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2-Fluoro-3-(Hydroxymethyl)Pyridine

    • Product Name 2-Fluoro-3-(Hydroxymethyl)Pyridine
    • Alias 2-Fluoro-3-pyridinemethanol
    • Einecs 859-245-4
    • 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

    453255

    Product Name 2-Fluoro-3-(Hydroxymethyl)Pyridine
    Cas Number 19900-57-1
    Molecular Formula C6H6FNO
    Molecular Weight 127.12 g/mol
    Appearance Colorless to pale yellow liquid
    Melting Point -
    Boiling Point 220-222 °C (at 760 mmHg)
    Density 1.222 g/cm³
    Purity Typically >98%
    Solubility Soluble in organic solvents such as DMSO and methanol
    Smiles C1=CC(=C(N=C1)F)CO
    Inchi InChI=1S/C6H6FNO/c7-6-4-5(3-9)1-2-8-6/h1-2,4,9H,3H2
    Synonyms 2-Fluoro-3-pyridinemethanol

    As an accredited 2-Fluoro-3-(Hydroxymethyl)Pyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle containing 5 grams of 2-Fluoro-3-(Hydroxymethyl)Pyridine, tightly sealed with a screw cap and labeled accordingly.
    Shipping Shipping for 2-Fluoro-3-(Hydroxymethyl)Pyridine is carried out in compliance with safety regulations. The chemical is securely packaged in sealed containers, protected from moisture and light. It is shipped by approved carriers compatible with hazardous materials, accompanied by safety data sheets and proper labeling to ensure safe handling and prompt delivery.
    Storage 2-Fluoro-3-(Hydroxymethyl)pyridine should be stored in a cool, dry, and well-ventilated area, away from sources of heat and ignition. Keep the container tightly closed and protected from moisture. Store away from incompatible substances such as strong oxidizers and acids. Use appropriate, clearly labeled containers, and ensure secondary containment to prevent spills or leaks.
    Application of 2-Fluoro-3-(Hydroxymethyl)Pyridine

    Applications of 2-Fluoro-3-(Hydroxymethyl)Pyridine in Industrial Manufacturing

    2-Fluoro-3-(Hydroxymethyl)Pyridine enables essential transformations across advanced chemical manufacturing sectors. As a direct manufacturer, we support large-scale synthesis in API intermediates, crop protection actives, fine chemicals, electronic intermediates, and specialty reagents, offering consistency and full supply chain transparency.

    1. Pharmaceutical API Intermediate Synthesis

    Major pharmaceutical manufacturers utilize this compound as a building block in the synthesis of advanced pyridine-derived active pharmaceutical ingredients. The fluorinated pyridine ring structure withstands multistep conversions, supporting development of targeted anti-infectives, CNS agents, and cardiovascular drugs. Our material meets stringent pharmaceutical standards and ensures reliable lot-to-lot consistency for scalable process integration.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP–NF and Ph. Eur. monograph requirements for related intermediates
    • 21 CFR Part 210, 211 (USFDA current GMP for finished pharmaceuticals)
    • ISO 9001 quality management system for bulk chemical production

    Typical usage ratio

    • Concentration ranges from 5% to 20% w/w as a key intermediate, adjusted based on the complexity of the API synthesis route and desired throughput

    Downstream process integration

    • Direct input after initial halogenation and protection steps in stepwise API intermediate assembly (flow or batch reactor)
    • Purification often via crystallization or chromatography before final API-coupling reactions

    Final product types

    • Innovator and generic pharmaceuticals (e.g., anti-infectives, CNS drugs, cardiovascular agents)
    • Regulatory-submitted API intermediates for global drug master files
    • Research and development screening libraries
    • Clinical trial material supply

    2. Agrochemical Active Ingredient Manufacturing

    Crop protection and agrochemical manufacturers adopt this raw material for synthesis of selective pyridine-derived fungicides and herbicides, leveraging its site-specific reactivity and ability to introduce a fluorine moiety essential for biological activity. The compound’s functional groups facilitate smooth ring functionalization, enabling efficient production workflows in multi-ton agrochemical plants under seasonal demand cycles.

