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6-Methyl-2-Pyridinemethanol

    • Product Name 6-Methyl-2-Pyridinemethanol
    • Alias 2-Pyridinemethanol, 6-methyl-
    • Einecs 223-655-7
    • 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

    967310

    Chemical Name 6-Methyl-2-Pyridinemethanol
    Cas Number 1122-97-0
    Molecular Formula C7H9NO
    Molecular Weight 123.15 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 242-244 °C
    Density 1.108 g/cm3
    Solubility In Water Slightly soluble
    Flash Point 110 °C
    Purity Typically ≥98%
    Refractive Index 1.537-1.541
    Storage Temperature Store at room temperature
    Smiles CC1=CC=CC(NCO)=N1
    Synonyms 6-Methylpyridin-2-ylmethanol

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

    Packing & Storage
    Packing Amber glass bottle, 100 grams, tightly sealed with a screw cap, labeled with chemical name, CAS number, and hazard warnings.
    Shipping 6-Methyl-2-Pyridinemethanol is shipped in tightly sealed containers, protected from moisture and light. Ensure proper labeling according to regulatory guidelines. Transport at ambient temperature, avoiding extreme heat or cold. Handle with care, wearing suitable protective equipment. Follow all applicable local, national, and international shipping regulations for chemical substances.
    Storage 6-Methyl-2-Pyridinemethanol should be stored in a tightly sealed container in a cool, dry, well-ventilated area, away from direct sunlight, ignition sources, and incompatible materials such as strong oxidizing agents. Store at room temperature and avoid exposure to moisture. Properly label the storage container, ensuring appropriate chemical and hazard information is visible. Use secondary containment to prevent leaks or spills.
    Application of 6-Methyl-2-Pyridinemethanol

    Applications of 6-Methyl-2-Pyridinemethanol in Industrial Manufacturing

    6-Methyl-2-Pyridinemethanol plays a key role as an intermediate in several tightly regulated chemical manufacturing pathways. Our in-house synthesis ensures traceable, batch-consistent supply to industrial partners operating in fine chemicals, pharmaceuticals, agrochemicals, coatings, and specialty polymer sectors. Below, we detail the specific downstream integrations within industry-recognized environments.

    1. Pharmaceutical Intermediate for API Synthesis

    Pharmaceutical processors incorporate 6-Methyl-2-Pyridinemethanol as a building block during multi-step synthesis of advanced active pharmaceutical ingredients, specifically in the preparation of antihypertensive and CNS-focused compounds. The compound enters amidation or alkylation reactions after initial purification. Formulation scientists monitor impurity thresholds in accordance with ICH and pharmacopoeia directives, adjusting purification cycles and stoichiometry based on target molecule requirements. Downstream, this raw material supports custom molecule projects where controlled pyridine ring methylation is essential for biological activity.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients
    • USP-NF and EP monographs for relevant APIs
    • EMA guidelines on genotoxic impurities
    • FDA 21 CFR Part 211 Current Good Manufacturing Practice

    Typical usage ratio

    • 0.3–0.7 molar equivalents per mole of final API intermediate; adjusted to mitigate side reactions in stepwise synthesis

    Downstream process integration

    • Charged post-condensation for N-alkylation steps
    • Processed in jacketed reactors with monitored addition rate
    • Recovered by aqueous extraction and solvent swap methods
    • Subjected to in-process HPLC assay to control content below regulatory limits

    Final product types

    • Psychotropic drug active ingredients
    • Antihypertensive medication APIs
    • Custom synthesized pharmaceutical key intermediates
    • Reference standards for analytical laboratories

    2. Agrochemical Synthesis Component

    Manufacturers of modern agrochemicals utilize this compound as a core intermediate for the production of specific pyridine-based herbicides and insecticides. It enters coupling and cyclization steps, influencing the physical and biological properties of final active ingredients. Quality control emphasizes traceability and conformance with environmental and tox profile mandates, especially in EU and North American frameworks. Formulation developers tune concentrations based on reactivity and downstream analytical titration.

