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

    • Product Name 2,6-Dichloro-3-(Trifluoromethyl)Pyridine
    • Alias 2,6-Dichloro-3-(trifluoromethyl)pyridine; 2,6-Dichloro-3-(trifluoromethyl)pyridine; 2,6-Dichloro-3-(trifluoromethyl)-pyridine; 3-(Trifluoromethyl)-2,6-dichloropyridine; 2,6-Dichloro-3-trifluoromethylpyridine
    • Einecs 223-322-6
    • 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
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    Specifications

    HS Code

    220222

    Product Name 2,6-Dichloro-3-(Trifluoromethyl)Pyridine
    Cas Number 4300-97-4
    Molecular Formula C6H2Cl2F3N
    Molecular Weight 232.99 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥98%
    Boiling Point 192-194°C
    Density 1.51 g/cm³
    Solubility Slightly soluble in water; soluble in organic solvents
    Flash Point 74°C
    Refractive Index 1.500 - 1.510
    Smiles FC(F)(F)c1cc(Cl)nc(Cl)c1

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

    Packing & Storage
    Packing Amber glass bottle containing 100 grams of 2,6-Dichloro-3-(Trifluoromethyl)Pyridine, tightly sealed with a tamper-evident cap and hazard label.
    Shipping 2,6-Dichloro-3-(Trifluoromethyl)Pyridine is shipped in tightly sealed containers to prevent leaks and contamination. It should be transported under ambient temperature, labeled as a hazardous material, and handled according to appropriate chemical safety regulations. Proper documentation and protective packaging ensure the chemical reaches its destination safely and compliantly.
    Storage Store **2,6-Dichloro-3-(trifluoromethyl)pyridine** in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers and acids. Keep the container tightly closed and protected from light and moisture. Use proper chemical storage cabinets if available, and ensure appropriate labeling. Always follow standard laboratory safety protocols and local regulations for hazardous chemicals.
    Application of 2,6-Dichloro-3-(Trifluoromethyl)Pyridine

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

    As the original manufacturer of 2,6-Dichloro-3-(Trifluoromethyl)Pyridine, we supply this specialty intermediate to global B2B clients requiring advanced building blocks for regulated and large-scale chemical synthesis. Our product serves as a key raw material in select downstream sectors where critical performance and compliance standards must be achieved throughout production.

    1. Crop Protection Active Ingredient Manufacturing

    Major agrochemical companies incorporate this pyridine derivative as a core intermediate during multi-step synthesis of modern herbicide and fungicide actives. Its electron-deficient aromatic structure promotes necessary reactivity in nucleophilic aromatic substitution, shortening the route for critical molecule construction with increased process safety and yield.

    Industry compliance standards

    • FAO/WHO Technical Specifications for Pesticides
    • EU Regulation (EC) No 1107/2009 concerning plant protection products
    • EPA FIFRA guidelines for pesticide intermediates
    • ISO 9001:2015 and ISO 14001:2015 for integrated management

    Typical usage ratio

    • Reactant charge ratio of 0.7-1.5 molar equivalents, depending on target active ingredient molecular design and process batch size
    • Adjusted in multi-ton synthesis based on scale-up optimization and downstream conversion rates

    Downstream process integration

    • Introduced in the condensation step post-chlorination, acting as a nucleophilic substrate for further functionalization
    • Critical for ring substitution reactions under controlled temperature and pressure

    Final product types

    • Selective post-emergent herbicide actives (e.g., those in pyridine, pyrimidine, or triazine families)
    • Broad-spectrum fungicidal intermediates incorporated in high-value crop protection products

    2. Pharmaceutical Intermediate Synthesis

    Specialty pharmaceutical manufacturers employ this compound as a key aromatic building block in advanced intermediate production, specifically for heterocyclic active pharmaceutical ingredients. Its structural motif facilitates stepwise introduction of trifluoromethyl and chloro groups essential for medicinal chemistry targeting CNS and anti-infective drugs.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211
    • EU GMP Volume 4 for pharmaceutical production
    • Ph. Eur., USP-NF, and ChP for final API quality

