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2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine

    • Product Name 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine
    • Alias 2-(Chloromethyl)-4-methoxy-3,5-dimethylpyridine
    • Einecs 607-222-3
    • 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

    172612

    Productname 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine
    Casnumber NA
    Molecularformula C9H12ClNO
    Molecularweight 185.65 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥ 98%
    Density Approximately 1.13 g/cm³
    Solubility Soluble in organic solvents; sparingly soluble in water
    Storagetemperature Store at 2-8°C
    Smiles CC1=CN=C(C(=C1OC)C)CCl
    Inchi InChI=1S/C9H12ClNO/c1-6-4-8(3-10)11-7(2)5-9(6)12-9/h4-5H,3H2,1-2H3

    As an accredited 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 25 grams, sealed with a PTFE-lined cap, labeled with chemical name, hazard pictograms, lot number, and supplier details.
    Shipping 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine should be shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. Transport must comply with local regulations for hazardous chemicals, utilizing appropriate hazard labeling and documentation. Ensure the use of secondary containment and temperature control if required. Handle only by trained personnel with proper PPE.
    Storage Store 2-(Chloromethyl)-3,5-dimethyl-4-methoxypyridine in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and sources of ignition. Keep separate from strong oxidizing agents and acids. Use secondary containment to prevent accidental releases. Clearly label the storage area and restrict access to trained personnel. Handle under fume hood if possible.
    Application of 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine

    Applications of 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine in Industrial Manufacturing

    2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine serves as a valuable pyridine-based intermediate across several advanced chemical synthesis chains. Its unique substitution profile and reactivity support large-scale downstream production in fine chemicals, pharmaceuticals, agrochemicals, and specialty material sectors. Below, we provide an in-depth overview of significant real-world applications, highlighting regulatory, technical, and process-specific details relevant to industrial customers.

    1. Pharmaceutical Intermediate for Second-Generation Antihistamines

    As a core building block in the synthesis of designated piperidine-based H1-antagonists, this compound allows manufacturers to achieve stable nucleophilic substitution and high selectivity in subsequent cyclization steps. It mainly supports the multi-step synthesis of non-sedating antihistamines, where strict impurity control and GMP traceability remain critical.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • European Pharmacopoeia (Ph. Eur.) chapter 5.10 guidelines for residual solvents
    • US FDA 21 CFR Part 211 (cGMP for Finished Pharmaceuticals)
    • Chinese Pharmacopoeia (ChP) for APIs and key intermediates

    Typical usage ratio

    • Usage typically ranges from 0.8 to 1.1 molar equivalents against the primary amine nucleophile, adjustable based on conversion rate and impurity profile optimization.

    Downstream process integration

    • Introduced in batch or continuous flow reactors at the initial quaternization or alkylation stage preceding closed-ring formation, followed by downstream purification and crystallization.

    Final product types

    • Desloratadine API
    • Loratadine API (second-generation antihistamines)
    • Pharmaceutical-grade intermediates for generic and branded formulations

    2. Agrochemical Synthesis: Herbicide and Fungicide Building Block

    Manufacturers involved in crop protection chemical synthesis utilize this intermediate for crafting novel pyridine-based active compounds that offer improved soil stability and target selectivity. The molecule’s structure facilitates downstream formation of heterocyclic moieties central to certain selective herbicides and fungicides, necessitating high batch consistency and environmental compliance.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • REACH Regulation (EC) No 1907/2006 for registration and safe handling
    • ISO 9001:2015 for quality control management in agrochemical manufacturing
    • GLP (Good Laboratory Practice) guidelines for test substance manufacturing

    Typical usage ratio

    • Commonly incorporated at 5–15% w/w in pre-reaction blends; precise levels determined by downstream functionalization route and actives’ yield optimization.

    Downstream process integration

    • Added during base-catalyzed coupling as a pyridine ring donor, participating in subsequent halogenation and sidechain modifications.

    Final product types

    • Pyridine-derived herbicide technical concentrate
    • Fungicide intermediates for broad-spectrum formulations
    • Specialty pesticides with controlled environmental persistence

    3. Fine Chemicals: Heterocyclic Compound Manufacturing

    Producers of advanced fine chemicals adopt this raw material during multistep syntheses aiming at high-value heterocyclic scaffolds. Its reactivity under controlled conditions enables preparation of custom molecular fragments for use in chemical research and specialty dyes, where precise stoichiometry and low impurity counts determine product consistency and downstream compatibility.