    Industry compliance standards

    • OECD Good Laboratory Practice (GLP) for Chemical Testing
    • EPA 40 CFR Part 169 and 40 CFR Part 180 (US pesticide registration)
    • REACH Regulation (EC) No 1907/2006 registration for intermediates
    • FAO and WHO specifications for pesticide active substances

    Typical usage ratio

    • 5–20% weight fraction within individual reaction sequences; altered with batch scale and reaction temperature

    Downstream process integration

    • Added during nucleophilic substitution or ring closure reactions
    • Reacted with chlorinated intermediates in continuous stirred-tank reactors
    • Purified by fractional distillation under reduced pressure
    • Monitored for residuals by GC-MS before formulation of technical concentrate

    Final product types

    • Pyridine-derived herbicide technical concentrates
    • Systemic insecticide active ingredient powders
    • Seed treatment additive bases
    • Intermediate compounds for fungicide synthesis

    3. Functional Monomer for Specialty Polymeric Materials

    Our clients in the advanced materials sector introduce this molecule as a functional monomer or chain modifier in specialty polymer synthesis. The methylpyridine alcohol group encourages site-specific crosslinking or end-capping reactions, affecting polymer chain distribution and final performance properties. Detailed process control is required to manage viscosity, glass transition, and miscibility characteristics across adhesive, membrane, and coating applications. Material certification supports serialization and non-interference with regulated end-use approvals.

    Industry compliance standards

    • ISO 9001:2015 Quality Management during polymer synthesis
    • EU REACH conformant monomer registration
    • RoHS 2011/65/EU for electronic and electrical polymer parts
    • ASTM D638 for tensile properties of plastics

    Typical usage ratio

    • 0.5–3.5% by mass of total monomer feedstock; adjusted to meet preset Mn and Mw targets

    Downstream process integration

    • Incorporated in polyaddition or polycondensation prepolymer stages
    • Dosed in-line for continuous extrusion systems
    • Crosslinked thermally and analyzed via GPC and FTIR for incorporation rates
    • End-group analysis performed post-cure for regulatory batch release

    Final product types

    • High-performance membrane films for electronics
    • Adhesives for industrial assembly
    • Reactive hot-melt coatings
    • Functionalized engineering plastic pellets

    4. Intermediate for High-Performance Coating Additives

    Coatings producers deploy 6-Methyl-2-Pyridinemethanol as a chemical intermediate for preparing multi-functional corrosion inhibitor additives and complexing agents. Its presence confers improved adhesion and weather resistance properties to both solvent-based and waterborne coatings. Industrial batch manufacturing demands precise ratio control to ensure complete reaction and minimal free alcohol residues. Subsequent formulation of metal surface primers and topcoats relies on confirmatory analytical data in line with global safety and export regulations.

    Industry compliance standards

    • ISO 12944-5:2018 for anti-corrosive paint systems
    • ASTM D520 for pigment analysis
    • EU CLP Regulation (EC) No 1272/2008 classification for export shipments
    • China GB/T 9750-2012 for paint and coating labeling

    Typical usage ratio

    • 1.8–6.0% by weight in additive precursor synthesis; optimized based on metal surface and resin system

    Downstream process integration

    • Reacted in batch reactors during additive synthesis phase
    • Undergoes purification via crystallization and solvent stripping
    • Blended with dispersants and resins in post-addition
    • Finished additive monitored by UV-Vis and ICP-OES for metal complexing efficiency

    Final product types

    • Corrosion-resistant pigment dispersions
    • Waterborne metal primers
    • Topcoat formulations for harsh environment exposure
    • Bonding layer additives for automotive and marine coatings

    5. Building Block for Performance Synthesis in Flavors and Fragrances

    Within the fine chemicals and aroma sector, 6-Methyl-2-Pyridinemethanol serves as a starting material for synthesizing pyridine-based flavoring and fragrance compounds. Synthesis processes focus on maintaining food-grade compliance while avoiding off-odor byproducts. Reaction chemists apply mild catalytic hydrogenation and selective esterification to convert this compound into key aroma intermediates. Strict upstream batch controls help clients avoid non-compliant carry-over in finished consumable products intended for regulated markets.

