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3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine

    • Product Name 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine
    • Alias ADCTFP
    • Einecs 629-370-6
    • 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

    594142

    Productname 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine
    Casnumber 136465-18-6
    Molecularformula C6H3Cl2F3N2
    Molecularweight 231.01
    Appearance Solid (often off-white to yellow powder)
    Purity Usually ≥98%
    Solubility Soluble in organic solvents (e.g., DMSO, DMF); limited solubility in water
    Smiles C1=CN=C(C(=C1Cl)N)ClC(F)(F)F
    Inchi InChI=1S/C6H3Cl2F3N2/c7-3-1-2(13)4(8)12-5(3)6(9,10)11
    Synonyms 3-Amino-2,6-dichloro-4-trifluoromethylpyridine
    Storageconditions Store at 2-8°C, tightly sealed, in a dry place

    As an accredited 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 25g of 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine is packaged in a sealed amber glass bottle with safety labeling.
    Shipping 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine is shipped in tightly sealed containers, often under inert gas, and compliant with international chemical transport regulations. The package should be clearly labeled as a hazardous material, handled with care, and kept away from heat, moisture, and incompatible substances during transit to ensure safety and product integrity.
    Storage Store 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and incompatible materials such as strong oxidizers and acids. Protect from moisture and direct sunlight. Use secondary containment to prevent spills, and clearly label the storage area for hazardous chemicals.
    Application of 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine

    Applications of 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine in Industrial Manufacturing

    3-Amino-2,6-dichloro-4-(trifluoromethyl)pyridine serves as a key intermediate in the synthesis of several advanced agrochemical and pharmaceutical actives, notably in sectors demanding stringent process controls and trace impurity management. The following sections detail its integration in leading downstream applications, each informed by manufacturing practices and third-party audits for regulatory adherence, dosage, and technical fit within existing industrial protocols.

    1. Herbicide Active Ingredient Synthesis

    Major agrochemical producers incorporate this pyridine derivative in the multi-step synthesis of selective post-emergence herbicides, focusing on controlling broadleaf and grass weeds. The intermediate enters the process during nitrogen substitution steps, ensuring effective electronic modulation for subsequent transformations. Facilities maintain tight control over addition rates, in-process QC, and off-gas management, aligned with regulatory limits on residuals and batch traceability, producing registered herbicidal actives for commercial formulation.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice (GLP)
    • ISO 9001:2015 Quality Management for chemical manufacturing
    • EU Regulation (EC) No 1107/2009 for Plant Protection Products
    • US EPA FIFRA registration requirements

    Typical usage ratio

    • Usage ranges from 0.5% to 3% by weight of the total raw material charge for each synthetic batch, dependent on target herbicide molecule and batch size.

    Downstream process integration

    • Charged into the reaction vessel alongside base pyridine derivatives, typically at the amination or halogenation stage prior to final functional group insertion.

    Final product types

    • Nicotinyl-based herbicide active acids or esters
    • Technical-grade agricultural herbicide concentrates
    • Formulated post-emergence weed control solutions

    2. Insecticide Intermediate Manufacturing

    Manufacturers of next-generation insecticide actives deploy this compound in the construction of pyridine-containing scaffolds, capitalizing on its unique halogen and trifluoromethyl patterning to achieve targeted bioactivity. The material is typically introduced during late-stage intermediate coupling steps, requiring controlled environmental and operator exposure limits for safety. Downstream processes prioritize impurity profiling and conform to global pesticide registration standards.

    Industry compliance standards

    • FAO/WHO Joint Meeting on Pesticide Specifications (JMPS)
    • ISO 14001:2015 Environmental Management in chemical synthesis
    • China GB/T 19001 Quality System for pesticide actives
    • REACH Annex II for chemical intermediates

    Typical usage ratio

    • Commonly charged at 1.2%–2.5% of the intermediate stage mass input, adjusted based on reaction scale-up and specific insecticide molecular targets.

    Downstream process integration

    • Added during nucleophilic aromatic substitution, usually after initial ring synthesis but prior to final functionalization and purification.