    Industry compliance standards

    • FAO/WHO Joint Meeting on Pesticide Specifications
    • ISO 9001 for process/feedstock traceability
    • REACH (EC) No 1907/2006 for agrochemical intermediates in Europe
    • OECD guidelines for chemical testing and registration

    Typical usage ratio

    • 10–30% w/w in the initial synthesis batch for pyridine-based herbicides and fungicides
    • Specific ratio adjusted per crop protection product and yield target

    Downstream process integration

    • Reaction with chlorinating agents and further condensation in jacketed stirred tank reactors
    • Integration after initial solvent extraction and pre-esterification steps

    Final product types

    • Commercial-grade herbicide technical concentrates
    • Fungicidal actives for seed coatings, soil treatments, foliar sprays
    • Regulatory dossier submissions for major agricultural markets
    • Bulk export packing for contract formulators

    3. Advanced Electronic Materials Synthesis

    Producers of electronic-grade chemicals incorporate the compound to prepare functional pyridine derivatives, serving as key intermediates in the manufacture of OLED emitting layers, specialty electrolytes, and organic semiconductors. The material’s distinct electronegativity promotes molecular stability and control during reactions, supporting precise quality standards and repeatability in electronics fabrication.

    Industry compliance standards

    • SEMI C3 (Semiconductor Equipment and Materials International)
    • RoHS (Restriction of Hazardous Substances Directive for electronics)
    • IEC 60749 for chemical purity in semiconductor applications
    • ISO 14001 for environmental management systems (electronic industry)

    Typical usage ratio

    • 2–8% w/w in formulation of conductive layer precursors, varying by target device structure and batch scale

    Downstream process integration

    • Employed in initial coupling or substitution steps before functionalization of electron transport or emission dyes
    • Enters after solvent purification and pre-polymerization process

    Final product types

    • OLED display emitting materials
    • Organic photovoltaic panel intermediates
    • Specialized electrolytes for lithium or sodium batteries
    • Organic memory and logic device components

    4. Fine Chemicals and Specialty Reagent Production

    Manufacturers specializing in fine chemicals utilize this compound for synthesizing specialty pyridine-containing reagents, catalysts, and analytical standards required in scientific laboratories and niche commercial applications. Its controlled fluorination and hydroxymethyl substitution make it a valuable precursor for structurally complex molecules and custom research compounds.

    Industry compliance standards

    • ISO 17034 for reference material producers
    • ISO 9001 quality control for fine chemical synthesis
    • GHS (Globally Harmonized System) labeling for laboratory reagents
    • REACH compliance for specialty reagents distributed in Europe

    Typical usage ratio

    • 1–15% w/w based on multi-step reagent syntheses; recipe adjusted for final purity targets and scale

    Downstream process integration

    • Added at the initial alkylation or nucleophilic substitution step in batch reactors
    • Incorporated before final crystallization, extraction, or vacuum distillation sequence

    Final product types

    • Certified reference materials for pharmaceutical and analytical labs
    • Pyridine-based ligands for homogeneous catalysis
    • Chiral auxiliaries and analytical derivatization agents
    • Custom fine chemicals for university and industrial R&D

    5. API Development and Process Optimization Services

    Contract manufacturing organizations and innovation-driven pharmaceutical facilities rely on this material during route scouting, impurity profiling, and scale-up phases for new chemical entities (NCEs). Its robust chemical properties under typical reaction conditions allow smooth transfer from bench to pilot scale while supporting detailed process analytical validation.

