technical communication matter as much as technical data sheets. Behind every drum sits a story of lessons learned, challenges addressed, and trust earned batch-by-batch. For our customers—whether scaling a new synthesis route, optimizing purity, or improving safety—the difference shows up in product reliability and smoother process development. As chemistry continues to innovate, we remain grounded: learning, adapting, and applying what we know, one drum at a time.