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5-Fluoro-2-Methoxy-6-Picoline

    • Product Name 5-Fluoro-2-Methoxy-6-Picoline
    • Alias 5-Fluoro-6-methoxy-2-methylpyridine
    • Einecs 857-620-0
    • 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

    750377

    Chemical Name 5-Fluoro-2-Methoxy-6-Picoline
    Cas Number 112292-94-3
    Molecular Formula C7H8FNO
    Molecular Weight 141.14 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 195-197°C
    Density 1.157 g/mL at 25°C
    Purity Typically >98%
    Solubility Soluble in organic solvents
    Refractive Index 1.518
    Flash Point 77°C
    Synonyms 5-Fluoro-2-methoxy-6-methylpyridine

    As an accredited 5-Fluoro-2-Methoxy-6-Picoline 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 tamper-evident cap, labeled "5-Fluoro-2-Methoxy-6-Picoline, 25g," includes hazard symbols and batch details.
    Shipping 5-Fluoro-2-Methoxy-6-Picoline is shipped in sealed, chemically resistant containers to prevent leakage or contamination. Packaging complies with international hazardous material transport regulations. The product is clearly labeled, accompanied by a safety data sheet (SDS), and transported under ambient conditions unless otherwise specified, ensuring safe and secure delivery to the destination.
    Storage **5-Fluoro-2-Methoxy-6-Picoline** should be stored in a tightly sealed container, protected from light, moisture, and incompatible substances such as strong oxidizing agents. Store in a cool, dry, and well-ventilated area, ideally at room temperature. Ensure that the storage area is clearly labeled and restricted to trained personnel, following all applicable chemical safety regulations.
    Application of 5-Fluoro-2-Methoxy-6-Picoline

    Applications of 5-Fluoro-2-Methoxy-6-Picoline in Industrial Manufacturing

    As the original manufacturer, we supply 5-Fluoro-2-Methoxy-6-Picoline for key transformation steps in specialized fine chemical industries. The following genuine downstream applications illustrate major end-use sectors using this intermediate by integrating it into specific synthesis workflows for high-value end products. Each use case highlights sectoral compliance, real-world blending ratios, integration points, and associated final goods types.

    1. Advanced Pharmaceutical Intermediate Synthesis

    Pharmaceutical manufacturers use this compound as a structural intermediate for anti-viral and oncology drug active ingredients. It enters multi-step syntheses, where its unique pyridine core enables regioselective substitution in heterocyclic development. Quality control teams demand batch-to-batch consistency, and upstream traceability forms part of each GMP audit.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP Part II APIs
    • USP and Ph. Eur. monographs for relevant APIs
    • FDA DMF (Drug Master File) references during ANDA/NDA filings

    Typical usage ratio

    • 5–15% molar input per reaction stage, adjusted according to the final API synthetic route and stoichiometric requirements

    Downstream process integration

    • Introduced during the first or second key intermediate coupling in stepwise synthesis of active substances
    • Integrated in closed-system reactors with in-process analytical monitoring (HPLC/GC)
    • Included in validated cleaning and changeover protocols

    Final product types

    • NCE (New Chemical Entity) anti-viral drug substances
    • Tyrosine kinase inhibitor intermediates
    • Generic cancer drug APIs

    2. Agricultural Chemical Building Block

    Agrochemical formulators deploy this compound in the synthesis of advanced active ingredients for herbicides and seed treatment agents. Its fluoro-substituted pyridine scaffold supports the development of compounds with targeted herbicidal activity and controlled environmental fate. Adherence to agricultural regulations and precise formulation blending governs its use at every scale.

    Industry compliance standards

    • ISO 9001:2015 for agrochemical raw material production
    • Regulation (EC) No 1107/2009 for Plant Protection Products (EU)
    • FAO/WHO Guidelines for the Registration of Pesticides
    • Integrated Pest Management safety audits

    Typical usage ratio

    • 2–10% by mass in intermediate formulation, usually calibrated through test-batch bioassays and final actives concentration targets

    Downstream process integration

    • Added at early-stage heterocycle condensation steps for active ingredient core development
    • Handled in dedicated synthesis modules to avoid cross-contamination with other actives
    • Subject to residue tracking and formulation QA checks

    Final product types

    • Selective broadleaf herbicides
    • Seed coating agents for improved crop emergence
    • Pre-emergent weed control formulations

    3. Electronic Chemical Intermediate for Display Materials

    Manufacturers of liquid crystal and OLED materials utilize this specialty pyridine to construct electron-transporting additives and tuning agents for display performance. The presence of both fluoro and alkoxy groups delivers precise electronic properties vital in thin-film and coating technologies for flat panel displays. Strict adherence to semiconductor supply specifications and trace impurity limits remains key to quality acceptance.