    Industry compliance standards

    • ICH Q11 (Development and Manufacture of Drug Substances)
    • Good Laboratory Practice (GLP) for non-clinical safety studies
    • ISO 13485 for medical device–related chemical intermediates
    • FDA Guidance for Industry: QbD approaches in pharmaceutical development

    Typical usage ratio

    • 3–12% w/w in process optimization trials, scaled according to batch size, desired impurity control, and downstream conversion rates

    Downstream process integration

    • Initial raw material input for developing new process routes in kilo labs
    • Feedstock in scaled-down pilot plants to demonstrate process controls prior to full cGMP production

    Final product types

    • Pilot-scale API intermediates for IND and NDA submissions
    • Validated synthetic intermediates supporting technology transfer
    • Regulatory filing packages for new drug approvals
    • Process validation and quality assurance data sets
    Free Quote

    Competitive 2-Fluoro-3-(Hydroxymethyl)Pyridine prices that fit your budget—flexible terms and customized quotes for every order.

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

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    Certification & Compliance
    More Introduction

    2-Fluoro-3-(Hydroxymethyl)Pyridine: Practical Insights from the Manufacturer’s Workbench

    Recognizing the Value Behind 2-Fluoro-3-(Hydroxymethyl)Pyridine

    Working with heterocyclic intermediates every day, our focus runs deeper than supplying a bottle of chemical. With 2-Fluoro-3-(Hydroxymethyl)Pyridine, our lab teams are steeped in hands-on experience, not just following formulas but tuning processes for steady output batch after batch. This specialty pyridine derivative, often seen in fine chemical synthesis, holds a unique place in our workflow for its high reactivity and its flexibility throughout both pharmaceutical and agrochemical routes.

    Our chemists rely on experience, not assumption, to determine optimal handling and synthesis pathways for this compound. The fluoro group at the 2-position and the hydroxymethyl substitution at the 3-position draw the attention of both our R&D and QC chemists. They’re not just marks on a ring—they drive the compound's performance. In direct application, the hydroxymethyl offers a reliable handle for further transformations, and that adjacent fluorine tweaks both reactivity and metabolic profile, supporting downstream chemistry where selectivity counts.

    Model, Purity and Basic Physical Insights

    We routinely produce 2-Fluoro-3-(Hydroxymethyl)Pyridine in a standardized model under rigorous batch controls. Through years of scale-up runs, we have achieved reproducible purity standards, keeping impurities and by-products under tight thresholds. Most clients sourcing this compound come from discovery research, scale-up pilot studies, and even those crossing into full registration batches for pharma actives or fine intermediates. The off-white solid we provide flows evenly and resists caking under normal storage—subtle observations, but these points come from day-to-day warehouse and prep bench realities.

    Purity checks rely on precise GC and HPLC runs. By maintaining purity above 98%, side reactions rarely threaten critical downstream steps. Internal tests, NMR controls, and careful moisture management give our staff comfort when shipping out parcels, be it in grams or multi-kg drums. Year after year, our approach doesn’t rely only on documentation—factory-floor experience shapes every process refinement.

    From the Factory to the Fume Hood: How Chemists Use It

    Our clients order 2-Fluoro-3-(Hydroxymethyl)Pyridine for its role in complex molecule construction. Our technical team has walked the steps, transforming this pyridine into building blocks for antivirals, kinase inhibitors, or new-generation crop protectants. The hydroxymethyl group easily enters further oxidation, halogenation, coupling reactions—anyone synthesizing advanced heterocycles recognizes that leverage. Meanwhile, the fluorine pulls electronic effects just enough to open unique positions for selective substitution.

    One theme we’ve seen: the smaller the margin for byproducts, the less forgiving the process will be to unnoticed residuals or unknowns. Bench chemists trace failures back to starting materials far more often than most people guess. The batch homogeneity and high purity of our product limits risk across a range of process applications, from Suzuki coupling to nucleophilic substitutions. On our end, we keep analytical standards matched with top research labs, using NMR, MS, and infrared controls that don’t miss subtle impurities.

    Why Process Control—Not Just Specifications—Drives Real Outcomes

    In our plant, the biggest lesson comes from process control, not from relying on a spec sheet. We record subtle cues—solution colors, odor changes during distillation, viscosity shifts that equipment detects before visibility shows. Even minor changes in fluorinated intermediates can signal larger issues downstream. Each batch gets tracked not just for purity but for process stability, warming and cooling curves, and results of post-reaction workups. Years of internal records show: more often than not, tight process monitoring pays off when a batch enters pharma registration or regulatory documentation.

