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3-Amino-6-Methoxy-2-Picoline HCl

    • Product Name 3-Amino-6-Methoxy-2-Picoline HCl
    • Alias 3-Amino-6-methoxy-2-picoline hydrochloride
    • Einecs 629-199-0
    • 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

    747018

    Product Name 3-Amino-6-Methoxy-2-Picoline HCl
    Molecular Formula C7H11ClN2O
    Molecular Weight 174.63 g/mol
    Appearance Off-white to light tan solid
    Purity Typically ≥98%
    Melting Point Around 210-214°C (decomposes)
    Solubility Soluble in water, DMSO
    Chemical Structure Methoxy and amino-substituted methylpyridine hydrochloride
    Storage Conditions Keep tightly sealed, store at 2-8°C, protect from light
    Synonyms 3-Amino-6-methoxy-2-picoline hydrochloride
    Smiles COC1=CC(N)=NC(C)=C1.Cl

    As an accredited 3-Amino-6-Methoxy-2-Picoline HCl factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging contains 25 grams of 3-Amino-6-Methoxy-2-Picoline HCl in a sealed amber glass bottle with a secure cap.
    Shipping The chemical **3-Amino-6-Methoxy-2-Picoline HCl** is securely packaged in sealed containers to prevent moisture and contamination. It is shipped in compliance with safety regulations, labeled appropriately, and protected from extreme temperatures. Documentation, such as Safety Data Sheets, accompanies the shipment to ensure safe handling during transit and upon delivery.
    Storage 3-Amino-6-Methoxy-2-Picoline HCl should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, well-ventilated area, ideally at room temperature (15–25°C). Ensure the storage area is free from incompatible materials such as strong oxidizers. Clearly label the container and restrict access to trained personnel only for safe handling.
    Application of 3-Amino-6-Methoxy-2-Picoline HCl

    Applications of 3-Amino-6-Methoxy-2-Picoline HCl in Industrial Manufacturing

    Our production of 3-Amino-6-Methoxy-2-Picoline HCl supplies leading manufacturers across multiple advanced chemical domains. The following sections detail key industrial application scenarios where this intermediate plays a critical role, from pharmaceutical synthesis to agrochemical active ingredient manufacturing. Application guidelines, compliance references, and specific processing details are based on ongoing industrial practice and direct user feedback within the relevant sectors.

    1. Active Pharmaceutical Ingredient (API) Intermediate for Antihypertensive Drug Synthesis

    This material functions as an essential building block in the synthesis of select antihypertensive APIs, notably those in the imidazoline and quinoline derivative drug classes. Manufacturers depend on its high purity and controlled moisture content to achieve consistent reaction yields during the key cyclization and condensation steps within the API route.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP, ICH Q7 guidelines)
    • United States Pharmacopeia-National Formulary (USP-NF)
    • European Pharmacopoeia (Ph. Eur.) requirements for intermediates
    • ICH Q3A/B for related substance and impurity control

    Typical usage ratio

    • 20–30% molar ratio relative to target API precursor; exact stoichiometry adjusts based on batch yield optimization and impurity profile control

    Downstream process integration

    • Direct introduction during heterocyclic ring formation via amination and methoxylation steps in API multi-step synthesis
    • Inline recrystallization and purification prior to downstream condensation reactions

    Final product types

    • Tablet and capsule antihypertensive finished formulations using related quinoline and imidazoline APIs
    • Bulk pharmaceutical intermediates supplied for contract manufacturing and custom synthesis

    2. Precursor in Agrochemical Herbicide Manufacturing

    Downstream agrochemical manufacturers utilize this chemical in the synthesis of advanced pyridine-based herbicides. Its unique substitution pattern enables precise molecular modifications needed for potent activity against resistant weed species. The compound’s purity profile helps limit process by-products, which is crucial for regulatory compliance in crop protection products.

    Industry compliance standards

    • Food and Agriculture Organization (FAO) pesticide formulation specifications
    • ISO 9001:2015 for process traceability
    • REACH (EC 1907/2006) substance registration for European market
    • China GB/T 22266—National Standard for Pesticide Technical Requirements

    Typical usage ratio

    • 15–22% w/w input based on active ingredient molecular structure and overall synthetic yield requirements; adjusted per batch size and targeted impurity thresholds

    Downstream process integration

    • Precursor feeding during chlorination/amination pathway for aromatic ring functionalization
    • Continuous-flow or batchwise integration before formulation into technical concentrate grades

    Final product types

    • Pyridine-derived herbicidal active substances
    • Emulsifiable concentrate (EC) and water dispersible granule (WDG) crop protection products

    3. Intermediate for Dye and Pigment Synthesis

    Specialty dye makers employ this molecule for constructing advanced heterocyclic dyes, particularly those used for high-performance textile and polymer applications. Its controlled introduction into the azo-coupling and ring-extension steps delivers colorants with improved fastness and shade intensity, critical for automotive and industrial coating systems.