    Typical usage ratio

    • Typically incorporated at 0.5-1.2 equivalents in advanced intermediate coupling or cyclization reactions
    • Adjusted to target yield, purity, and reaction step count in route selection

    Downstream process integration

    • Charged at the ring construction or halogen-exchange step preceding API core formation
    • Enters one-pot or multi-pot processes requiring strict impurity control and traceability

    Final product types

    • Active pharmaceutical intermediates for CNS therapies with pyridine pharmacophores
    • Antiviral and antibacterial API precursors containing halogenated and fluorinated aromatic rings

    3. High-Performance Polymer Monomer Production

    Advanced polymer manufacturers rely on this halogenated pyridine to prepare specialty monomers that impart chemical resistance and thermal stability in fluorinated engineering plastics. Its unique substitution pattern supports efficient co-polymerization and downstream derivatization essential for high-end application requirements.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 for polymer intermediates
    • ISO 9001:2015 for polymer quality management
    • ASTM D6100 standard guide for polymer process control
    • RoHS Directive 2011/65/EU for restricted substances in end-use plastics

    Typical usage ratio

    • Used at 1.0 equivalent relative to co-monomers in controlled batch or continuous polymerization
    • Ratios tailored per desired glass transition temperature and final polymer architecture

    Downstream process integration

    • Enters pre-polymer mixing and coupling as a chain extender or specialty linker
    • Participates in solution-polymerization or step-growth synthesis for fluorinated copolymers

    Final product types

    • Fluorinated engineering resins for wire/cable insulation and high-performance films
    • Chemically resistant specialty polymers for automotive fuel system components

    4. Electronics Industry: Liquid Crystal Precursor Synthesis

    Leading electronics chemical producers use this compound in the production of advanced fluorinated pyridine-based liquid crystal precursors. Its precise substitution enables the tailored refractive indices and dielectric anisotropy necessary for high-definition flat panel displays and OLED technology.

    Industry compliance standards

    • IEC 62474 and IPC-4101 for base material restrictions in electronic chemicals
    • ISO 14001:2015 for environmental management in electronics chemicals
    • RoHS Directive 2011/65/EU compliance for final products
    • Customer-specific purity criteria for liquid crystal materials (>99.5%)

    Typical usage ratio

    • Applied at 0.6–1.0 equivalents depending on the downstream target molecule
    • Adjusted per phase-matching and optical property requirements in display cell formulations

    Downstream process integration

    • Feeds into nucleophilic aromatic substitution reactions during liquid crystal precursor assembly
    • Utilized in controlled, low-metal catalysis steps to avoid electronic contamination

    Final product types

    • Fluorinated liquid crystal intermediates for LCD, OLED, and advanced display modules
    • Specialty molecules for high-performance optical films in consumer electronics

    5. Fine Chemical Synthesis for Specialty Agrochem Intermediates

    Manufacturers of next-generation agrochemicals integrate this pyridine derivative at the early intermediate stage for synthesizing high-value, patent-protected compounds. Its structural integrity ensures the selective introduction of fluoro and chloro functionalities—critical for downstream biological activity and product differentiation.

    Industry compliance standards

    • OECD Guidelines for Testing of Chemicals (safety and environmental fate)
    • ISO 17025 for laboratory testing and analytical traceability
    • ISO 9001:2015 for process quality assurance
    • Applicable national chemical control legislations (e.g., TSCA, REACH)

    Typical usage ratio

    • Incorporated at 0.8-1.3 equivalents per mole of core structure, adjusted for scale and target functionality
    • Ratio influenced by process cost, yield, and downstream conversion efficiency

    Downstream process integration

    • Engaged in selective halogenation and fluorination steps within multi-stage fine chemical synthesis
    • Subjected to batch reaction monitoring for trace residuals