    Industry compliance standards

    • JEITA (Japan Electronics and Information Technology Industries Association) EIAJ-4701
    • RoHS Directive (EU 2011/65/EU) for hazardous substances
    • REACH Registration (EC No. 1907/2006) for import and use
    • Internal panel manufacturer material purity standards (often <10 ppm metal/halogen contaminant)

    Typical usage ratio

    • 0.5–2% by weight in functional intermediate batches, optimized based on target dielectric and conductivity properties in the downstream material

    Downstream process integration

    • Introduced within core synthesis stages of electron/hole transporter molecules
    • Solubilized under inert atmosphere, often in small molecule organic syntheses
    • Requires high-purity handling (cleanroom or Class 10000 environment minimum)

    Final product types

    • OLED emitter and auxiliary layers
    • High-performance liquid crystal panel coatings
    • Photoalignment agents in TFT manufacturing

    4. Fine Chemical Intermediate for Specialty Dye Manufacturing

    Specialty dye producers employ this substance to synthesize functionalized pyridine-based chromophores for inkjet, security, and industrial textile applications. Its distinct substitution pattern enables the introduction of color-modulating groups, giving rise to dyes with tailored absorption profiles and binding characteristics. Manufacturers implement additional tracking of incoming raw materials for REACH and export classification compliance.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for chemical safety
    • REACH Annex XVII restrictions (EC No. 1907/2006) for aromatic amine precursors
    • CFR Title 21, Part 74 (US FDA) if used in food-contact or cosmetics
    • ISO 14001 for environmental management in dye production

    Typical usage ratio

    • 1–8% by mass of precursor input, precisely adjusted to achieve specified chromophore intensity and solubility profiles

    Downstream process integration

    • Incorporated during first step of chromophore skeleton formation
    • Monitored using in-process spectrophotometric analysis to ensure color attributes
    • Subject to batch traceability and export documentation tagging

    Final product types

    • Security printing dyes
    • Industrial textile inks
    • Photostable inkjet dyes
    • Special effect colorants for anti-counterfeit applications
    Free Quote

    Competitive 5-Fluoro-2-Methoxy-6-Picoline prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    5-Fluoro-2-Methoxy-6-Picoline: Value from the Manufacturing Floor to Research Labs

    Direct Manufacturer Experience: What Sets This Compound Apart

    Working every day in the chemical plant, we develop and supply 5-Fluoro-2-Methoxy-6-Picoline to contract partners, pharmaceutical scientists, and material researchers who demand purity and consistency. We see this compound move from batch reactor through crystallization, purification, quality check, packing, and finally shipment. Each step brings its challenges, and we have tuned our operation based on years of hands-on observation, process troubleshooting, and dialogue with those who actually use what we make.

    It's easy to overlook subtle differences that set a chemical apart, especially on paper. 5-Fluoro-2-Methoxy-6-Picoline, with its methoxy and fluoro groups on the methylpyridine ring, offers a distinct reactivity profile compared to its close relatives. In the lab, that means researchers working on targeted synthetic routes appreciate its performance in organofluorine chemistry, agrochemical intermediates, or the design of new medical candidates. Out on the production floor, we follow strict solvent selection and process controls to ensure that every batch meets the purity demanded in these high-value downstream applications.

    Model, Technical Profile, and Our Way of Working

    Over years of production, we’ve worked through the practical realities of turning raw material into refined 5-Fluoro-2-Methoxy-6-Picoline. Each step, from fluorination to methylation to methoxylation, needs diligent monitoring—not only to hit spectroscopic targets, but to keep by-products controlled within safe limits. Our model relies on scalable reactors, precise temperature ramps, and phased solvent recovery. While the theory behind the chemistry is well-laid in journals, implementing that at production scale takes decisions made on the ground—what grade of solvent to recycle, which filtration method to use under variable humidity, when to switch to a fresh catalyst bed. We build these lessons into our SOPs, and the result shows in the chemical’s consistency.

    Users tell us that analytical reproducibility matters more than flashy marketing in real-world research. We triple-check GC and HPLC profiles, maintain single-source raw material supply chains, and pull real-time impurity trending data on every sizable batch. When shipping to a synthesis group scaling up a new lead, or a contract research organization pursuing a tight timeline, we know every hour and every gram counts. Our staff can spot an irregularity before it leaves the line, instead of chasing after problems downstream. This is what gives confidence beyond just a line on a certificate of analysis: a shared understanding that our product supports your next scientific step, not just fills a drum.

