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2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine

    • Product Name 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine
    • Alias 2-Amino-4-methoxy-6-methyl-s-triazine
    • Einecs 242-646-8
    • 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

    631328

    Chemicalname 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine
    Molecularformula C5H8N4O
    Molecularweight 140.14 g/mol
    Casnumber 2213-70-3
    Appearance White to off-white solid
    Meltingpoint 118-121°C
    Solubility Soluble in water and organic solvents
    Smiles COC1=NC(=NC(=N1)N)C
    Inchi InChI=1S/C5H8N4O/c1-3-7-4(9-2)8-5(6)10-3/h1-2H3,(H2,6,8)
    Synonyms 4-Methoxy-6-methyl-1,3,5-triazin-2-amine
    Storageconditions Store in a cool, dry place, tightly closed

    As an accredited 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White, sealed 100g HDPE bottle with tamper-evident cap, labeled with chemical name, formula, CAS number, hazard symbols, and handling instructions.
    Shipping 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine is shipped in tightly sealed containers, protected from moisture and incompatible substances. It should be transported according to standard chemical safety protocols, with labeling compliant with relevant regulations. Ensure containers remain upright during transit and store in a cool, dry, and well-ventilated area upon arrival.
    Storage 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition, moisture, and incompatible materials such as strong oxidizing agents. Keep the chemical out of direct sunlight and ensure it is clearly labeled. Handle using appropriate personal protective equipment and follow all relevant safety guidelines.
    Application of 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine

    Applications of 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine in Industrial Manufacturing

    2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine serves as a functional intermediate widely applied in several specialized downstream sectors. By leveraging its unique triazine core and tailored substituents, manufacturers benefit from targeted performance attributes across selected advanced material and specialty chemical workflows. Below, we detail key industrial routes where this raw material delivers proven value, technical compatibility, and qualification with demanding industry rules and standards.

    1. Photostabilizer Intermediate for UV-Absorbing Polymer Additives

    Major polymer compounders employ this triazine derivative as an intermediate in the synthesis of high-performance photostabilizing additives. Its electron-rich structure enhances UV absorption efficiency in end-use plastic matrices. Manufacturers add the material during the condensation stage for the preparation of triazine-based UV filters, which are later compounded into polyolefins and engineering resins intended for prolonged outdoor exposure.

    Industry compliance standards

    • REACH Annex XVII (EU)
    • RoHS Directive 2011/65/EU
    • UL Yellow Card Plastics Recognition Program
    • FDA 21 CFR 177.1520 (for plastics with food contact)

    Typical usage ratio

    • Intermediate synthesis: 0.8–1.2 molar equivalents per target triazine UV absorber structure, adjusted based on end-use performance targets and resin compatibility.

    Downstream process integration

    • The triazine derivative is introduced during the condensation/polycondensation step when manufacturing the UV-absorbing chromophore, before compounding with resin in masterbatch lines.

    Final product types

    • Polyolefin sheets and films for agricultural covers
    • Automotive exterior plastics
    • Architectural polymer panels
    • Outdoor playground equipment

    2. Herbicide Intermediate for Triazine Crop Protection Agents

    Agrochemical producers use this compound as a strategic intermediate in the multi-step synthesis of triazine herbicides, taking advantage of its prefunctionalized amino and methoxy groups. The material integrates into heterocyclic ring closure stages, facilitating cost-effective sourcing of selective, high-purity s-triazine structures tailored for weed management in cereals and maize.

    Industry compliance standards

    • ISO 9001:2015 for agrochemical intermediates
    • FAO/WHO Specifications for Plant Protection Products (FAO/WHO 2016)
    • Regulation (EC) No 1107/2009 (EU pesticide regulation)
    • US EPA 40 CFR Part 180 (Pesticide tolerances)

    Typical usage ratio

    • Intermediate dose: 1.0–1.1 molar equivalent per target triazine herbicide molecule, adjusted by batch size and reaction efficiency for specific structure-activity requirements.

    Downstream process integration

    • Added to the ring closure/reactive substitution step in the batchwise or continuous-flow synthesis of chlorinated triazine herbicide actives prior to formulation into EC or WG end-products.