    Industry compliance standards

    • OEKO-TEX® Standard 100 on textile chemical safety
    • EN 71-3 Safety of Toys (migration of certain elements, for pigment use)
    • ISO 14001:2015 for environmental management in colorant manufacture
    • RoHS Directive 2011/65/EU for pigment applications in electronics

    Typical usage ratio

    • 8–14% based on target chromophore structure; batch engineers adjust input to achieve exact shade depth and solubility in particular application end-uses

    Downstream process integration

    • Catalyzed introduction during azo, methoxy, or amino coupling reaction chains
    • Process monitoring for precise color formation and impurity minimization

    Final product types

    • Textile disperse and reactive dyes
    • Pigments for high-performance plastics, automotive finishes, and specialty coatings

    4. Building Block in Advanced Liquid Crystal Monomer Synthesis

    Producers of liquid crystal compounds for display technologies depend on this molecule as a specific precursor in synthesizing methoxy- and amino-substituted aromatic monomers. Its consistent batch quality enables tight control over final product optical properties, critical for thin-film transistor (TFT) and in-plane switching (IPS) display chemistries.

    Industry compliance standards

    • ISO 9001:2015 for quality management system in electronic material production
    • IPC-4101C for electronic substrate compatibility
    • JIS C 5016 for liquid crystal material purity and stability
    • Restriction of Hazardous Substances Directive (RoHS, 2011/65/EU)

    Typical usage ratio

    • 10–16% by weight in specialty monomer formulation; LC material formulators determine addition based on target birefringence and response time specification

    Downstream process integration

    • Feedstock into Friedel–Crafts alkylation and methoxylation reactions for mesogen core assembly
    • Inline purification and performance screening prior to final monomer blending

    Final product types

    • Specialty liquid crystal monomers for TFT and IPS displays
    • Pre-blend liquid crystal mixtures for large-area display manufacturing
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    Certification & Compliance
    More Introduction

    Introducing 3-Amino-6-Methoxy-2-Picoline HCl: Insights from the Manufacturer

    Understanding the Importance of 3-Amino-6-Methoxy-2-Picoline HCl

    Daily life rarely shines a spotlight on the building blocks of specialty chemicals, even though they quietly fuel countless innovations. 3-Amino-6-Methoxy-2-Picoline HCl plays that type of role, linking upstream raw materials with the active intermediates used in medicines, new materials, and agricultural advancements. Our team manufactures this product from the ground up, starting with picoline derivatives sourced from accountable, traceable supply chains.

    In our facility, 3-Amino-6-Methoxy-2-Picoline hydrochloride goes through multi-step synthesis followed by purification steps honed through repeat batches and customer feedback. The work carries the fingerprints of decades in pyridine and picoline chemistry, building on hands-on expertise with real-world batches. Over time, we’ve narrowed variables in temperature, solvent system selection, and impurity management that can make or break a commercial run, not only for yield but for actual usability once in the customer’s process.

    Product Model and Specifications: In Practice

    We produce 3-Amino-6-Methoxy-2-Picoline HCl as a defined grade, targeting the high-purity demands set by companies in pharmaceutical synthesis, electronics, and agrochemical development. Each lot undergoes checks using HPLC, NMR, and physical property evaluations. A typical batch shows purity levels comfortably over 99%, and consistent melting points in line with reference standards. Moisture control demands close attention; the hydrochloride salt form resists ambient moisture pickup better than the free base, which ultimately helps users avoid unwanted hydrates when storing or compounding the product.

    Physical appearance actually gets more attention than many might expect. A fine, pale off-white or faintly yellowish crystalline powder gives chemists confidence that the batch meets the necessary standards and has not suffered unexpected decomposition or contamination in transit. From regular audits, we have seen how color shifts or caking can signal handling issues along the supply chain, so we adjust filtration, packing, and anti-static handling protocols to keep lots in spec through every stage.

    Particle size distribution comes up frequently during technical consultations. Some customers require micronized grade for suspension compounding, while others find optimal results with standard sizing that resists dust generation. Facility flexibility lets us prepare both, as separating requests for multiple industries remains a core part of our job rather than an afterthought.

    Applications in Fine Chemicals and Consequences Downstream

    Demand for 3-Amino-6-Methoxy-2-Picoline HCl did not arise by chance. The molecule’s backbone fits into medicinal and crop science routes because it introduces precise electronic effects into heterocyclic systems. Chemists want the methoxy and amino groups in specific locations for creating kinase inhibitors, antibacterial agents, or newer antifungals. The hydrochloride salt ensures the material dissolves more reliably in polar solvents, a characteristic that laboratory and pilot plant feedback confirmed as essential for scaled reactions.