    Final product types

    • Advanced, multi-functional pre-active intermediates for proprietary crop protection chemicals
    • Building blocks for development-stage adjuvants and safeners
    Free Quote

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    Certification & Compliance
    More Introduction

    2,6-Dichloro-3-(Trifluoromethyl)Pyridine — Reliable Chemistry from an Experienced Manufacturer

    What Sets Our 2,6-Dichloro-3-(Trifluoromethyl)Pyridine Apart

    For decades, daily work at the reactor and close conversation with our customers have shown that not all intermediates are built the same. As the chemists behind the production, we see what it takes to deliver a pyridine derivative that consistently does the job in tight synthetic routes. 2,6-Dichloro-3-(Trifluoromethyl)Pyridine (CAS 86604-75-3) leaves a mark on several sectors, especially agrochemical and pharmaceutical manufacturing. Consistency always sits at the center of these applications. Trace levels of impurities, variation in crystallinity, even moisture content — these seemingly small details spell the difference between a plant running smoothly and one bringing headaches for weeks.

    From the start, we chose to maintain direct control over every production stage. Instead of offloading reactions to subcontractors or buying intermediates through several hands, our team oversees everything from the selection of feedstocks to the last drum filled on the loading dock. Each reactor batch runs under controlled conditions using proprietary chlorination and trifluoromethylation protocols, which we have refined over years of trial and improvement. We rarely see outside traders paying attention to the technical nuance that practitioners on the production line pick up. This experience led us to focus as much on robust reaction kinetics as on purification techniques able to minimize the byproducts certain synthetic routes seem unable to avoid.

    Model and Specifications In Practice

    Most clients who choose our product look for the standard grade 2,6-dichloro-3-(trifluoromethyl)pyridine with a purity above 98%. While the target purity number matters, experience tells us that controlling impurity types matters just as much. Over-oxidized species, low-boiling impurities, and specific halogenated byproducts can disrupt downstream steps. Our batches include comprehensive analytical profiles: HPLC, GC-MS, and moisture measurements. Chromatograms don’t just check a box; they help our customers predict behavior in coupling reactions, reductions, or further halogenations.

    The physical state arrives as a white to off-white crystalline solid, sometimes with a faint yellow tinge. We standardize bulk density and limit particle size variation to reduce dust and improve handling — a practical detail that downstream reactors appreciate, especially where precise dosing matters. Each drum is lined and closed under controlled humidity. Packaging sizes range from pilot-scale 20kg kegs to full-scale 200kg composite drums, all compliant with shipping standards for dangerous goods. Each lot number can be traced down to the specific day of charge and purification, giving reassurance to those who have ever spent days tracking down a stray impurity.

    Use Cases That Reflect Daily Industry Challenges

    In the agrochemical industry, we often engage with teams developing new herbicides and insecticides. Many pyrazole, pyridine, or triazine derivatives rely on 2,6-dichloro-3-(trifluoromethyl)pyridine as a building block. Substituting even minor deviations in isomer ratios or trace impurities can ripple through to the final biological activity of the end compound. We learned this through years of collaborative troubleshooting around residues, yields, and regulatory compliance for global approvals. Our analytical support lets R&D groups anticipate downstream behaviors in both research labs and commercial synthesis.

    Pharmaceutical partners put purity at the forefront, but our conversations with process chemists revolve just as much around supply reliability, batch uniformity, and after-sales data support. We have seen how a missed delivery of an intermediate can hold back entire multi-ton API campaigns. Supporting these lifecycles means safeguarding production with multi-site warehousing, redundant raw materials contracts, and the willingness to provide real-time batch data for regulatory filings or troubleshooting.

    Over time, specialty chemical startups reached out looking for consistent intermediates in electronic materials, especially for liquid crystal or OLED industries. We work with their teams directly, offering technical data and trial quantities for new process validation. Our technical staff has even assisted teams in mapping out impurity carryover through downstream electronic-grade synthesis. Our background as a manufacturer, not a broker, lets us respond quickly to process changes that competitors often struggle to meet.