    From a practical point of view, differences between 2-Fluoro-3-(Hydroxymethyl)Pyridine and non-fluorinated or differently substituted pyridines matter less on paper than in a hot reactor. Fluorine at the 2-position tugs the electron cloud, setting this molecule apart from its methylated or unsubstituted analogs. In downstream chemistry, we see greater selectivity, altered solubility, and modified metabolic stability—so customers can often trim a purification step or gain a new reaction handle. We gather this feedback over years and relay observations to the bench: subtle process tweaks, not numbers, drive yield improvements.

    Distinct Benefits over Similar Pyridine Intermediates

    There’s a temptation to treat pyridine derivatives as roughly equivalent, especially in early-stage screening or when price comes into play. Our shop-floor experience challenges this shortcut. Production lines running with close analogs—say, 3-(hydroxymethyl)pyridine lacking the fluoro group—almost always encounter downstream surprises. That single fluorine atom at position 2 can produce cleaner couplings, modify basicity, and change work-up profiles.

    Researchers often point to improved selectivity in halogenation, alkylation, and functional group exchange steps. We tracked one customer’s route converting our fluoropyridine into a pivotal arylpyridine segment of a multi-cyclic drug candidate. Direct side-by-side trials revealed higher isolated yield and purer output compared to other pyridines. What looks like a minor structural change on a schematic sheet can impact chromatographic behavior, stability during storage, and resilience against hydrolysis or oxidation.

    Competing intermediates, whether non-fluorinated or with oxygen-based substituents in other positions, reveal quirks only through long-term collections of laboratory outcomes. Repeated customer feedback points to more successful scale-up from small-batch synthesis—fewer vein blockages in columns, less fouling of equipment, and more reproducible analytics post-quench or extraction. We translate these field results into our continuous improvement cycles each quarter, never relying solely on upstream raw specs.

    Usage Feedback and Practical Troubleshooting

    The most useful field data comes from users solving real problems—unexpected chromatographic tails, color changes during workups, or loss of yield at hydrogenation. Our technical support team listens carefully, as the bulk of process troubleshooting involves chemical details hidden from an outsider’s view. In this context, the hydroxymethyl group always stands out for its dual role: easy derivatization for increased molecular complexity, and yet robust enough under common lab conditions.

    No two production runs in end-user sites are quite the same; our support hones in on how the fluoro and hydroxymethyl balance affects these differences. Chemists often prioritize low water reactivity, easier purification over silica, and stability during thermal steps. Over years, product refinements have followed this feedback, often long before official specification changes. The reliability of our material in these settings sets it above commodity sources. Substitution patterns, subtle isomeric shifts, and related signals on NMR or HRMS can derail a batch—hands-on oversight in our plant accounts for this, avoiding the surprises that come from outsourcing or careless handling.

    Safety, Handling, and Real-Life Observations

    All chemical handling boils down to habits on the production floor. Our team works directly with 2-Fluoro-3-(Hydroxymethyl)Pyridine every day, in glass, stainless, and lined reactors. The compound stores well in sealed containers away from strong oxidants and acids—standard warehouse practices, but based on incident logs built up over years. Personnel wear standard PPE and follow process hazard analysis steps, yet simple labeling, clear recordkeeping, and fast communication prevent common incidents far more effectively than passive safety documentation.

    After hundreds of man-hours, one recurring pattern emerges: lots that remain dry and well-sealed do not clump, discolor, or show weight drift. A two-person check-out at shipping and intake both ensures that what goes out matches the certificate, but we don’t rely solely on paper—each team member is responsible for visual and tactile inspection. Experienced workers watch for signs of low-level hydrolysis or residue build-up, flagging inconsistencies before a single gram leaves the door.