    Final product types

    • Selective pre- and post-emergence herbicides for cereals
    • Maize herbicidal granules and concentrates
    • Industrial non-crop herbicide actives
    • Biocide blends for aquatic vegetation management

    3. Reactive Component in Flame Retardant Resin Systems

    Manufacturers of advanced flame-retardant resin systems source this molecule to synthesize integrated triazine moieties within epoxy and phenolic matrices. Its nucleophilic amino group reacts under controlled conditions, incorporating nitrogen-rich aromatic structures that impart enhanced flame and smoke suppression while meeting evolving halogen-free requirements.

    Industry compliance standards

    • EN 13501-1 Fire Classification for Building Materials
    • UL 94 Flammability Standard
    • GB 20286-2006 (China National Standard for Flame Retardant Materials)
    • REACH SVHC Declaration (for halogen-free systems)

    Typical usage ratio

    • Custom blend: 2–5% by weight as a reactive intermediate, proportion set according to target LOI (Limiting Oxygen Index) and resin matrix compatibility tests.

    Downstream process integration

    • Blended into pre-polymer formulation under controlled addition, prior to high-temperature curing and casting steps, directly integrating into bulk matrices or as part of reactive oligomers.

    Final product types

    • Flame-retardant circuit board laminates
    • Fire-resistant construction panels and foams
    • Automotive interior composites
    • Insulating potting compounds for electrical devices

    4. Chemical Intermediate for Specialty Textile Finishes

    Textile chemical finishers utilize this triazine as a reactive intermediate to prepare crosslinking agents for permanent press and crease-resistant treatments. Its molecular structure enables controlled crosslinking with cellulose in cotton and viscose fibers, facilitating low-formaldehyde or formaldehyde-free finishes suitable for high-demand apparel textiles and technical fabrics.

    Industry compliance standards

    • OEKO-TEX Standard 100 (Textile Safety)
    • ZDHC Manufacturing Restricted Substances List (MRSL)
    • GB/T 2912.1-2009 (Textile – Determination of Formaldehyde)
    • ISO 17050-1:2004 (Supplier's Declaration of Conformity)

    Typical usage ratio

    • Intermediate stage: 0.7–1.0 molar equivalents in resin formulation per active crosslinker batch, final dosage on fiber 1.5–3.0% w/w depending on desired crease recovery level.

    Downstream process integration

    • Introduced during pre-condensation of textile resin finish, followed by application via padding, drying, and curing on continuous finishing lines.

    Final product types

    • Permanent press shirts and uniforms
    • Non-iron home textiles
    • Technical textile composites for automotive and filtration
    • Specialty coated drapery fabrics

    5. Intermediate for Pharmaceutical S-Triazine-Based API Synthesis

    Pharmaceutical manufacturers source this compound for use as a protected triazine intermediate in targeted active pharmaceutical ingredient (API) syntheses, especially for oncology and antiviral drug lead frameworks. Its functionalization pattern supports regioselective transformations, enabling cost-effective, high-purity generation of final triazine-based drug cores through established GMP-compliant processes.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • US Pharmacopeia (USP) monographs for relevant APIs
    • European Pharmacopoeia (Ph.Eur) substance specifications
    • FDA cGMP 21 CFR Parts 210/211

    Typical usage ratio

    • Intermediate batch dose: 1.0–1.05 molar ratios per final API core, adjusting for step yield and purity criteria.

    Downstream process integration

    • Engaged in the multistep synthesis pathway following initial nucleophilic aromatic substitution, usually forming the triazine scaffold before downstream deprotection and final derivatization.

    Final product types

    • Oncology small molecule APIs
    • Antiviral agents containing s-triazine moieties
    • Pharmaceutical research intermediates for SAR studies
    • Synthetic standards for analytical reference
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    Certification & Compliance
    More Introduction

    2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine: From Our Lab to Your Production Line

    Working with triazines for over two decades, I have come to know the differences a slight change in the molecule can make. Among the different triazines we prepare, 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine earns its place in the lineup because of a unique combination: the methyl group at the six-position, amino at two, and a methoxy tucked at four. What sounds like a mouthful ends up making a sharp difference in performance when used in fine chemical and specialty synthesis.

    What Makes This Compound Stand Out

    The intrinsic appeal of 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine comes down to reactivity and selectivity. The introduction of a methoxy group at the para position on the triazine ring along with a methyl at the six-position creates a molecule that demonstrates more stability compared to many similar triazines. Colleagues across the chemical industry ask why we put in the time to refine this particular arrangement. The answer is hands-on experience: in repeated trials, this triazine stands up better under both basic and mild acidic conditions, making it preferable for routes where overreaction or polymerization threaten to ruin the batch.