    Key Differences: What Manufacturer Experience Delivers

    Walking the plant floor every week reminds our team how process repeatability, batch monitoring, and technical transparency shape the real user experience. Not all products on the market come from direct synthesis — brokers and repackagers cannot offer the data lineage or supply certainty that direct manufacturers do. That difference surfaces when a partner requests chromatographic fingerprints or batch-specific impurity breakdowns on short notice. Many distributors cannot furnish these numbers, and this limitation can become a real production risk to our customers.

    Our hands-on experience also shows in our response to raw material volatility. We constantly monitor supply security for upstream chlorinated precursors and fluorination reagents. This vigilance, paired with a full analytical archive, helps us flag drift in trace impurity loads before it ever hits our customer’s reactors. The feedback loop with our downstream partners sharpens our understanding of how even minor process tweaks influence end-use performance. Few resellers have the technical staff to hold face-to-face conversations with process engineers or deliver real-time adjustment of reaction conditions.

    Some manufacturers choose the easiest possible route to sales: bulk sales with the lowest possible cost structure. Our approach relies on batch-to-batch reproducibility, data traceability, and human support for real-world process questions. If the plant chemist calling our technical support line worked through the night troubleshooting a failed batch, our people recognize the urgency. Rapid, transparent data support and willingness to share test records are not optional extras; they’re standard expectations, born from personal investment in each kilogram shipped.

    Solid, Real-World Benefits of Direct Manufacturing

    In practice, sourcing directly from our plant gives end-users specific and often overlooked benefits. Our production logs for this pyridine derivative stretch back years, allowing us to spot patterns and help customers troubleshoot recurring formulation issues. When a multinational crop science firm faces a regulatory review, we provide full certificates of analysis and data on past shipments, right down to impurity profiling. That willingness to share information, and to stand behind it, comes from our seat at the reactor and not from an office removed from production.

    Our lab staff conducts method development tailored to customer requirements, testing synthetic compatibility in parallel with client samples. When someone struggles with a particular reaction bottleneck — persistent color, filter blockages, or unexpected side products — our chemists can replicate the problem in-house, identifying whether the issue traces to the intermediate or downstream processing. This process is only possible when primary synthesis, purification, and analytical labs work in close proximity and under direct management. By contrast, companies that lack their own production facilities can run into delays, as they seek answers from fragmented suppliers that may not share either the data or process knowledge required to get production back on track.

    Regulatory scrutiny falls heavily on pyridine derivatives, with evolving demands on trace impurity thresholds and full synthetic disclosure in key jurisdictions. Direct manufacturing means our customers access a data archive covering multi-year trend analysis. We track residual solvent loads down to parts per million and monitor for known mutagenic impurities. Many clients tell us that these concrete details speed up their product registrations and reduce project risk. This sort of material support is often lacking when a product trades hands multiple times before reaching an end user.

    Supporting Innovation With Technical Partnership

    Every breakthrough compound — especially in modern agrochemical and pharmaceutical research — comes from a foundation of reliable intermediates. Over the years, we have learned to view our production lines not just as facilities but as extensions of our customers’ own R&D setups. We welcome joint process development, from targeted impurity reduction to developing custom purification protocols. Our technical group routinely collaborates with process engineers and synthetic chemists, addressing everything from kilo-lab scale evaluation through to full-scale campaigns.

    Our on-site experts conduct root cause analysis, blending practical factory experience with laboratory insight. If a customer changes a downstream synthetic route or notices a new peak on their chromatogram, we provide real-time feedback and process adjustment support. Only direct presence at the reactor, and years of experience with specific process bottlenecks, allow this degree of technical responsiveness. Our team understands how innovation often leans on prompt, detailed feedback, especially when scaling up or shifting feedstock lots.

