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2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine

    • Product Name 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine
    • Alias Fluorinert FC-3274
    • Einecs 628-145-4
    • 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

    377997

    Name 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine
    Cas Number 156340-36-4
    Molecular Formula C6Cl3F6N3
    Molecular Weight 329.44 g/mol
    Appearance White to off-white crystalline solid
    Boiling Point Decomposes before boiling
    Solubility Insoluble in water
    Synonyms TCTF; Tris(chlorodifluoromethyl)-s-triazine
    Structure Triazine ring with three chlorodifluoromethyl substituents at 2,4,6-positions
    Inchi Key DORKYQZFCDJWOD-UHFFFAOYSA-N

    As an accredited 2,4,6-Tris(Chlorodifluoromethyl)-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 The 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine is supplied in a 100-gram amber glass bottle with a secure screw cap.
    Shipping 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine should be shipped in tightly sealed, chemical-resistant containers under dry, cool conditions. Ensure proper labeling and compliance with hazardous materials regulations. Adequate padding and secondary containment are recommended to prevent leaks or spills. Handle with appropriate PPE and avoid exposure to moisture, heat, or incompatible substances during transit.
    Storage 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong acids and bases. Protect from moisture, direct sunlight, and sources of ignition. Store in a chemical storage cabinet designed for halogenated organic compounds, and label containers clearly to prevent accidental misuse.
    Application of 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine

    Applications of 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine in Industrial Manufacturing

    2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine serves as a performance-building block in highly specialized downstream sectors. Manufacturers apply this raw material for its controlled reactivity and unique halogenated triazine structure, which supports demanding industrial synthesis and formulation requirements. The following sections outline real-world industrial usage, compliance obligations, integration points, and finished product forms across key markets.

    1. Synthesis of High-Performance Flame Retardants (Electronics and Plastics)

    This compound is incorporated into halogenated flame retardant additives for electronics casing polymers, wire and cable insulation, and thermoset materials. It introduces both fluorine and chlorine elements for synergy in thermal decomposition inhibition, which is critical in fire safety certifications. Chemical manufacturers blend this raw material with brominated or phosphorus-based systems for custom flame retardant packages in consumer and industrial applications.

    Industry compliance standards

    • UL 94 (Standard for Safety of Flammability of Plastic Materials)
    • IEC 60695-11-10 and IEC 60695-11-20 (Fire hazard testing standards)
    • RoHS Directive (Restriction of Hazardous Substances in electrical and electronic equipment)
    • REACH Registration (EU chemicals legislation)

    Typical usage ratio

    • 2-8% weight for filled engineering plastics (adjusted based on base polymer flammability requirements)
    • Up to 15% in specialty PVC cable sheathing, combined with plasticizers and stabilizers

    Downstream process integration

    • Introduced during compounding in twin-screw extrusion for thermoplastics
    • Integrated into resin melt prior to casting for thermoset formulations
    • Reactive extrusion with other flame retardant synergists

    Final product types

    • Electronic device housings (laptops, routers, power supplies)
    • Cable jacketing for data and power transmission
    • Telecommunication equipment enclosures
    • Printed circuit board laminates

    2. Crosslinking Agent for Specialty Fluorinated Elastomers (Seals and Gaskets)

    In the elastomer industry, the triazine-based molecule functions as a crosslinking compounding ingredient for manufacturing high-performance fluororubber (FKM and FFKM) goods. Its structure introduces thermally stable linkages resistant to aggressive chemicals and extreme temperatures. Process engineers optimize the crosslink density and final mechanical properties by fine-tuning the amount relative to the polymer backbone and co-agents.

    Industry compliance standards

    • ASTM D1418 (Rubber and rubber lattices - Nomenclature)
    • ASTM D2000 (Classification System for Rubber Products in Automotive Applications)
    • ISO 23936-2:2011 (Non-metallic materials in contact with media related to oil and gas production)
    • FDA 21 CFR 177.2600 (Elastomeric materials for repeat use in food contact, for qualified applications)

    Typical usage ratio

    • Curative: 1.5-3.5 parts per hundred rubber (phr), typically 2.0-2.5 phr depending on the desired crosslink topology
    • Adjustable based on desired elasticity, swelling index, and service temperature range

    Downstream process integration

    • Mixer addition during masterbatch rubber compounding
    • Blending with fluoroelastomer base and reinforcing fillers
    • Vulcanization cure via press molding or continuous extrusion lines

    Final product types

    • Semiconductor-grade O-rings and seal rings
    • Chemical process pump diaphragms
    • Automotive turbocharger hose liners
    • High-purity gaskets for pharmaceutical and food sector installations