    We work with analysts and plant engineers to reduce unnecessary side products because nobody likes cleaning gummed-up reactors, and nobody wins when yields fall short. Time spent tailoring the purification gives a powder with consistent morphology, minimizing the headache during weighing, transfer, and dissolution stages. Years of running this process have made us sensitive to contamination risks. Strict process controls at each stage reflect our experience watching one careless transfer turn a highly valuable batch into waste.

    Quality That Endures Under Demanding Conditions

    The preparation of 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine requires more than following a recipe. From the first charge in the vessel, any deviation—be it moisture from atmospheric humidity or reagent impurities—can nudge the reaction off track. Not all triazines handle heat and moisture with poise. We purposely account for this by investing in multi-stage drying protocols, vacuum handling, and frequent in-process checks. It bears out in the final certificate of analysis: unreacted starting materials sit below meaningful detection limits, and the purity, by HPLC, remains high batch after batch.

    Many users appreciate that the product does not clump during storage. This may sound minor, but workers notice when powders bridge in transfer hoppers or stick in feed tubes. Small changes—consistent particle size, controlled moisture—turn into fewer shutdowns on the floor. Outgassing tests show predictable results, so downstream solvent handling remains safe and simple, which matters more than any lab data when it comes to actually using these chemicals at scale.

    Why Choose 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine?

    For chemical manufacturers focusing on pharmaceutical intermediates, agricultural actives, or specialty crosslinkers, this triazine offers a combination of selectivity and stability. Its molecular structure reduces reactivity at unwanted positions, helping chemists avoid off-target reactions. During large-scale synthesis, limited byproduct formation delivers cost savings in filtration and cleaning—not just in lab notebooks but in waste treatment fees and manpower. In agricultural chemistry, we have received feedback that formulations using this molecule resist decomposition under typical field storage temperatures, which means more reliable shelf life for finished products.

    Actual end-users benefit the most from consistently high purity. Impurities hint at skipped steps or uncontrolled side reactions, which lead to headaches during downstream processing. Our goal as a manufacturer is to ensure that each drum provides the same starting point, so no time is wasted adjusting for variations.

    Comparing Against Other Triazines

    Some buyers initially gravitate to 2-Amino-4,6-Dimethoxy-1,3,5-Triazine or its methyl-free cousin, thinking the cost advantage outweighs the functional difference. With long enough exposure to the demands of full-scale plants, these assumptions change. For crosslinking applications, the single methoxy group in this molecule reduces unwanted overcrosslinking, translating into more predictable performance in end-use coatings or polymers. The addition of a methyl group at the six position, although subtle, has repeatedly given better solubility in organic solvents. User feedback consistently mentions improved blending and easier filtration—results we’ve witnessed during in-plant trials.

    In pharmaceutical routes, our clients mention that alternative triazine sources show more colored impurities and cause headaches during crystallization. Keeping a narrow cut on the melting range, for example, between 164 and 168 degrees Celsius, has minimized batch-to-batch issues and simplified quality control for the customers downstream.

    We have seen others introduce triazines with a chlorine in place of the amino group, chasing faster reactivity. While this may suit certain catalytic applications, it brings up hazards in handling and disposal—problems our amino-methoxy-methyl combination avoids. For clients prioritizing safety and environmental compliance, our compound aligns with an approach that streamlines safe work practice and aligns more easily with regulatory expectations.

    Supporting Reliable Supply for Our Partners

    We do not outsource core process steps or blend in lower-purity materials for the sake of fast delivery. Each order starts from our own batch, handled in our own equipment. This avoids cross-contamination and provides traceability, which many customers in regulated fields depend on. Consistency in the supply chain builds trust, and each order is produced the same way, regardless of the end-use application.

    We remember the supply chain shocks during the last decade—batches delayed or rejected because of inconsistency. This sticks in our memory and shapes our approach. Security of supply depends on control over each processing step, so no corners can be cut. The people we serve are usually under pressure to deliver, and surprises with raw materials slow everything down. Our site runs on transparent communications and records, so tracing a lot history means less worry when you need answers.

    Meeting Specifications Without Excuses

    Some users require documentation for every stage, especially those in pharmaceutical or regulated agriculture. We prepare for inspection, understanding that missing a data point slows everyone down. Each shipment leaves the factory with clear records, and our plant managers know exactly where each raw material originated. End-to-end oversight supports both quality and safety targets and removes the uncertainty that often plagues third-party re-packers.