    Industry compliance standards

    • ISO 9001:2015 for process documentation and batch traceability
    • Responsible Care® Management System for environment, health, and safety
    • Internal QC protocols following ACS grade benchmarks
    • GHS (Globally Harmonized System) safety data requirements

    Typical usage ratio

    • Used at 3–8% molar ratio in intermediate synthesis depending on targeted molecular backbone and subsequent functional group transformations.

    Downstream process integration

    • Feeds into nucleophilic substitution stages or serves as a condensation precursor in sealed-system reactors with continuous solvent recovery.

    Final product types

    • Specialty colorants and dyes
    • Key reference intermediates for fine chemical libraries
    • Analytical reference standards for research

    4. Veterinary Drug Intermediate Production

    Veterinary pharmaceutical manufacturers integrate this compound into synthesis pipelines for specific antiparasitic agents, supplying stable and well-defined intermediates for further derivatization. Its use requires compliance with veterinary-specific GMP standards and tight control over residual solvents to ensure animal safety and regulatory acceptance across international markets.

    Industry compliance standards

    • VICH GL24: Good Manufacturing Practice (GMP) for veterinary products
    • EU Regulation (EC) No 1831/2003 for veterinary medicinal additives
    • US FDA CVM guidelines for animal drug manufacturing
    • ISO 22716:2007 for quality management in veterinary supplies

    Typical usage ratio

    • Blended at 1.0–1.2 molar equivalents relative to partner reactants, with minor adjustments during process validation to achieve veterinary-grade purity.

    Downstream process integration

    • Initiates the alkylation sequence in precursors to macrocyclic lactone or anthelmintic compounds, followed by multi-stage extraction and solvent stripping for residue minimization.

    Final product types

    • Veterinary anthelmintic intermediate compounds
    • Pre-mix intermediates for injectable parasite treatments
    • API precursors for oral and topical veterinary formulations

    5. Custom Chemical Synthesis for Contract Manufacturing Organizations (CMOs)

    Contract manufacturers serving life science, electronics, and performance material clients often specify this pyridine derivative in project-driven synthesis routes for compounds under development or scale-up. Because project parameters vary, production adheres to client-specific quality agreements and supports documentation for technology transfer and regulatory filings.

    Industry compliance standards

    • Project-based cGMP or ISO 13485 for life science intermediates
    • Quality Agreements per FDA and EMA requirements for outsourcing
    • Supply chain traceability compliant with ISO 22301
    • Restricted substances monitoring under RoHS, REACH

    Typical usage ratio

    • Batch incorporation typically falls between 2–12% weight of total reactants, with application-specific adjustments defined by the process route and product specifications from R&D.

    Downstream process integration

    • Charged as an intermediate at defined synthetic stage—often during heterocycle assembly or as an alkylation unit in pre-commercial pilot campaigns.

    Final product types

    • Custom heterocyclic building blocks for pharmaceutical and electronic research
    • Reference standards and process validation samples
    • Advanced intermediates for further client-side elaboration
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    Certification & Compliance
    More Introduction

    2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine: A Practical Workhorse for Advanced Synthesis

    Developed with Precision in Mind

    In today’s chemical manufacturing landscape, every step of production hinges on the reliability of intermediates. Over years of refining our processes, 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine has become a staple in our line-up, driven by demand from pharmaceutical research, agrochemical synthesis, and specialty material innovation. Our focus has always been the chemistry itself—how a molecule interacts in the lab, under heat, over time—and this compound stands out on those counts.

    Getting to Know This Pyridine Derivative

    2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine carries the molecular formula C9H12ClNO, with a structure that reflects careful balance between reactivity and stability. The presence of both electron-donating methyl and methoxy groups alongside the chloromethyl handle doesn’t just set it apart on a page; it changes its behavior in real-world chemistry. Our technicians focus on maintaining consistency during synthesis, tracking purity through each batch using well-established analytical methods. That translates into confidence for chemists who depend on reproducible results.