    In our climate, seasonal humidity or unexpected facility events offer important real-life tests. Our protocols adjust rapidly, wrapping, double-bagging, or adding desiccant as soon as storage anomalies appear. Clients tell us that predictable product behavior once the package is opened saves hours of lab time; it’s rarely the theoretical property sheet but real-world observations that matter at scale.

    Continuous Learning: Adapting to Customer and Regulatory Expectations

    Nobody in manufacturing stands still. Across the last decade, regulatory and client expectations have shifted. Documentation, chain-of-custody, and traceability form the backbone of trust. We voluntarily invest in cleanroom protocols, analytical upgrades, and staff training because surprises down the road cost more in lost reputation than short-term savings ever could. Collaboration with external testing labs and regular method audits mean our customers receive material that meets, or exceeds, what any global research lab expects.

    Beyond compliance, we draw key lessons from customer complaints, field returns, and regulatory trends. Every return or flagged analytic is dissected by both production and QC, sometimes resulting in small batch changes or retesting cycles. These learnings cycle back to mainline production, product development, and even logistics. Shifts in transportation regulation, customs requirements or shipping holidays all feed into planning, so every order of 2-Fluoro-3-(Hydroxymethyl)Pyridine lands in the right state, not just at the right place on the calendar.

    Measuring and Communicating Quality Without Pretense

    Chemical manufacturing never reaches perfection, but a blend of humility and rigor keeps our facility moving forward. Year after year, analytical runs get refined. Our NMRs pick up barely-there signals, GC peaks are monitored for ghosting, and even packing room air is sampled for unexpected contaminants. We track the numbers, but we also measure staff feedback, unusual plant odors, and intake of new equipment quirks after maintenance. Shipping a batch to Boston or Berlin, our lab teams know the line between “good enough” and “flawless” can be thin; it’s field feedback, not spreadsheets, that exposes hidden issues.

    Compared to competing pyridine intermediates, ours proves its value under the most stressful conditions. Sudden temperature shifts, transit times extending over long holidays, or mismatched invoices can cause headaches, but material consistency always takes priority. We track supply chain events, flag traffic slowdowns, and double-check with freight teams. Material integrity stands as the acid test for our credibility—when a package opens in a far-off lab, it reflects not just a product, but the entire process culture behind it.

    What We’ve Learned Working at Scale

    Scaling up production changes everything. What works in a small round-bottom flask rarely transfers one-to-one to a 500-liter jacketed reactor. Time after time, subtle factors—reactor fouling, heat transfer variation, pressure transients—create new wrinkles. Staff on the night shift catch process drift, and our plant runs rely on communication between experienced hands and data logs. Quality-driven tweaks mean that the 2-Fluoro-3-(Hydroxymethyl)Pyridine you get tomorrow improves based on what staff noticed yesterday.

    Long-term relationships with research customers have shown us how even minor supply irregularity sets off ripple effects. Process recipes, training files, and even GxP validation tie straight to the confidence our intermediates provide. When a research group commits to moving a promising compound from milligrams to pilot scale, supply reliability and analytical transparency form the true differentiators. Our team knows that the work doesn’t end at packaging—support, follow-up, and real troubleshooting keep researchers returning year after year.

    Where the Work Goes Next

    Every week, we receive new requests—from academia to big-pharma, each one expecting continuity and precision. Scalability and customization no longer mean offering variation for variation’s sake; the real need is for suppliers who match material to process, backed by current analytic capability and after-sale support. By applying what we learn from every batch, feedback trend, and actual field outcome, we adapt our offering ahead of shifting needs.

    2-Fluoro-3-(Hydroxymethyl)Pyridine remains a linchpin in both routine and breakthrough work on complex molecules. Its real-world performance validates every improvement we introduce at source. We don’t just ship barrels—we advance with you, learning in tandem and embedding shared experience into every gram delivered. As industry requirements and regulations continue to evolve, the straight talk from the production floor and the adaptability in every shipping record set the true measure of our contribution to your research and process success.