    Packaging options depend on the needs of our customers and the common sense we have developed from years on the job. Sometimes standard fiber drums meet the need; sometimes custom liners make sense for stability and safety during transit. We pay attention to moments where the wrong packaging led to trouble in the past—such as moisture ingress or difficulties at unloading—and choose practical solutions based on demonstrated experience.

    The Human Connection Behind The Chemistry

    Too much of the chemical supply world relies on generic marketing statements or anonymous sources. Our process deliberately emphasizes hands-on decision-making and direct communication with users. Plant foremen and operators know they can call us about any unusual lot, and we keep records readily available. Staying present in the conversation after delivery lets us notice trends: how powders behave in automated feeders, which solvents show unexpected interactions, or what equipment modifications help everything run smoother.

    We train our teams to spot deviations early, knowing from experience that a minor blip can cause a major headache if ignored. We keep the focus on the details, drawing on what we have seen in both large and small runs. When users bring up new requirements—be it tighter particle size, different documentation, or specific impurity profiles—we work through the challenge together, instead of just sending a catalog sheet. Years in the field show that open channels build stronger partnerships.

    Downstream Impact in Synthesis and Formulation

    Many users come to us after running large pilot batches, seeking advice on how to optimize their processes with this triazine. In one instance, a customer faced regular agglomeration in their synthesis, traced to inconsistent grade from a previous supplier. After switching to our refined material, dissolution steps completed faster and fewer downstream blockages halted their line. Their feedback and process data shaped minor tweaks in our drying process, which in turn improved our product for all users.

    A research group working with bioactive molecules highlighted another benefit: lower moisture kept hydrolysis to a minimum, decreasing both yield loss and formation of byproducts. They confirmed structure by NMR and appreciated that baseline absence of water meant fewer “unknowns” interrupting their analytical runs. Practical results like these reinforce the value of listening carefully to each user’s case.

    Feedback from the agricultural sector also informs our process. When pilot field trials revealed heat exposure risks in warehouse storage, we adapted our cooling and packaging to bring temperature spikes down. This common-sense fix improved quality all along the distribution chain, saving time for both us and our partners.

    Solutions for Today’s Challenges

    In a chemical landscape crowded with claims and ever tighter regulatory demands, manufacturers must stride beyond generic assurances. 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine remains a reliable workhorse for those seeking true process control, user-oriented support, and a product traceable at every step. The demands to reduce impurities, support sustainability, and provide safer alternatives grow each season. We respond by updating both raw materials and methods, acting on feedback to push our process toward greater consistency and lower waste.

    Pfrop choices are shaped by direct input from operators and end-users, not distant consultants. From tailored drying cycles to smarter packaging, we make incremental improvements based on what solves real-world manufacturing challenges. The organic sector consistently asks about cleaner routes and waste minimization. Our hands-on approach provides transparent records for those facing regular audits and supports claims for end-use registration.

    Where challenges appear—whether in shipping logistics, compliance reporting, or specific synthesis needs—we consult openly, looking for the most robust, hassle-free solution. We know that small users and high-volume businesses alike rely on dependability, not just in the drum but in every interaction before and after delivery.

    The Value of Experience in Every Lot

    Decades working with triazines have taught us that not all choices can be justified by price alone. Over time, consistent supply, robust performance, and clear communication save more than a few dollars per kilo. Experience in manufacturing teaches what shortcuts aren't worth the trouble; we've learned to balance efficiency and care, keeping our standards high. This depth of experience shapes every lot, with direct oversight ensuring traceability.

    We hold onto the lessons from both setbacks and successes. This helps us anticipate and avoid the stumbling blocks that less experienced suppliers fall into. Teams on the ground can depend on what shows up in their warehouse, and those further down the chain can rely on a process refined in the real world, not just in theory.

    Moving Forward

    With 2-Amino-4-Methoxy-6-Methyl-1,3,5-Triazine, the difference lies not merely in a distinctive chemical structure but in the daily care taken through every step of manufacturing. We continue listening to those who depend on each batch, learning from their trials and supporting their innovations. Our foundation comes from practical knowledge, stable supply, and the expectation that every shipment will match the trust invested in us. By constantly refining the process and focusing on real outcomes, we strengthen both product and partnership for years to come.