    Application Insights from Direct Manufacturer Relationships

    5-Fluoro-2-Methoxy-6-Picoline doesn’t stay on our shelf for long because demand runs high among discovery chemists and development teams. Many use it as a building block in the preparation of complex heterocyclic scaffolds. We’ve seen it made into intermediates for pharma actives, with the fluoro group providing increased metabolic stability in medicinal chemistry programs. Some customers work in crop protection, noting that substitution patterns on the pyridine ring tune the bioactivity and selectivity in pesticide development.

    Occasionally, we consult directly with process scientists on how to minimize losses during their coupling reactions or Miyaura borylation. Years of consistent output mean that spec deviations rarely interrupt timelines, and if issues do arise, our team troubleshoots with customers in real time. Our technical department even assists with regulatory filings related to impurity profiles when needed, something you only get when buying direct from a producer, not a label or broker.

    What distinguishes 5-Fluoro-2-Methoxy-6-Picoline from alternatives isn’t in the MSDS but in the performance it delivers batch after batch. Some similar pyridine derivatives lack the combined electron-donating and withdrawing pattern this molecule exhibits. End users pursuing new C–F bond chemistry prefer this balance, since it modulates reactivity and selectivity in downstream reactions. In early research, these small chemical differences can tip the scale between a viable or failed pathway.

    Pain Points We Solve as Chemical Manufacturers

    Building a reliable supply chain for materials like this takes more than just paperwork and inventory management. We manage exothermic steps, sensitive waste handling, and process bottlenecks to keep product moving. Our team invests in digital controls and staff training for in-line monitoring, because minor shifts in temperature or raw material sources can create major quality swings. We do not rely on third parties or tollers for critical steps—our full control ensures traceability for every shipment.

    Supply interruptions stress our partners, especially during scale-ups or regulatory filings. When COVID hit or international logistics faltered, we buffered key intermediate supplies on-site, ran extra shifts, and found alternate packing routes to keep orders filled. If customers experience unexpected demand surges, our flexible line switching capabilities mean we can often fill gaps, instead of making partners wait months for availability. Stability in supply brings real world impact to lab timelines.

    On the regulatory side, our processes meet increasingly stringent environmental and worker safety requirements. We track waste output, review effluent logs daily, and invest in closed-loop handling systems where risk exists. Producing new chemicals attracts constant oversight, and we adapt documentation to meet global standards, supporting customer applications that demand batch traceability and documentation.

    Quality and Transparency: What Matters Every Day

    In our experience, performance in a research reaction, pilot-scale synthesis, or plant trial depends more on process history than glossy brochures. Everyone likes a clean CoA, but what counts is seeing the same results each time you open a new drum or bottle. Impurities below threshold matter as much as headline assay values, especially when a critical reaction stalls because of hidden contaminants.

    We maintain archival samples for years, not because regulations demand it, but because sometimes our partners hit a snarl months after receipt and look to rerun tests. Drop-in access to full production records—the whole chain, from arrival of base fluorine compounds to final packing—keeps our technical support in step with their troubleshooting. These are the real costs and realities for both sides. We see customers move away from generic resellers after single-batch variations trip up scale-up or regulatory review, and we structure our operation to prevent that outcome.

    Our technical literature and support teams routinely field requests for spectral references, method validations, or feedback on side reactions observed by users. We recommend procedures that reflect actual factory experience, not just textbook guidance. Many technical improvements come directly from production: a slight drop in distillation rate, a different source of glassware, or a sequence change in reagent addition—each fine-tune commits fewer by-products and lessens environmental impact.

    Practical Differences from Other Product Lines

    Comparing 5-Fluoro-2-Methoxy-6-Picoline to similar methylated or fluorinated pyridines shows real practical differences observed in both our plant and our customer’s lab books. For instance, the combined presence of both fluoro and methoxy groups, positioned on the 6- and 2-sites of the pyridine ring, gives this compound selective reactivity with a range of transition metal catalysts. In C-H activation and cross-coupling protocols, our chemist clients report less by-product formation than with monosubstituted analogues. This cuts both time and solvent costs downstream.

    We have tracked feedback that preparation of reference standards and impurity markers requires a consistent matrix. Many competitors, especially those who source material through several intermediaries, sell product with minor but detectable profile differences, complicating analytical comparison. Our plant’s single-batch, full-lot production approach eliminates this variable. That level of process transparency matters most where regulatory filings or IP-sensitive research is ongoing.

    Distinct from older halogenated pyridines, the fluoro group here introduces both metabolic stability and altered electronic bias to the core. Patented drug candidates and agricultural actives built on this backbone can deliver improved half-lives or switched target specificity. We support customers who use side-by-side comparative kinetic studies, supplying them with control samples, archived reference spectra, and impurity benchmarking upon request. The hands-on data we gather—NMR, mass spec, trace metal quantification—stems from equipment maintained and operated by our in-house teams.