    Comparing results across project partners and users, we have seen the pitfalls that a “commodity” mindset in raw material selection can create. Small differences in residual solvents or trace contaminants can carry through to quality issues in high-value final products. We trace our batch quality through every shipment, running impurity profiling routines that identify the presence of potential nitrosamines or heavy metals down to levels set by regulatory bodies such as the European Pharmacopoeia and USP. Each new industry regulation or regulatory update prompts an internal review, rather than last-minute surprises.

    Feedback from one pharmaceutical R&D client led us to modify washing and drying procedures that reduced chloride residue in the final salt. Another agrochemical company flagged crystallinity variation after long shipping routes through areas with high humidity. These examples shape our plant practices, and show how close manufacturer collaboration with users creates real value—beyond the lab and into the field.

    Differences from Other Picoline Derivatives and Advantages

    Technical buyers often ask about substitutions or structurally related options. Unlike the basic 2-picoline or even other methoxy-picoline salts, 3-Amino-6-Methoxy-2-Picoline HCl stands out for synthetic versatility. The position-specific amino and methoxy groups set up reactions for selective C–N coupling, directed ortho-metalation, or functional group elaboration, which explains its retention in diverse lead-optimization funnels for pharmaceuticals.

    Salt selection deserves attention when comparing to non-HCl analogs. The hydrochloride form remains chemically stable under ambient transport, avoiding the oxidative breakdown or solvent sensitivity some users experience with the base. Chemical stability tests over several annual temperature cycles have confirmed this. These details only become apparent when the batch reaches a kilo-lab or pilot plant, but they shape not only cost of ownership but safety and compliance for customers as well.

    Trying to cut corners with substitutions often leads to higher rework or purification steps for customers. On our side, we have trialed alternative counter-ions and handled requests for the free base form, but always advise that bulk users weigh ease of use and long-term storage before changing salt forms. We also flag batch-to-batch reproducibility, as product consistency reduces the risk of investigation cycles needed for final dosage or active ingredient approval.

    Manufacturing Insights: From Raw Material to Final Packing

    Few things teach patience and organization quite like multi-step batch synthesis. Our process starts with lab-scale parallel runs using different precursor lots, cross-checking for color and impurity carryover before moving up in size. Incoming raw materials receive full tracking, avoiding suppliers who cannot produce up-to-date analytical data on trace metals, solvent residues, or origin info. Each change in upstream supply or lab outcome leads us to recalibrate, even at the cost of short-term yield, to ensure reliability downline.

    Reactions for installing the methoxy group present specific control challenges. Lowering reaction temperature by even a few degrees runs the risk of incomplete substitution, which generates byproducts that drag down purity in ways hard to separate. On the amino group introduction, side reactions with trace water or acid residues call for moisture-scrubbed solvents and pressure-sensitive handling.

    After synthesis, we monitor crystal formation and drying under vacuum, timing each stage based on spectroscopic monitoring. Experience over years of batches has built our internal database of what “good” looks like, down to unexpected color hues that can pinpoint incomplete washing. Packing also reflects real-world feedback, with multi-layer liner bags paired with rigid containers for larger lots, and tamper-evident seals for research and pilot users.

    Direct supply from the manufacturing facility limits risks common in hand-off chains. Uncontrolled warehouse climates, excess handling, or repackaging by third parties can increase the risk of cross-contamination. Our customers see the benefits through longer shelf lives, lower rejection rates, and better handling in high-sensitivity applications.

    Quality and Traceability: Meeting Real-World Expectations

    Laboratory managers, purchasing departments, and process development chemists all face real-world pressure to keep projects compliant and timelines tight. Direct line-of-sight to the manufacturing source—paired with batch-level reports and sample retention—remains the most reliable insurance against project delays.

    Our testing protocols align with industry standards, but we keep flexibility on documentation formats and analysis methods, adapting to customer requests for region-specific compliance. Certificates of Analysis are more than paperwork; they reflect real test data, with batch sampling frequency increased for lots running into high-value synthesis or regulatory filings. Whenever a customer flags a change or unexpected observation in their process, our team tracks the root cause through to raw materials or solvent tanks.

    We also back up our lots with retained sample libraries, running periodic checks even after shipment in case customers need reference or troubleshooting. Internal recalls run on a schedule tied to changes in batch process, not just calendar markers. This approach has prevented supply interruptions and uplifted long-term customer trust.

    Supporting Customers Beyond the Lab

    From discovery chemistry to full-scale manufacturing, 3-Amino-6-Methoxy-2-Picoline HCl finds use across a spectrum of technical environments. Each industry, even each team, approaches the compound differently. We often get direct calls from process chemists on whether a specific impurity profile could affect selectivity in a route, or requests from analytical departments seeking to benchmark our NMR trace against their internal standards.