    Final product types

    • Pyridine-based organofluorine insecticide intermediates
    • Technical active ingredients for systemic insecticide formulations
    • Bulk ingredient for pilot and full-scale insecticide synthesis

    3. Pharmaceutical Intermediate for Anti-Infectives

    This material provides a critical building block for synthetic routes in anti-infective pharmaceutical research, particularly where pyridine frameworks require precise halogenation and electron-withdrawing substituents. Integrators introduce the intermediate in tightly regulated GMP settings, directly influencing final pharmacological profile consistency. Strict analytical validation supports regulatory submissions and international pharmacopoeial standards for active pharmaceutical ingredient (API) routes.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 (Current GMP for Finished Pharmaceuticals)
    • European Pharmacopoeia (EP) and United States Pharmacopeia (USP) monographs on intermediates and APIs
    • WHO GMP for pharmaceutical production

    Typical usage ratio

    • Inclusion levels between 0.3% and 1.0% of stepwise batch mass, based on target API molecular weight and batch volume. Operators adjust based on reaction yield and impurity thresholds.

    Downstream process integration

    • Introduced during advanced-stage amination or substitution reactions under strictly controlled temperature and pressure, followed by stepwise purification and concentration.

    Final product types

    • Synthetic anti-infective drug intermediates
    • Precursor segments for fluoroquinolone development
    • Reference standards and intermediates for API regulatory dossiers

    4. Fine Chemical Synthesis for Specialty Agrochemical Additives

    Fine chemical manufacturers utilize the compound to create custom-tailored molecules serving as co-formulants or stabilizing agents in advanced agrochemical blends. Its contributive properties lend stability to actives under storage and field application conditions. Compliance and operational control reflect standards guiding specialty chemicals, with plant QC labs monitoring additive levels and process integration timing to minimize batch variability.

    Industry compliance standards

    • ISO 9001:2015 and ISO 17025:2017 Laboratory Competence for chemical analysis
    • EU Regulation EC No 1272/2008 on Chemical Classification, Labeling and Packaging (CLP)
    • China National Standard GB 2763 for pesticide residuals
    • FAO/WHO standards on pesticide technical material purity

    Typical usage ratio

    • Applied at 0.1%–0.8% of the formulation weight for fine chemical additive manufacturing; dosage refined based on stability trials and co-formulant interaction studies.

    Downstream process integration

    • Incorporated during final formulation blending stage, often after primary active synthesis, in jacketed mixing vessels to promote homogeneity.

    Final product types

    • Storage-stabilizing additives for agrochemical formulations
    • Pyridine-derivative co-formulant packages
    • Custom specialty chemical solutions for agrochemical formulators
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    Certification & Compliance
    More Introduction

    Introducing 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine: Reliable Chemical Building Block from the Source

    Winning Trust Through Consistent Production

    Over the years, manufacturers in crop protection and advanced materials have relied on 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine when they seek precise molecular building blocks. As a chemical manufacturer invested in scale, stability, and process safety, we know that only rigorous control at each stage yields material suitable for demanding synthetic routes. Each batch comes from our dedicated production line, designed to minimize contamination and meet exacting requirements in purity and particle characteristics. We start with carefully sourced intermediates in our continuous-flow system, and run scheduled on-line checks for both moisture content and residual precursor traces. Our control over the process delivers a crystalline solid that matches practical specifications for leading synthesis protocols, typically reaching assays above 98%.

    Why This Pyridine Derivative Matters

    3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine has proven itself as a cornerstone in the synthesis of complex heterocyclic compounds. Diverse end applications, from fungicides to advanced electronics, demand consistently reliable raw materials. This molecule, with amine, dichloro, and trifluoromethyl substituents on the pyridine ring, supports modifications and functionalizations that give rise to active ingredients and specialty ligands. For those engaged in library synthesis for pharmaceuticals, these substitution patterns enable robust further reactions such as N-alkylations, couplings, or nucleophilic substitutions at accessible positions. In our facility, reactivity tests help ensure our output meets these downstream needs, not simply the minimal paper specs.

    Our Day-to-Day Manufacturing Experience

    In practice, batch consistency and clean conversion are where manufacturing knowledge sets a supplier apart. Our crew has built internal standards for reaction kinetics, impurity analysis, and packaging logistics that reflect actual challenges in large-scale chemical production. This pyridine derivative tends to demand strict temperature management during amination, and we’ve seen yields drop when solvent conditions drift off target. Long-term contracts have encouraged investments in high-precision solvent recovery, keeping costs stable without introducing cross-contamination concerns. Our operations team tracks every lot, with periodic QC audits that go beyond typical Conformity Certificates. This detail work leads to an end product with low halide residuals and predictable melting profile, reducing customer surprises at the reaction pot.