    Industry compliance standards

    • FEMA GRAS listings for food and beverage flavorings
    • EU Regulation (EC) No 1334/2008 on flavorings
    • JECFA specifications for food additives
    • IFRA Standards for fragrance ingredients

    Typical usage ratio

    • 0.7–2.1% by weight of total aroma compound synthesis; TPS value depends on batch size and product purity targets

    Downstream process integration

    • Enters as a primary reactant in catalytic esterification units
    • Hydrogenation conducted at controlled pressures in food-grade systems
    • Purified via chromatographic or distillation columns
    • Batch traceability ensured through in-process GC-FID/GC-MS testing

    Final product types

    • Pyridine-structured aroma molecule precursors
    • Flavoring ingredients for savory and tobacco sectors
    • Specialty perfume intermediates
    • Food-grade reaction intermediates for beverage enhancers
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    Certification & Compliance
    More Introduction

    Introducing 6-Methyl-2-Pyridinemethanol: Experience from the Production Line

    Understanding 6-Methyl-2-Pyridinemethanol from the Ground Up

    Every day on the production floor, our team works directly with a host of pyridine derivatives. Among them, 6-Methyl-2-Pyridinemethanol stands out with its clear structure, C7H9NO, and a single methyl group attached to the ring that changes its properties in ways only hands-on experience can show. There’s something almost intuitive about handling this compound—its preparation requires precision, from temperature control during synthesis to the methods used for purification. Watching each batch come off the line, you start to appreciate how subtle changes in process conditions directly influence the quality, color, and performance of the finished product.

    Over time, we notice the importance of monitoring each reaction. Yield consistency sits at the core of efficient production. Each batch’s slight variations give us insight into how even minor adjustments during distillation or solvent selection affect the final form. The methyl group at the sixth position isn't just a structural novelty—it shifts behavior in downstream reactions, which we notice while testing its integration into various processes.

    Model Identification and Specifications Shaped by Practice

    In the plant, we work with a range of 6-Methyl-2-Pyridinemethanol grades. Chemists rely on characteristics that they can measure, control, and witness firsthand: appearance, melting point, boiling range, and moisture content. Our standard technical grade emerges as a colorless to pale yellow liquid, sometimes settling as a low-melting solid under certain storage conditions, signaling purity above 98%. The clarity matters, because discoloration can spell side-reactions in synthesis—nobody trusts a cloudy batch.

    When you handle bulk containers, density and viscosity become factors you can’t ignore. They speak directly to correct mixing, storage, and metering. Our experience tells us inconsistent densities in a lot likely mean somewhere along the process, water crept in or temperature controls slipped. Quality control teams use their labs to confirm what the eye sometimes hints at: spectral purity, minimal water and acetone residue, and negligible byproducts. The GC traces from each lot go beyond paperwork—they shape the trust we have in each container shipped. Only through years of direct handling do these specifications move from numbers on a sheet to meaningful markers of real product quality.

    Real-World Applications: Direct Use Cases

    6-Methyl-2-Pyridinemethanol has applications that show up across industries, each with its own priorities. On the specialty chemical side, formulators incorporate it as an intermediate for building complex molecules. It serves as a building block for active pharmaceutical ingredients and several agrochemical lead structures. Our work with pharmaceutical customers taught us that trace impurities here can spiral into issues downstream, so we maintain strict batch documentation and isolation protocols.

    Performance in end-use applications often comes back to the compound's reactivity. The methyl group alters reactivity profiles, allowing for selectivity in alkylation or oxidation reactions. We've watched R&D teams leverage those differences in pilot runs and, sometimes, scale up directly in collaboration with our process engineers. Modifications in molecule orientation expand synthesis pathways, giving the end-user more options for coupling or derivatizing the structure. These insights only surface when you’re in the room with both the chemists and the operators, adapting processes as clients push for new outcomes.

    Beyond pharmaceuticals and agrochemical synthesis, the compound finds its way into dye chemistry, fragrance development, and laboratory research. Over the years, we’ve also received requests from electronics companies exploring pyridine alcohols as modifiers. Each new field brings a learning curve for handling, storage, and purity demands. Direct feedback loops between our production and technical support teams close gaps fast—we adapt filtration and drying methods as requirements shift, and those tweaks directly improve downstream use.

