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3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride

    • Product Name 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride
    • Alias 3-Chloro-2-fluoro-5-(trifluoromethyl)benzoyl chloride
    • Einecs 813-533-6
    • 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

    225599

    Product Name 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride
    Molecular Formula C8H2Cl2F4O
    Molecular Weight 261.00 g/mol
    Cas Number 886372-49-0
    Density 1.6 g/cm³ (approximate)
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥97%
    Solubility Reacts with water, soluble in organic solvents
    Storage Conditions Store in a cool, dry place, tightly closed, under inert atmosphere

    As an accredited 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 100g amber glass bottle features a screw cap, hazard labeling, chemical name, supplier details, and safety instructions for 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride.
    Shipping 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride is shipped in tightly sealed, chemically resistant containers under cool and dry conditions. It is classified as a hazardous material and handled with appropriate safety precautions, including labeling for corrosivity and potential toxicity. Shipping complies with relevant local and international regulations for dangerous goods transport.
    Storage Store 3-Chloro-2-fluoro-5-(trifluoromethyl)benzoyl chloride in a tightly sealed container, under a dry, inert atmosphere such as nitrogen or argon, and away from moisture and incompatible materials like strong bases or amines. Keep in a cool, well-ventilated chemical storage area, protected from direct sunlight. Handle with appropriate personal protective equipment and follow all safety protocols.
    Application of 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride

    Applications of 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride in Industrial Manufacturing

    3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride is a highly specialized intermediate widely utilized in complex chemical syntheses. As a direct manufacturer, we focus on supplying this compound for advanced downstream integrations, ensuring technical conformity and production efficiency per sector. Below, we detail its main industrial applications with emphasis on compliance, ratio, process stage, and resulting product types.

    1. Agrochemical Active Ingredient Synthesis

    This compound is an essential building block in producing selective herbicide and fungicide actives. Chemical synthesis routes require its integration in the acylation or coupling stages to install functional motifs critical for bioactivity. Consistent batch-to-batch quality maintains synthesis yields and limits impurities. End users typically require traceability for regulatory audits when formulating pre-emergence or post-emergence weed controls.

    Industry compliance standards

    • ISO 9001:2015 Quality Management in Synthesis
    • EU Council Directive 91/414/EEC on Plant Protection Products
    • EPA 40 CFR Part 158, Section L—Data Requirements for Conventional Chemicals
    • REACH Regulation (EC) No. 1907/2006 Registration

    Typical usage ratio

    • 0.8–1.2 equivalents relative to the coupling nucleophile, adjusted per target molecule and reactivity of downstream components

    Downstream process integration

    • Enters the acylation stage, reacting with advanced intermediates via Friedel–Crafts or Schotten–Baumann pathways; process temperature carefully controlled 0–30°C to minimize byproducts and maintain integrity of sensitive aryl moieties

    Final product types

    • Selective herbicide actives (e.g., substituted benzoyl derivatives for broadleaf weed suppression)
    • Systemic fungicide technical concentrates
    • Chlorofluorinated agro intermediates for further modification
    • Ready-to-use crop protection solutions after downstream formulation

    2. Pharmaceutical Intermediate for API Synthesis

    Pharmaceutical manufacturers employ this chlorofluoroaroyl chloride in multi-step synthesis routes, introducing it in late-stage acylation to create advanced intermediates or protected building blocks of APIs. Our material meets traceability and purity requirements for cGMP environments, minimizing risk of heavy metals or residual solvents. Each batch is accompanied by in-house analytical data suitable for QP review.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 Current Good Manufacturing Practice
    • European Pharmacopoeia 11.0 (where downstream APIs are monographed)
    • USP <467> Residual Solvents Control

    Typical usage ratio

    • 0.95–1.1 molar equivalents per nucleophilic intermediate; fine-tuned according to stepwise yield optimization protocols and regulatory documentation on process mass efficiency

    Downstream process integration

    • Incorporated in penultimate step under nitrogen atmosphere; feeds directly into acylation reactors equipped with inline analytics (HPLC, FTIR) for intermediate verification and impurity control

    Final product types

    • Pharmaceutical intermediates bearing electron-deficient benzamide substructures
    • Fluorinated or chlorinated starting materials for CNS and cardiovascular drug synthesis
    • Protected synthons for regulatory filings (IND, NDA submission batches)
    • Active pharmaceutical ingredients after downstream deprotection and crystallization

    3. Specialty Polymer Precursors

    The trifluoromethylated benzoyl chloride moiety serves as a reactive endcap or chain extender in producing high-performance specialty polymers, such as fluorinated aromatic polyimides and polyesters. These polymers demand rigorous raw material purity to avoid property-degrading defects or inclusion of halogenated byproducts. Manufacturers loading this monomer ensure tight process control to achieve target molecular weights with consistent surface and dielectric properties.