    3. Intermediate for Agrochemical Active Ingredients (Crop Protection)

    This chemical acts as a building block in the synthesis of advanced triazine-based herbicide and fungicide actives. Its difluoromethylchlorine substituents offer enhanced field stability and controlled environmental dissipation profiles, making it attractive for modern selective crop protection chemistry. Agrochemical plants use it to build complex molecules that provide weed and pathogen resistance.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • EPA 40 CFR Part 180 (US tolerances and exemptions for pesticide residues in food)
    • EU Regulation (EC) No 1107/2009 (Placing of Plant Protection Products on the EU Market)
    • ISO 9001:2015 (Quality management for agrochemical intermediates manufacturing)

    Typical usage ratio

    • Used stoichiometrically in active ingredient synthesis; ratios depend on reaction step (commonly 1.0–1.2 molar equivalents relative to co-reactant)
    • Residuals controlled to max. 0.2% in final technical grade API via purification

    Downstream process integration

    • Reacts in nucleophilic substitution or cyclization stage within batch or continuous reactors
    • Feeds directly into dedicated synthesis lines after intermediate storage under inert atmosphere
    • Subject to in-process HPLC and GC monitoring for conversion and purity

    Final product types

    • Selective herbicide actives for cereals and maize
    • Triazine-based fungicides for fruits and vegetables (active ingredient registration-dependent)
    • Pre-emergence weed control products
    • Export technical concentrates for formulation

    4. Photochemical Initiator Precursor for Advanced Imaging and Coatings

    The compound provides a source of highly reactive triazine radicals essential for high-resolution photoinitiators used in printed circuit board manufacture, UV-curable coatings, and specialty inks. Manufacturers react it with functionalized aromatic groups to achieve rapid on-command photolysis profiles. This enables fine pattern resolution and fast curing cycles in electronics and industrial graphics production.

    Industry compliance standards

    • IPC-4101 (Base materials for printed boards, including UV exposure requirements)
    • ISO 5-4:1995 (Graphic technology – Density measurements in transmission and reflection for imaging)
    • REACH compliance for volume thresholds of precursor photoinitiators
    • ISO 14001 (Environmental management for photoresist and ink formulators)

    Typical usage ratio

    • 0.5–2.5% by weight in standard UV-curable formulations for coatings and imaging layers
    • Usage optimized by photo-speed, light intensity profile, and film thickness

    Downstream process integration

    • Precursor functionalization in specialty chemical reactor lines
    • Addition to liquid or viscous formulation prior to coating or printing application
    • Follow-up by controlled UV or laser exposure in clean-room environments

    Final product types

    • Photoresist systems for PCBs and semiconductor lithography
    • UV-cured protective coatings for optoelectronics
    • High-resolution inkjet printing inks
    • Industrial label and security marking films
    Free Quote

    Competitive 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine: Experience From a Manufacturer’s Bench

    Driving Innovation With Specialty Triazines

    Long hours refining fluorinated chemistries have taught us how niche molecules shape the landscape of advanced materials, coatings, and synthesis intermediates. We introduce 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine (also known as TCDFMT), built on the 1,3,5-triazine core and equipped with strong electron-withdrawing chlorodifluoromethyl arms at three positions. During the development of this molecule, we focused on the stability, reactivity, and versatility needed in modern fine chemicals. Instead of offering a generic triazine, we manufacture this product following a fixed, repeatable multi-step process, controlling every batch for trace impurities and moisture content.

    What Sets This Triazine Apart

    Diving into the chemistry, the triazine ring forms a tough, symmetrical backbone, while each chlorodifluoromethyl group brings a unique blend of thermal resistance and fluorine functionality. That added fluorine content increases lipophilicity, reduces surface energy, and introduces chemical inertness, carving out uses others simply can’t match. Other triazines or halogenated rings often struggle to balance these traits—in our experience, triazines lacking this specific substitution pattern often degrade easily under processing conditions or don’t dissolve cleanly in modern solvents. TCDFMT keeps its form during high-temperature curing and wet chemistry, giving customers more leeway at scale-up.

    Choosing Reliable Specifications

    A reliable specialty chemical starts with the way the material is manufactured and validated. During QC, we use both ^1H and ^19F NMR, along with gas chromatography, so spectra match our internal standard for each lot. This approach narrows down batch deviations and guarantees the triazine you need for repeatable performance. Color should be bright, powder should flow freely, and any off-odors signal degradation. The particle size is measured by laser diffraction, typically aimed at a median of around 75 microns to fit most application setups, while offering custom grind sizes for specific reactor designs or processing needs. Water content remains under 0.1% w/w, as picked up by Karl Fischer titration, eliminating hydrolysis risks.