    Why This Compound Earns a Place on the Shelf

    In synthetic routes where selectivity is crucial, this pyridine core with its unique substitution offers distinct advantages over simpler analogues. Adding the methoxy group at the 4-position changes electron density across the ring, influencing both reaction rates and the stability of intermediates. Introducing a chloromethyl group at the 2-position transforms it into a versatile electrophile, opening efficient paths to form C-N, C-S, or C-O bonds. This combination rarely appears in less specialized reagents, making it an asset for those pushing boundaries in heterocyclic chemistry.

    The Role of Rigorous Standards in Manufacturing

    Our experience has taught us that process reliability starts long before a bottle reaches the shipping dock. Every batch of 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine undergoes multiple purification steps. We use gas chromatography and nuclear magnetic resonance to verify each lot, and our in-house QC team compares spectral data against trusted references. These steps are not just routine; they answer the real-world need for dependable materials when a single impurity could throw off a weeks-long project. Unpredictable intermediates cause project delays, and such setbacks are expensive, both for researchers and for plant schedules.

    From Synthesis to Scale-Up—Lessons Along the Way

    We’ve seen this product move from small-scale trials to full production lines, with challenges at every point. At pilot scale, subtle temperature fluctuations can alter the product’s profile, so our chemists and engineers devote extra attention to heat transfer and mixing rates. On larger runs, moisture control becomes critical, so every vessel is prepared and sealed according to strict protocols. Our operators understand first-hand how a missed step might compromise a whole batch. These day-to-day lessons anchor our expertise and let us offer more than just theoretical guidance to our customers.

    Practical Differences: Not Just Another Pyridine

    On paper, many pyridine derivatives look similar, but practical chemistry tells a deeper story. Replacing the methoxy or methyl groups dramatically shifts reactivity, often in ways textbooks understate. Chemists working in drug discovery or designing enzyme inhibitors have reported higher yields and cleaner profiles when compared with other chloromethyl pyridines. Our support team fields questions about impurity profiles after unusual reactions, drawing from decades of hands-on troubleshooting to offer concrete advice. Sometimes, changing the position of one substituent cuts days off a purification step, and these incremental improvements mean a lot at scale.

    Supporting Formulation and Downstream Processing

    2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine isn’t just about initial chemistry—it matters in downstream work too. Customers have pointed out fewer issues with crystallization and solvent compatibility compared to earlier-generation reagents. We keep close records on storage and shelf life, monitoring stability under a range of temperatures and humidity levels common in actual plant environments. These insights translate into more predictable stock management for both us and our clients, especially during rushed project timelines or unpredictable supply chain swings.

    Supporting Responsible Use and Safety Practices

    Experience teaches respect for the balance between reactivity and safety. This compound requires thoughtful handling due to its electrophilic chloromethyl group. Our lab supervisors conduct regular training on glove and eye protection, emphasizing practical hazards over theoretical ones. We maintain clear material documentation, not because regulators require it, but because the right information, relayed early, prevents expensive mistakes or injuries. Feedback from client safety teams helps us improve every year, so our data sheets evolve with the real-life needs of those at the bench. Maintaining transparency on storage, transport, and accidental releases has built mutual trust and kept incident rates low.

    Scaling Production—Meeting Real-World Demand

    Ongoing improvements to our reactor systems allow us to respond to bulk requests without sacrificing quality. Each order gets tracked against historical performance, letting our operations team identify potential snags before they escalate. Customer timelines push us to improve cycle times, while internal metrics follow every anomaly to its root cause. When weather disruptions or raw material shortages crop up, our planners work alongside logistics, production, and purchasing to keep shelves stocked. Open lines of communication across departments mean that when change happens, every team adapts in step.

    Supply Chain Integrity and Transparency

    After years of market volatility, smooth supply is no longer just an expectation; it’s a competitive advantage. Our raw materials come from vetted partners, with each shipment tested on arrival. Maintaining traceability through every stage helps us quickly address any discrepancies. We welcome periodic audits, valuing outside perspectives that highlight blind spots we might miss. With global logistics facing new pressures, we publish monthly updates on lead times and stock status, allowing customers to plan against disruptions. Clear dialogue between manufacturer and client eases much of the stress that large-scale chemistry brings.