    Industry compliance standards

    • ISO 9001:2015 Quality Management
    • UL 94 Flammability for Finished Plastics
    • ASTM D3418 for Measurement of Polymer Transition Temperatures
    • RoHS Directive (EU) 2015/863 for Electrical/Electronic Application

    Typical usage ratio

    • 3–10 mol% of total diacid chloride or monomer mix, based on desired polymer chain length and final glass transition or breakdown voltage targets

    Downstream process integration

    • Added during polycondensation as a key functionalized monomer, requiring precise stoichiometry and controlled addition rates; process monitored by NMR or GPC to ensure complete reaction and suppressed side-chain hydrolysis

    Final product types

    • High-frequency electronic films with enhanced dielectric constants
    • Thermal-stable coatings for aerospace insulation
    • Membranes for specialty separations or harsh chemical environments
    • Custom fluorinated engineering plastics for integrated circuit manufacturing

    4. Liquid Crystal Material Synthesis

    Manufacturers of advanced liquid crystal display materials use this halogenated benzoyl chloride as a prominent building block for synthesizing difluorinated or trifluoromethylated esters and biphenyls. Such structural motifs impart precise phase behavior and switching thresholds in display and sensor technology. Application in this field mandates extraordinary consistency and trace-level impurity control to prevent pixel drift or off-spec optical response.

    Industry compliance standards

    • JIS C 6122-3 Japanese Industrial Standard for Liquid Crystal Materials
    • IEC 61290-1 International Electrotechnical Commission Safety Standards
    • IEC 60068-2-1 Test for Environmental Endurance (LCD panels)
    • Company-specific LC material manufacturing specifications

    Typical usage ratio

    • 0.5–1.5 equivalents per corresponding alcohol or amine, with final composition determined by optical birefringence or viscosity calibration requirements of specific panel applications

    Downstream process integration

    • Introduced in key condensation reactions to assemble rigid-rod LC structures; process managed with in-process LC-MS and volatility controls to minimize loss of function and ensure batch traceability

    Final product types

    • Liquid crystal monomers and oligomers for TN, IPS, or VA mode displays
    • Intermediate compounds for high-temperature or UV-stable LC materials
    • Advanced compounds for optical sensors and light modulators
    • Custom LC blends for specialty instrumentation displays
    Free Quote

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    Certification & Compliance
    More Introduction

    Experience Behind 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride: An Insider’s Take

    The Chemistry in Our Hands

    Every chemical coming off our line carries its own personality, quirks, and challenges. 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride stands out for both its consistency and the technical precision it demands from those who synthesize it. This isn’t a run-of-the-mill benzoyl chloride. The additional halogens — chlorine and fluorine — sitting beside that trifluoromethyl group lock it into a league apart from simpler analogues. Over years of batch reactions, distillations, and endless quality checks, we have learned what separates a passable batch from a top-tier product.

    Understanding Our Model and Specifications

    Anyone working in chemical development or manufacturing knows that a detail taken for granted with some reagents becomes a make-or-break issue here. For this molecule, the right boiling point, purity, and moisture content define its true usefulness. 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride, with its white to pale yellow appearance and distinct chlorinated odor, immediately signals if something’s off — an uneven color or a strange scent means going back to the drawing board. We target specifications that work in real industrial environments, ones that partners in pharmaceuticals and agrochemicals have requested after learning firsthand what small impurities can do downstream.

    We don’t rely on broad purity bands. Our labs have found that preparations above 98% purity, as confirmed by gas chromatography, mean a lot less reprocessing for customers later, less residue in reaction vessels, and less trouble with batch-to-batch variation. Moisture must be kept tight — trace water triggers hydrolysis, not just waste but also hazardous byproducts. Each lot we send out passes Karl Fischer titration and gas chromatography-mass spectrometry checks before loading drums or bottles.

    Where It Fits: Real-World Applications

    Where does all this detail matter most? After talking to formulators and process engineers over the years, one point surfaces regularly: reliability in complex syntheses. Whether building active pharmaceutical ingredients, custom fluorinated intermediates, or high-performance agrochemicals, our partners need a reagent that reacts the same way every time. This compound serves as a cornerstone for synthesis routes demanding precision and low failure risks. It doesn’t serve every chemistry, but where it fits, few alternatives offer the same clean halogenated backbone, which is why research groups and industrial-scale plants alike put it to work.