    Application Areas—Honest Assessment

    Over numerous collaborations with researchers and industrial partners, TCDFMT found most of its early adoption among manufacturers looking to create surface coatings with high hydrophobicity and resistance to chemical wear. In non-stick coatings, adding just a few percent of our triazine to a polymer matrix delivers a surface that shrugs off water, corrosion, and industrial solvents, outclassing many PTFE-only blends. We’ve watched manufacturers working with automotive finishes, flexible electronics, and protective membranes improve their yields and product lifespans.

    TCDFMT also enjoys demand as a crosslinker in the synthesis of specialized resins. Its threefold symmetry reacts predictably with a range of nucleophilic partners, such as amines and phenols—especially important where tight batch control and minimal side reaction matter. Research groups seeking new ways to introduce fluorine into medicinal scaffolds or agrochemicals come to us for this molecule, taking advantage of its controlled reactivity in condensation or addition chemistry.

    Comparing With Other Commercial Options

    Many specialty chemicals boast stability, but TCDFMT’s specific substitution means it holds up where dichloro- or tribromo-substituted triazines break down. Handling these analogs in our plant, we see the limits every day: lower shelf life, increased waste, time lost on purification headaches. Even popular s-triazines substituted with methyl or trifluoromethyl lack the polarity and steric bulk that TCDFMT provides. This impacts practical decisions in the lab—our product dissolves smoothly in dichloromethane, acetonitrile, and tetrahydrofuran, reducing the need for cosolvents or temperature ramps. Equipment cleaning between batches becomes less exhaustive, cutting plant downtime by measurable hours per month.

    We’ve watched triazines with lesser fluorination, like cyanuric chloride, fail in acid or base-catalyzed reactions under heat, leading to product loss and reprocessing. Our operators confirm TCDFMT does not hydrolyze under those same conditions, even after days in humid atmospheres. This translates to fewer rejected lots and reliably pure outputs, a fact appreciated by QA teams in pharmaceutical and specialty polymer facilities.

    The Realities Behind Synthesis and Supply

    Sourcing the starting materials for TCDFMT remains a constant test of planning and logistics. Fluorine intermediates and chlorine donors must meet strict purity—slight deviations lead to unwanted oligomers or discoloration. Maintaining a steady supply of these critical reactants pushes us to develop long-term partnerships with upstream suppliers. Batch reactors require constant monitoring, as our experience shows chain reactions can run amok given the energy released in these halogenation steps. Operators monitor internal temperature and pressure every few minutes, and any early shift in viscosity signals need for intervention.

    Waste handling presents its own challenges—chlorinated byproducts get neutralized onsite by stepwise alkaline treatment and thermal decomposition, reducing environmental impact and keeping us compliant with national waste standards. Each kilogram of output links back to tight control over process parameters and constant staff vigilance. Regulatory expectations on fluorinated compounds have grown, driving us to audit both plant emissions and worker exposure quarterly.

    Industry Trends Influence Choices

    The rising demand for durable, low-energy surfaces in the electronics and aerospace sectors pushed us to scale up production in recent years. Process improvements, like sealed mixing tanks and inline infrared monitoring, resulted from day-to-day lessons learned: early lots suffered from microcontamination during open-air cooling. Tightening our process eliminated these headaches, and feedback from downstream customers drove us to automate parts of quality control. We receive fewer returns, and now share anonymized batch data with regular customers to help them fine-tune their own formulations.

    Regulations shape customer preferences, too. As global focus increases on per- and polyfluoroalkyl substances, buyers ask for full documentation and environmental fate disclosures. Early on, we had to adapt our MSDS, production methods, and waste management practices to stay ahead of compliance issues. That experience carries over into every lot of TCDFMT that leaves our facility, which we can document for any certified environmental audit.

    Customer Experience Drives Improvements

    Being face-to-face with users and formulation experts, we learn the real-world strengths and weaknesses of TCDFMT. Some want more granular control on particle size or color, pushing us to develop secondary finishing steps like post-synthesis grinding and air-classification. We’ve updated filtration stages to further limit trace inorganic contaminants below detection, satisfying strict standards in microelectronics or pharmaceutical syntheses.

    Traditional compounds sometimes fail under new industry requirements—where oxidation stability, chemical inertness, or minimal extractables make the difference. Partnering with end-users, we run application trials at both our site and customer plants, tuning the process as needed. That’s shown us the importance of transparent communication—if a batch doesn’t meet expectation, we provide breakdowns of raw data, not marketing gloss.