    Specifications with End Use in Mind

    We see many buyers request integration of 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine into multi-step synthesis campaigns. To help chemists avoid time-consuming troubleshooting, we focus on providing dry, free-flowing crystalline material with low content of residual acids and starting materials. Particle size range reflects both safe handling and good mixing with a variety of solvents, such as DMF or DMSO, popular in scale-up piloting. Analytical support packages are available, including NMR, HPLC, and GC data, for customers needing to validate input quality before trial runs or routine use. We store raw data and retain samples from every batch shipped, ready to backtrack any issue that users see on their end.

    Model Selection Reflects Trade-Offs in Downstream Chemistry

    Not all 3-amino-dichloro-trifluoromethylated pyridines are alike. Within the same base structure, process tweaks can yield different polymorphs or minor side-products, some more prone to color change on storage or clumping during transfer. Our production protocol grew out of customer feedback in the early 2010s, particularly from formulation chemists in Europe who reported inconsistent solubility profiles between lots sourced from the wider market. To address this, we invested in raw material pre-processing and post-synthesis filtration systems capable of isolating the most stable crystalline form, with more predictable behavior during grignard or Suzuki coupling steps. We’ve learned to tune particle strength and flow to avoid caking—a real win for blending and dosing this specific model.

    Common User Applications: Real-World Observations

    Customers in agrochemical research have called for this compound when screening for novel active molecules. Its activating trifluoromethyl group, flanked by two chloro positions, supports regioselective transformations that chemists exploit to introduce further functionality on the ring system. Similarly, in high-performance material development, this molecule finds use as a scaffold for tailored ligands required for OLEDs or electronic modifiers. Our long-term partners often route the amino group toward specific amide or imine linkages, using our product as a direct starting material for patentable analogues. We keep track of these developments to better understand what properties users value most, and regularly update our process controls to avoid residues that hamper late-stage couplings or create by-products in subsequent reactions.

    Differences from Other Pyridine Compounds

    From a production standpoint, one of the clearest differences remains the difficulty in maintaining both high purity and desirable crystalline properties in this compound versus simple pyridine analogues or those lacking fluorine substitution. The presence of multiple halide and fluorine atoms increases not just the reactivity but also the risk of generating difficult-to-remove impurities. While some suppliers offer broad portfolios of pyridine derivatives, we found that many short-cut operations led to higher low-level contamination, particularly by mono-chloro or difluoro isomers. After running head-to-head solubility and reactivity comparisons, our technical team refined reaction conditions and solvent selections to deliver batches that reliably outperform generic alternatives in downstream performance and storage stability. This minimizes issues such as color development, rapid moisture pickup, or by-product formation under basic conditions that frustrate chemists and slow development timelines.

    Supporting Clean Synthesis at Scale

    We dedicate significant resources to clean process design, understanding that laboratory-scale tricks rarely translate directly to tonne-scale plants. Scale brings not just an increase in volume, but also the challenge of managing heat transfer, agitation, and mixing in reactors that are less forgiving of deviation. Over time, we’ve adopted several process modifications to handle exotherms and avoid local overheating, outcomes that would compromise product quality. For packaging, our flow-through drying and packing system limits exposure to moisture and airborne particulate, protecting both product and workers. Clear labeling, sealed drums, and batch tracking all serve to reduce error margins in the warehouse and at point of use.

    Traceability and Batch Integrity

    Unlike intermediaries on the market, our batch logs don’t stop at the shipment gate. Every lot remains linked back to production days, solvent batches, and plant records. This matters most when a formulation team at a customer site picks up an unusual signal in a reaction sequence. With precise traceability, our technical unit can review raw analytical data alongside in-plant observations to help pin down rare events or performance drifts. Over the years, this transparency has fostered real trust with process engineers and R&D chemists alike.

    Feedback Loop: Improving Through Real User Experience

    Process chemists know how much downstream performance hinges on starting material quality. As the manufacturer, we collect and react to feedback from customers about clumping, dusting, or out-of-range assay readings. These direct reports drive continuous improvement; for example, one technical customer team noted a slight tendency for our product to discolor under high humidity. Our crew responded by adding another in-line moisture check and updating drying protocols, leading to cleaner, longer-storing lots. With production in-house, we afford that agility and can tune output quickly based on practical, real-world user challenges—not just plan theoretical optimizations.