    One of its most valuable roles shows up in drug discovery labs. When medicinal chemists are tasked with engineering ever-more selective inhibitors or modulators, the trifluoromethyl and halogens inject metabolic stability and unique binding properties into their targets. All too often, less robust starting materials create side-products, requiring expensive chromatographic purification. Customers have shared stories — those who tried switching to cost-saving options sometimes find their downstream assays riddled with noise or see yield loss shoot up. Our process, with decades of optimization and waste minimization, keeps those troubles at bay. We’ve taken feedback on residue issues, acyl chloride stability, and process integration — every batch reflects what we’ve learned.

    Making It Right: Facility and Process Know-How

    Synthesizing 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride isn’t a textbook exercise, not at scale. Multistep routes, temperature controls tighter than most production jobs, inert atmospheres, and precise carrier gas flows — these are daily requirements for us. Setting a reactor at the wrong temperature or letting up on nitrogen blanketing has cascading consequences. You end up with colored or decomposed material, which doesn’t just affect one customer — residues can linger, cross-contaminating the next batch of even unrelated products. Years of learning are built into our cleaning and monitoring protocols.

    Scale-up presented another set of warnings. Stirring speed, addition rates, quench timing — what worked in the process lab failed in our first pilot production. We adapted, replacing outdated glassware with corrosion-resistant alloy reactors and investing in inline monitoring. Regular in-process checks using real-time IR and GC align output with expectations before moving to isolation or purification. Our staff receives monthly hands-on training, with practical troubleshooting drills because paper SOPs only get you so far when an exotherm or pressure spike hits.

    Facing Regulatory and Safety Hurdles Head-On

    The changing landscape of chemical legislation never lets up. All halogenated organics come under scrutiny for environmental and worker safety reasons. Regulatory authorities and customer audits demand transparency about production methods, traceability, and waste management. Our production runs for 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride align with the strictest workplace exposure controls, keeping operator risk to a minimum. With tightly sealed reactor systems and upgraded local exhaust measures, we keep airborne chlorinated gases at a fraction of occupational exposure limits, confirmed by regular monitoring.

    Hazardous process steps receive physical containment and remote monitoring, and we use closed transfers wherever possible to prevent accidental contact. The organic acid chlorides group triggers immediate attention. Hydrochloric acid formation is inevitable, so neutralization systems are placed at every point in the line. Safety drills mimic spill scenarios so every operator knows which protocols to follow. After a close call with a transfer hose some years back, we overhauled our connection systems to exclude manual coupling wherever possible.

    Waste handling for this molecule presents its own set of issues. Residual halogenated liquids tie up costly disposal. Through solvent recovery systems and onsite neutralization, less than 5% of our output now ends as hazardous waste requiring external destruction. Down the road, we plan to recycle even more starting material through process redesign and work with partners on greener synthesis, but for now, onsite treatment keeps our environmental profile responsible and audit-ready.

    How It Really Differs From Others in the Same Family

    Chemists unfamiliar with this molecule sometimes think of all acyl chlorides as interchangeable. After years with production lines and feedback loops, distinctions surface fast. Standard benzoyl chloride, without any halogen substitutions, reacts quickly and with fewer safety controls. The trifluoromethyl, chlorine, and fluorine atoms on our product modify not just its reactivity but also how customers use it in their processes. The stability against hydrolysis increases, but the activation profile for coupling reactions changes as well. Our partners in medicinal and crop protection chemistry see clearer reaction end-points and more manageable purification headaches.

    Other acyl chlorides lacking trifluoromethyl or multiple halogens often fall short in downstream selectivity. In heterocyclic chemistry, for example, having the fluorine and trifluoromethyl moieties on the ring influences yields during sulfonamide or amide formation. One key difference in feedback from process chemists boils down to batch reproducibility; competitors selling less-refined grades often deliver wider purity swings and increased levels of color bodies, byproducts, or hydrolyzed material due to less-controlled environments. Our difference comes down to what risk-averse manufacturers require: batch traceability, strict quality gates, and immediate transparency about anything unusual in the analytical profile.

    Solving Practical Problems for Partners

    Understanding what designers and users of complex molecules face daily shapes how we support them. New applications in custom agrochemical synthesis demand extremely low trace metals and no interfering byproducts. Customers working in regulated environments appreciate that we grant full access to analytical methods, so they can cross-check our data with their own systems. Years ago, when one pharma partner struggled with unexpected color variability and rogue impurities appearing during scale-up, joint trouble-shooting pinpointed trace moisture ingress during overseas transport. In response, we overhauled our packaging — triple-layered, vacuum-sealed drums, moisture buffer packs, and continuous monitoring for any sign of breach.