    Responsive Technical Support Backed by Decades of Experience

    Users of 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine draw from fields as varied as chemical biology, organic synthesis, and pesticide development. Our support is grounded in the firsthand knowledge of bench chemists who have worked through reaction bottlenecks, handled scale-ups, and tackled unexpected results. Customers describe issues ranging from solubility in nonpolar solvents to minor color changes during storage. Each case provides a chance to improve—not just for one client, but for the broader user base. We catalog these experiences and share what works in regular knowledge briefs. This keeps the learning curve predictable, whether a lab is running a few grams for library construction or launching a multi-ton campaign.

    Environmental Stewardship Rooted in Daily Practice

    Operating a modern chemical facility puts environmental management front and center. We’ve invested in advanced gas scrubbing equipment, solvent recycling, and energy monitoring systems. Real-time data from these tools lets us tune parameters for minimal waste and recovery. Choosing the right synthesis routes means less hazardous byproduct and simpler downstream processing. Site audits and emissions testing go beyond compliance—they shape how we engineer every step, from raw material prep through final packaging. Responsibility doesn’t stop after shipping; our technical documentation covers safe disposal and non-traditional applications, reflecting the questions we field from partners, not just from auditors.

    Comparing to Other Intermediates: Practical Choice, Real Outcomes

    Every new molecule gets compared with a bench of established intermediates before it earns a place in a synthetic scheme. Our regular trials with related chloromethyl pyridine compounds show measurable time savings and greater reproducibility with this specific methoxy-methyl arrangement. Slightly different ring substitutions result in color changes, lower melting points, or even unexpected reaction byproducts. Many in the field still rely on legacy compounds, but the shift to this material has shortened workflows and improved end-product consistency. For us, customer testimonials and repeated orders drive home these benefits far more than any brochure figures. In an industry where measurable impact matters, these decisions shape budgets and project outcomes alike.

    Learning from Challenges—Continuous Feedback Loops

    Every issue that surfaces, from screening impurities to discovering new reaction modes, feeds into a loop of improvement. Our plant tracks every incident, holding in-depth reviews with the full team. A recent example saw minor product discoloration traced back to a single valve seal. The lesson: even minor maintenance items tell a bigger story about quality. This culture of vigilance means that solutions are never one-size-fits-all. Instead, support draws from what’s actually worked, both in in-house experiments and in downstream customer processes. Open feedback, both positive and negative, shapes both our operations and what customers can expect on future orders.

    Clear Communication Across Borders

    As markets have expanded, language and regulatory expectations have diversified. Our export coordinators stay current on shifting documentation rules for labeling, freight, and safety. Offering certifications and translations streamlines customs processes and reduces friction for overseas partners. We’ve learned that a lag in paperwork can stop a shipment more effectively than any transportation delay, so every member of our team knows how their role affects the bigger operational flow. The aim is simple: useful materials delivered with no surprises.

    Contributions to Research and Product Development

    In labs and pilot plants, 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine serves as more than just a component—it becomes part of the story of each new molecule discovered. Collaboration with academic groups and R&D-based companies gives us a look into emerging trends, letting us anticipate new requirements before they reach the mainstream. We’ve watched this compound support advancements in medicinal chemistry, such as coupling studies and scaffold modifications, where reliable batch-to-batch consistency means a failed experiment can be attributed to the science, not the supply. In new applications, from material science coatings to novel pesticide syntheses, chemists look for reagents that perform under real stress—not just simulated ones in marketing labs.

    Value in Every Container

    What we ship is more than a chemical—it’s the product of coordinated effort through sourcing, synthesis, testing, and support. Each drum or bottle reflects many rounds of troubleshooting, long nights spent debugging processes, and constant cross-team communication. Clients continue with us year after year because what they order works on delivery day, after weeks in transit, or after winter in a warehouse. We approach improvements holistically, combining plant engineering, warehousing, and customer feedback, so that every stakeholder plays a role in reliability.

    Ushering in New Possibilities Without Losing Practical Focus

    The chemical industry thrives on innovation, but experience keeps even the most advanced facility grounded. 2-(Chloromethyl)-3,5-Dimethyl-4-Methoxypyridine stands as a testament to focused, incremental progress—where tighter impurity specs, smarter packaging, and updated safety data build trust one reaction at a time. As regulatory climates become more demanding and downstream applications grow more sophisticated, the value of robust, well-documented intermediates only rises. By investing in both technical depth and responsive customer support, we remain positioned to meet both new and established demands, always learning from practical challenges and the achievements of those who trust us in their workflows.