    Safer Handling from Production Site to End User

    Chlorinated, fluorinated compounds demand careful handling at every stage. Our manufacturing plant operates under tightly controlled ventilation and environmental protection standards. By using closed-system reactions and continuous monitoring—for vapor, pressure, and operator exposure—we lower risk without resorting to excess personnel or over-complex procedures. Our staff undergo routine hazard and emergency response simulations, helping to head off incidents before they impact the batch or the people involved. Good handling habits start at the plant, carry through shipping, and help ensure users downstream face fewer surprises in their own laboratory or pilot-scale setups.

    What Drives Long-Term Demand?

    With market cycles in fine chemicals, demand for complex amino-pyridines rises and falls. We’ve seen sharp upticks tied to new product launches by leading agrochemical and pharmaceutical companies, as well as growth in specialty electronics markets. By focusing on production flexibility, we can adapt run sizes or batch frequency, matching seasonality in orders without scrambling supply lines. Our repeat customers value not just the product but also schedule reliability and the ability to turn around new specs or tighter grade requests on quick notice. Keeping raw material inventory and up-to-date machinery ready means shorter lead times and fewer bottlenecks, traits that matter in today’s volatile chemical markets.

    Regulatory and Environmental Responsibility

    All downstream uses of 3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine share regulatory oversight, with import restrictions, safety registrations, and documentation burdens often falling back on the original manufacturer. Long experience preparing dossiers and responding to inquiries from regulatory agencies let us support our customers as they navigate new registrations or compliance updates abroad. We keep a trained staff on hand to review safety data, run toxicological assessments, and prepare transportation documents for chemical shipments. Waste neutralization and solvent recycling come standard in our facility, reducing impact on local surroundings and fitting with expectations for modern chemical production.

    Supporting Your R&D Success

    Working closely with researchers, from pilot lines up to full-scale production, has shown us that process tweaks or unexpected shifts in reactivity can make or break a project. By listening to application chemists and scale-up engineers, we’ve adjusted specifications, added extra testing endpoints, and even preserved sample quantities from each run for backtracking. Whether a user needs more granular analysis, a size fraction adjustment, or an alternate packaging style, our on-site team responds because we control the whole process. That attention to detail translates into fewer surprises at the research bench and greater assurance when moving from milligrams to kilograms in development.

    Reliability Over Just Cost

    It’s tempting for some buyers to chase ever-lower prices, sourcing pyridines from opportunistic brokers or variant offshore suppliers. Our long-term experience suggests that up-front savings rarely offset later headaches caused by inconsistent quality, untraceable shipments, or poorly maintained safety profiles. Direct-from-manufacturer supply brings more than raw material: it brings documentation, sample retention, and immediate troubleshooting, all of which save time and cost at later project stages. Our accounts show that teams with secure, transparent supply run trials and new product launches more smoothly—and face fewer downtime days caused by a faulty batch or paperwork snag.

    Looking Ahead: Continuous Improvement and Partnership

    In today’s chemical sector, no product stays static. Our team works with raw material suppliers, analytics labs, and end users to keep abreast of evolving requirements. Whether rising assay demands, tighter particle control, or new impurity limits come into effect, we have systems in place for line modifications and process upgrades. Our close relationship with customers means that requests get to the technical core—not routed through sales or distant logistics staff. This speed ensures that user needs turn into real adjustments on the production floor within weeks, not quarters or years. By keeping attention on outcomes in actual laboratories, we drive better material for end uses while maintaining the strong safety and environmental standards that protect our teams and our communities.

    In Closing: Product Integrity Grounded in Real Manufacturing Experience

    3-Amino-2,6-Dichloro-4-(Trifluoromethyl)Pyridine is more than a chemical identifier or CAS number. Our experience demonstrates the difference careful process management, user feedback, and batch-by-batch optimization can make. By focusing on what matters to bench chemists, plant engineers, and R&D teams—product purity, predictability, traceable supply, and regulatory compliance—we offer reliability that extends through every step of the innovation and manufacturing pipeline. Staying close to the product, adapting with user needs, and never letting go of the quality mindset shape our whole approach as a chemical manufacturer.