    Recent years have shown a dramatic shift toward transparency and responsible sourcing. Customers weigh environmental and ethical criteria in sourcing choices. We have invested in greener processing solvents, downgraded energy inputs through heat recovery and batch scheduling, and improved waste management. Regulatory compliance, including REACH and or other region-specific standards, receives continuous review rather than one-off certification.

    Shipping requires planning well in advance, particularly for dangerous goods or climate-sensitive orders. Each country or port has its own paperwork and requirements, which has taught us to anticipate problems before they delay delivery. Overpacking, under-packing, or omitting critical paperwork can create backlogs that customers then absorb as higher landed costs. Dedicated documentation staff and in-house customs experience help customers get material on time without last-minute surprises.

    Addressing Common Sourcing and Handling Challenges

    Many procurement teams underestimate the detail required to keep a chemical like 3-Amino-6-Methoxy-2-Picoline HCl in continuous supply. Unplanned outages in upstream chemical availability can ripple downstream for months. Regular communication with key customers lets us forecast needs long before stockouts threaten production. Direct supply agreements, annual forecasts, and buffer stock arrangements now make up part of normal business, not just emergency planning.

    Handling at customer sites often prompts questions about optimal storage or blending with other actives. The hydrochloride salt stores securely in intact packaging at ambient conditions, but we still recommend close monitoring in high-humidity climates. Handling in open bins should occur promptly, to prevent caking or trace hydration, which can affect batch weighing precision.

    Discussions with user labs have revealed common slip-ups, like reliance on outdated in-house reference standards from prior batches, or mistakes during weighing in uncontrolled atmospheres. We provide up-to-date comparison samples and walkthroughs on best handling practices to help avoid downstream troubleshooting or rework. While downstream users ultimately set their own handling SOPs, regular feedback shapes our future packing and documentation updates.

    Regulatory Changes and Risk Management Experience

    The landscape for specialty chemical compliance is always shifting. Increased focus on nitrosamines or heavy metal contaminants, for example, led us to revise control points in our synthesis lines and adjust purification sequences. We evaluate each new regulation with in-plant trials, analytical run-throughs, and customer pilots before shifting standard production, to ensure compliance without sacrificing useful yield.

    Keeping up with regulatory shifts takes more than updated documentation. Internal staff training, process review, and deep dives into raw material traceability all tie into long-term supply stability. We make a point to communicate new compliance thresholds, analysis changes, or supply disruptions directly to customers, so that downstream planning keeps pace with regulatory or operational developments.

    New risk assessment routines and digital tracking have reduced instances of discrepancies or batch recalls. Traceable barcoding, electronic batch logging, and side-by-side paper records all allow speedy response to user questions or audits. The market’s overall demand for documented accountability is rising, and our investment in both infrastructure and staff training reflects this new standard.

    Looking Forward: Anticipating Technical and Market Needs

    Scientific and manufacturing advances never stand still. In response to new customer initiatives, we have worked on developing cleaner synthesis versions using non-halogenated solvents and protocols for even higher purity grades. As new applications emerge for 3-Amino-6-Methoxy-2-Picoline HCl, whether from advances in targeted therapy or from agrochemical resistance challenges, we expect further demand for custom grade, impurity reduction, and traceable supply chains.

    The drive for sustainability is not a finish line, but an ongoing process. We continuously seek feedback on our environmental footprint, seeking new ways to upgrade facilities, solvent recovery, and waste minimization, especially as customers roll out audits tied to environmental, social, and governance reporting.

    Partnerships across the value chain—stretching from chemical engineers and logistics teams to downstream R&D and regulatory departments—have proven vital in fine-tuning all aspects of the supply and technical support for 3-Amino-6-Methoxy-2-Picoline HCl. Over the years, we have learned as much from our users as we have from our own data, ensuring that every batch reflects not only a chemical product, but the collective experience and trust of countless hands along the chain.

    Conclusion: Building Direct Value Through Responsible Manufacturing

    Every kilogram of 3-Amino-6-Methoxy-2-Picoline HCl represents more than just a lot number or a lab report. It reflects the choices, experience, and diligence of producing this compound from start to finish—attuned to the needs of industries relying on unbroken supply, tight compliance, and technical guidance.

    The differences between direct manufacturing and reselling remain clear in the details: batch reproducibility, impurity control, packaging fit for purpose, and fast, knowledgeable support on technical challenges. Our evolution as a chemical manufacturer draws upon real-world trials, market shifts, and the feedback of the scientists and operators who use our materials daily. As a result, the journey from raw material to shipped product stays grounded, transparent, and attuned to both today’s needs and tomorrow’s demands.