    Challenges and Real-World Solutions in Modern Pyridine Intermediate Production

    Making high-value pyridine intermediates in a modern regulatory and environmental landscape never stays static. Our plant has faced its share of raw material price fluctuations, energy cost surges, and tightening emissions limits. Reactive halogenated feedstocks present hazards that require specialized containment and safety protocols — learned firsthand from plant upgrades, incident reviews, and staff training. Rather than outsourcing the problem, we invest in in-house treatment and waste minimization, directly reducing the risk faced by our downstream customers. We have installed advanced scrubbing systems and run regular safety drills, aiming to keep compliance central to daily operations.

    Some manufacturers struggle with consistency as scale increases. Tightly controlled small-scale runs often produce cleaner material, but introducing large-scale heat transfer, mixing, and reflux can shift impurity profiles. Our operation tracks every scale-up phase, continuously refining conditions to keep impurity fingerprints in line with customer expectations. Customers dealing with research-scale procurement see that the specifications match those of multi-ton shipments, avoiding nasty surprises during scale-up campaigns.

    Long-term relationships with customers and suppliers alike help secure upstream stability. Where some distributors pivot from one-lowest-cost supplier to the next, we negotiate long-term contracts and maintain buffer stocks of critical reagents, insulating downstream partners against severe supply shocks. Every lesson from past disruptions shapes practical policies for the present — building flexibility into delivery schedules and warehousing multiple drum sizes to accommodate customer-specific inventory needs.

    Tailored Packaging and Shipping, Backed by Pragmatic Logistics

    Shipping a hazardous intermediate like 2,6-dichloro-3-(trifluoromethyl)pyridine takes more than ticking off regulatory transportation boxes. We train our logistics staff directly, exclude third-party packagers from the process, and test every batch before shipment. Our drums and kegs use high-resistance liners and tamper-evident closures, reducing both storage risks and contamination. Refrigerated storage, temperature indicators, and humidity monitoring are available for customers with particularly sensitive downstream processes.

    Timely delivery means real risk mitigation for buyers working under tight production windows. We maintain close coordination between plant and warehousing, providing up-to-date reporting on shipment progress and immediate response to inventory changes. Our clients often share stories of past logistical failures when relying on indirect sellers — missing paperwork, poorly stacked containers, or slow customs response. Years of direct shipment experience let us anticipate and head off most of these pitfalls before they materialize.

    Transparency in Analytical Support

    Our QC lab takes pride in rigorous testing, and partners always receive certificates matched to batch numbers and production dates. We regularly perform third-party independent verification, sharing unrestricted chromatographic data, spectral fingerprints, and moisture titrations. Customer audits — whether remote or on-site — have open access to production records and quality systems, strengthening both regulatory filings and technical partnerships. Over the years, this approach paid off: our customers’ requests during regulatory inspections or in-house troubleshooting never meet a wall of missed paperwork.

    Technical support never stops at point of sale. If a customer identifies an unknown impurity or recurring process challenge, our analytical and production chemists collaborate, sharing raw data and investigating alternative purification techniques. Supporting our partners means standing on the same factory floor and delivering evidence-based process insight, rather than quoting abstract data tables detached from practical outcomes.

    Trust Built Through Direct Manufacturing Experience

    Each kilo produced comes with the direct backing of our production, quality assurance, and logistics teams. We understand the stresses and real-world constraints facing downstream chemists and plant managers; the long nights, stringent timelines, and tight regulatory expectations shape our support every day. Should a challenge arise — whether process, purity, or logistics — we tackle it with the same urgency as if it were on our own floor.

    Direct experience teaches that reliable intermediate supply comes down not just to theoretical product specs, but to consistent, reproducible, and accountable operations. Our 2,6-dichloro-3-(trifluoromethyl)pyridine reflects decades of practical problem-solving in chemistry, supply chain, and customer service. By standing behind every shipment, providing real data, and listening closely to users at every level, we help partners rely on both the material and the people delivering it.