    Supply Chain Stability Under Real-World Stress

    Global lockdowns and logistical bottlenecks exposed the vulnerability of complex chemical supply chains. TCDFMT supply, built on unique precursors, required us to diversify intermediates and invest in local purification lines. Our customer guarantees are built on this foundation, as bulk storage and made-to-order synthesis keep lead times reasonable. Unexpected requests for custom blends or grades accelerated our shift to modular production—allowing us to load, heat, and discharge in parallel, increasing output flexibility and reducing unexpected outages.

    This approach lets us absorb rush contracts for R&D or pilot runs that would otherwise jam a rigid production schedule. We stock enough qualifying material on-site to service both large-volume and short-turnaround orders, giving customers confidence their own supply won’t get derailed by distant backlogs.

    Lessons From The Laboratory

    Years on the plant floor taught us the importance of calibrating every reactor and watching for signs of unexpected side reactions. Early pilot runs flagged issues with exothermic surges and local pH drift that impacted product color and purity. We document these learnings in robust SOPs and daily logs, with every shift supervisor empowered to halt batches with out-of-spec temperature readings or foam formation. In production meetings, feedback from operators takes precedence, allowing real-world expertise to drive continuous improvement.

    Researchers aiming to introduce triazines with triple halogenated groups frequently face issues with reproducibility and handling hazards. We designed our plant process to minimize dust formation, using enclosed transfer and dust collection on filling lines—a step prompted by operator feedback on respiratory irritation during scale-up. Training covers emergency response and safe handling at every shift change, while QC teams test air samples for trace halogen content.

    Shaping The Future With Feedback

    Product improvement at our manufacturing site isn’t theoretical. Users describe shifts in workability or end-use properties, from lower melting temperatures in new polymer systems to enhanced dielectric resistance in coatings. We build this knowledge into revision cycles, consulting with research and technical contacts at leading application labs. We add new purification steps, validate hypotheses, and track whether those changes truly move the needle on user experience. This practical, feedback-driven approach proves its worth as expectations rise and applications diversify.

    Working alongside technical experts at major user facilities, we see new requests daily — ranging from improved flow for automatic dispensing to trace impurity data for specialized electronics. That real-world pressure shapes process upgrades and R&D priorities, not theoretical goals or marketing trends.

    Environmental and Safety Considerations

    As environmental scrutiny rises, ensuring TCDFMT’s safe use, disposal, and impact remains at the heart of production. Fluorinated and chlorinated molecules raise red flags if mishandled, so staff receive training on neutralization, spill response, and containment. Sensors monitor storage areas for leaks or airborne halides. Any off-spec product undergoes immediate remediation according to up-to-date environmental protocols, not just the minimum required by authorities. This commitment reduces neighborhood risk and supports a safer community around our site.

    We track global regulatory shifts and proactively adjust labeling, storage, and transport documents. Feedback from regulators and our own health and environment staff feeds back into standard procedures. Regular environmental monitoring assures us—and our downstream partners—that TCDFMT’s lifecycle remains compliant and as minimal in impact as the chemistry allows.

    Open Channels With End Users

    The most valuable information comes straight from the people blending our triazine into paints, polymers, or advanced composites. These conversations reveal which product traits matter most on the production line—whether that’s predictable melting, compatibility with plant solvents, or ease of handling during scale-up. We document and share field notes internally, aiming to improve both the product and user instructions.

    Feedback loops stay open after each shipment, letting us tweak particle size, packaging, or documentation based on evolving needs. That direct tie to the people who use what we make keeps us grounded, technical, and focused on real problems—rather than on abstract claims or theory.

    Summary of Real-World Impact

    A specialty chemical like 2,4,6-Tris(Chlorodifluoromethyl)-1,3,5-Triazine only succeeds through close attention to every process step, a commitment to feedback, and ongoing investment in process safety and product performance. From the first batch to the latest refinement, our triazine reflects the direct experience of operators, chemists, and customers. Differences from other products aren’t just theoretical—they emerge from bench-top tests, plant-scale runs, and the ongoing push to deliver value where standard materials fall short.

    By focusing on stability, predictable reactivity, and open communication, we help partners meet increasingly strict technical and regulatory standards. This approach isn’t driven by trends or short-lived demand, but by a steady focus on reliability, result-driven improvement, and respect for both the people who use our materials and the communities around our plant. That, for us, defines what sets TCDFMT truly apart.