    Usability, Handling, and Realities of Production Chemistry

    Day-to-day handling of 5-Fluoro-2-Methoxy-6-Picoline teaches a production chemist the quirks that get lost in theory texts. This isn’t a bulk chemical you can handle with minimal attention. Its chemical stability under light and air means simple warehouse storage works, but tight sealing and moisture control remain priorities; we use inert-gas blanketing during both processing and packaging. This minimizes the risk of trace hydrolysis that may impact purity, especially over long ocean shipments or warehouse dwell times.

    From customer feedback, the product’s physical state, color, and odor profile remain trusted identification markers. We stick to clear, amber glass for small batches and fluorinated polymer linings for larger drums, because composite barrels from discount suppliers sometimes leach unwanted compounds. We have replaced packing lines and storage procedures over the years after learning—often the hard way—which secondary materials interact with the chemical, especially at high concentration.

    Many users work in gloveboxes or controlled-atmosphere hoods. Our technical team answers questions about vapor pressure, evaporation rates, and potential cross-contamination in secondary operations. We provide not just a data sheet, but firsthand advice from operators who see this compound daily, and updates as soon as our internal testing reveals anything unexpected.

    Supporting Scaling, Cost Control, and Safety in Real Use

    Scaling a new synthetic step from milligram to multi-ton quantities brings tough lessons for both chemists and processors. We partner closely on pilot-plant projects, mapping reaction parameters to batch records that accompany every pail or drum we ship. Pricing reflects real economies of scale; by running continuous instead of batch processes, and recycling solvents on-site, we keep costs predictable from run to run. We do not rely on speculative stockpiling or opportunistic spot buying. This ensures quality, cost, and supply regularity.

    Downstream safety matters to us. We regularly review safety data, both in-house and from risk assessments at customer sites, to recommend proper PPE, handling practice, and worst-case mitigation. Our technical team comes from direct plant backgrounds: we know what it means to detect traces of unexpected side products, or respond to a drum that felt off on loading. Feedback goes directly from customer to line worker, short-circuiting decision chains that can drag out troubleshooting.

    We think about waste and green chemistry, too. Our waste minimization strategy looks at each process step for reduction or reuse, not just end-of-pipe treatment. We feed solvent and by-product recovery insights back into our process design cycle, trimming both regulatory risk and environmental impact year over year. Meeting global standards means understanding not only what you produce, but what you inevitably send down the drain. Sharing these results openly with our customers builds trust over long supply relationships.

    Listening and Evolving with R&D Partners

    A manufacturer must listen as much as provide. Our QC and application scientists spend as much time on customer support as on their immediate laboratory work. Often, our partners in pharma, materials, or crop science come to us at the early ideation phase, hoping to push the boundaries of what the base molecule can achieve. We gather feedback, make process adjustments on the back of promising new results, and sometimes develop specialty cuts or purity grades beyond current standards.

    With new applications in mind, we invest in pilot studies and support customer method development work whenever requests come. Our lab teams validate new analytical methods, address method interferences, and deliver certified reference materials as needed. We don’t stop at standard regulatory libraries—products like 5-Fluoro-2-Methoxy-6-Picoline support creative trial and error, and we evolve our plant processes to match. Experiments scale up faster without delays or last-minute substitutions.

    We believe in full transparency. Customers want to know the real story behind their supply, not just the paperwork. If we see a way to improve, whether switching to greener reagents or fine-tuning a post-processing wash, we keep our partners looped in. This feedback cycle breeds practical innovation, where lessons learned in plant or lab feed back into both upstream manufacturing and downstream application.

    A Manufacturer’s Role in Modern Chemical Supply

    Making and shipping 5-Fluoro-2-Methoxy-6-Picoline brings daily lessons in reliability, technical improvement, and open partnership. Every successful supply chain relies on communication between chemists, production teams, and users in research and industrial settings. We approach each batch not as a routine, but as a step in a new scientific process—one that could mean a breakthrough in the lab, or a smoother pilot run in the factory.

    In a fast-moving field, nobody can rest on catalog listings or generic assurances. End users demand rigor, regularity, and collaboration. We offer more than bulk chemical: direct access to the people making it, commitment to real operational detail, and responsiveness when conditions change or new needs arise. Years of experience supporting 5-Fluoro-2-Methoxy-6-Picoline supply mean fewer surprises, smoother transitions from idea to scale, and mutual progress from both sides of the supply relationship.

    Science, safety, and service remain our daily watchwords as we produce and deliver this compound. Lab-to-plant knowledge, rooted in real manufacturing, is what our customers count upon—batch after batch, year after year. We wouldn’t make it any other way.