    Proven Differences from Other Pyridinemethanol Derivatives

    Much of our understanding comes from long days comparing batches—sometimes under a microscope, often by column chromatography, but more often during synthesis optimization. 6-Methyl-2-Pyridinemethanol’s structure clearly separates it from 2-Pyridinemethanol or its higher-methylated cousins. The single methyl add-on at the sixth position isn’t just a trivial difference—it has a measurable impact on physical behavior, reactivity, and application scope.

    In practice, the compound handles better under standard warehouse storage, with a lower tendency for oxidation compared to 2-Pyridinemethanol. We've seen fewer issues with polymerization or color changes, translating into longer shelf-life and more predictable shipping conditions. Chemically, the methyl group directs reactivity differently. In synthesis, 6-Methyl-2-Pyridinemethanol often delivers cleaner reactions with better selectivity for halogenation or esterification, a fact seasoned chemists on our team notice long before QC gets involved.

    Comparing performance head-to-head, customers using analogs often report better solvent compatibility and reaction rates when switching to this particular compound, especially where positional effects drive target molecule formation. Our R&D teams have stacked dozens of head-to-head trials over the years—alkylation yields stand higher and purification is more straightforward with the 6-methyl variant.

    Subtle differences in volatility reduce solvent loss during distillation, minimizing off-gassing and environmental burden in plants fitted with scrubbers. Over time, these incremental process gains add up, trimming direct costs and aligning more clearly with corporate responsibility goals.

    Direct Experience Solving Production and Handling Challenges

    No batch ever leaves our facility unless all data lines up, but reaching that reliability took years of process tuning. Early on, stubborn racemization during synthesis meant some batches failed to meet stereochemical purity targets. Process engineers explored multiple base catalysts and temperature regimes, eventually landing on parameters that delivered consistent optical rotation. Every improvement, no matter how small, reduced scrap and increased batch throughput, delivering value not just to us but directly to our clients.

    Another persistent issue involved water ingress during packaging and shipment. Moisture can catalyze decomposition and drive color changes, especially in high-humidity climates. After multiple shipments faced rejection abroad due to moisture content, production staff partnered with packaging engineers to transition to new drum linings and secondary sealing measures. The learning: invest in robust packaging up front, even if it marginally raises overhead, because returned lots are far more costly in the long run. Since that transition, customer complaints on this front dropped nearly to zero.

    Product stability always remains front of mind. Unchecked, gradual oxidation alters the reference spectrum and hampers downstream usability. Routine checks and nitrogen blanket storage have made oxidation rare, but the best insurance remains strict adherence to batch traceability. Experience showed us early on that rapid feedback from our labs to production supervisors is the only way to catch a runaway batch before it accumulates into shipping-scale losses.

    Supporting Safe Use and Process Sustainability

    Handling 6-Methyl-2-Pyridinemethanol requires both vigilance and routine. Operators wear gloves and goggles as a matter of course, even for brief sampling. Regular safety drills let us respond quickly if spills or leaks occur, but we shaped our training from what we saw go wrong in other plants. Chemical burns or vapor irritation don’t happen often, but the risk never goes away, so our safety managers update protocols in response to even minor incidents. No shortcut replaces deep familiarity with the risks and the discipline to maintain routine housekeeping.

    Waste management forms a real challenge, since used solvents and traces of pyridine derivatives demand proper neutralization and certified external handling. Early efforts at in-house waste treatment didn’t deliver required purity for direct discharge, so we redirected investment into specialized contracted waste partners. Off-site, incineration and controlled decomposition align better with regional requirements. These real-life decisions stem from the hard realities of regulatory audits and the reputational cost of non-compliance.

    On the sustainability front, we’ve introduced closed-loop solvent recovery in the past five years. Recovered methanol and ethyl acetate now find their way back into production, shrinking solvent purchases and reducing environmental footprint. Each innovation carried its share of setbacks, but the cumulative gains became clear—each liter saved matters, both for profit and for compliance with tightening waste laws.

    Direct Feedback Fuels Ongoing Improvements

    What allows us to keep providing dependable 6-Methyl-2-Pyridinemethanol isn’t a formula hidden in a binder—it comes from hundreds of discussions with technicians, researchers, and end users. Downstream users often call with urgent technical questions, especially when process yields slip or side reactions creep up. We keep detailed batch histories to track product performance by lot, which enables us to pinpoint process changes that might have affected final quality. Every complaint turns into an improvement project. Clients report anything from unexpected odor shifts to filtration residue, and each time, these become case studies for the next quality audit.

    End users stressed the value of transparency in sourcing. Traceability isn’t about ticking a regulatory box, but about building a foundation of trust. Our supply partners undergo routine site audits and materials checks, with both our QA and their staff running cross-verifications. This transparency reassures buyers that they’re working with a real manufacturing partner, not a trader masking unknown origin.

    We also schedule annual customer interviews, where we invite select clients to provide structured feedback one-on-one with process engineers, outside sales, and production managers. These sessions turn up actionable insights—improvements in documentation speed, modifications to pallet stacking patterns to alleviate warehouse bottlenecks, even small shifts in labeling that cut down on receiving errors at customer docks. Each lesson, learned from genuine usage, finds its way back into the process.

    Anticipating Regulatory Changes and Industry Demands

    Industry trends never stand still. We’ve watched both pharmaceutical and agrochemical clients face mounting pressure to phase out certain residual solvents and reduce trace contaminants in active synthesis intermediates. Regulatory demands grow stricter each year, with fresh requirements on impurity profiles and trace analysis. We respond by expanding internal QC capacity and investing in more sensitive analytical tools. Our lab runs advanced LC-MS and NMR analysis, beyond what legacy standards required. This vigilance allows us to anticipate market trends and align our product before new standards hit enforcement.

    From experience, waiting for a regulatory mandate before improving means manufacturers risk disruption. Early compliance avoids rushed reformulation or, worse, product holdbacks in customs or at clients’ own internal audits. We take a proactive role, working with client regulatory affairs teams to keep documentation ahead of regulatory cycles. Each compliance upgrade brings added peace of mind and helps maintain market access for everyone relying on our supply.

    The move toward green chemistry and low-impact processes drives steady R&D investment. Our teams test new synthetic routes aiming to cut waste and reduce hazardous reagents. While technical challenges persist—some new catalysts are prohibitively expensive or yield difficult-to-isolate intermediates—these efforts echo client desires for safer, cleaner options. Real-world production means incremental, trialed improvements informed by hands-on failures as much as bench-top successes.

    Building Trust through Consistency and Knowledge

    After years embedded in production, we understand that trust in a chemical supply goes far beyond shipping certificates. Consistency is built batch by batch, and relationship by relationship. If a shipment fails at the client’s plant, we don’t fall back on legalese—we investigate, provide replacement material, and analyze root cause. We keep technical experts on hand who draw from real manufacturing experience, not just textbook answers. This level of service helps us stand apart from traders or passive middlemen.

    Trust gains another layer from our infrastructure. Transparent supply chains, strict inventory management, and readiness to carry safety stocks all contribute to consistent on-time delivery. Every plant shutdown or forced rescheduling traced to late or failed shipments chip away at customer trust. In our view, reliability in delivery stands as a non-negotiable expectation.

    Knowledge transfer matters, too. Our long-standing employees train every new recruit, sharing not only procedures but the cautionary tales behind each step. Mistakes made and lessons learned become part of the plant’s collective memory. Clients feel this unfamiliar sense of accountability from their partners—they know there’s an experienced team ready to back up every delivery with technical, real-world support.

    The Path Forward for Reliable Supply of 6-Methyl-2-Pyridinemethanol

    Every bottle or drum shipped carries months of preparation: raw material vetting, process monitoring, cleaning validation, and compliance checks. Years of accumulated experience, from hands-on operators and process engineers to lab analysts and compliance managers, go into ensuring a steady supply and trustworthy quality. The industry’s shift to more demanding standards, safer processing, and greener manufacture will present new hurdles. We believe our willingness to learn from experience and invest in constant improvement will allow us to maintain the highest standards clients count on.

    For those searching for a manufacturer who understands the subtleties of 6-Methyl-2-Pyridinemethanol—one shaped by real production floor lessons rather than remote transactions—we stand ready with expertise born not from abstract theory, but from daily practice, deep product familiarity, and ongoing adaptation.