    For new-users trialing a switch from standard benzoyl chloride, we support process optimization with detailed recommendations based on real batches in real reactors. From exotherm management to end-point workup, sharing our direct experiences means fewer stoppages and less raw material waste, which directly impacts yield and project costs.

    Commitment to Consistency and Direct Relationships

    Large-volume manufacturers and startup R&D teams approach us with different needs, but all value straight answers. We supply product information based on working knowledge gained from repeating syntheses day in, day out. Finished lots come with full batch histories and analytical run records, so a formulation chemist can trace each container’s path from raw input to packed product. Our internal feedback loop — connecting production, quality, and technical service — means that reported issues push changes directly into our manufacturing SOPs and staff training.

    Making this material for years taught us not to assume all customers want the same batch size, shipping method, or support level. Some want samples for analytical validation, others need ton-scale shipments on short notice. Either way, our team manages order logistics, packing, and documentation seamlessly. After noting shipping route-driven temperature excursions, we ran stress tests on containment to guarantee protection against hydrolysis or color shift, regardless of weather or transit duration.

    Troubleshooting, Risk, and Continuous Improvement

    Every production run brings fresh opportunities for problem solving. Issues like minor shifts in impurity levels, color, or trace residual solvents can point to upstream raw material changes or process drift. We keep detailed logs of all parameter adjustments, linking in-plant measurements to product performance downstream. In one year alone, revising our washing and drying cycles tightened moisture control and saw customer complaints about trace acidity drop off. Our operators and lab staff carry this operational memory, so lessons learned on one shift shape how the next batch comes off the line.

    Regulations and customer needs push us towards greener, cleaner routes. Lowering reagent excess, recovering secondary products, and reducing auxiliary solvent volumes all show up in ongoing investment. Our goal is not just to meet current guidelines but to stay a step ahead. We remember what persistent organic pollution meant for previous generations in the chemical industry, and our strict separation of chlorinated and non-chlorinated waste streams means future audits bring no unwelcome surprises.

    Looking Ahead: Practical Improvements and Industry Input

    Years in this field exposed us to ideas that fizzle and others that prove transformative. Collaborating with research teams interested in greener benzoyl chloride chemistry, we constantly review alternative reagents, new solvent systems, and advanced containment tools. Sometimes a promising change in lab conditions fails at plant scale; other times, a small tweak in agitation or reagent charge solves a persistent bottleneck. The best insights come from end users, not just in-house development. Plant engineers at customer sites tell us about clogging issues, cleanup headaches, or unexpected exotherms — every report becomes part of our continuous improvement roadmap.

    For operations managers and chemists scoping out specialty benzoyl chlorides, hands-on feedback covering everything from storage stability to side-reactions means more than any standard data sheet. Sharing our blind alleys, batch failures, and fixes breeds the kind of relationship that spurs long-term success for both sides.

    Day-to-Day Realities in Handling and Use

    Chemical manufacture stretches beyond reactor charging and final drum labeling. Teams on the ground encounter obstacles unique to their site, climate, and production schedules. We provide not just a product, but a history of trials, lessons, and work-arounds. Partners get real-world tips for storing this acyl chloride safely, dealing with unplanned line downtime, and protecting their personnel from painful or hazardous incidents.

    Feedback-driven refinement marks every batch we ship. Though guidelines exist, nothing substitutes sharing actual incident reports and mitigation strategies. Whether it’s a drum left open for ten minutes or a slow leak detected by a sharp operator, each event gets flagged, discussed, and, if possible, prevented in subsequent shipments. Our own safety culture benefits, and so do our partners.

    Why This Product Matters, Beyond the Basics

    Beyond purity or price, supplying 3-Chloro-2-Fluoro-5-(Trifluoromethyl)Benzoyl Chloride means investing in partnerships based on unfiltered communication and mutual problem-solving. While molecule suppliers in specialty chemistry claim to sell “the same thing,” those doing the actual work know that experience-built practices, risk management, and rapid response separate short-term vendors from real partners.

    Complex acyl chlorides sustain industries that deliver new medicines and vital crop solutions. Each improvement, each avoided failure, each lesson logged in our process logs echoes through supply chains and finally into end-user results. Making this specific chlorinated, fluorinated benzoyl chloride isn’t glamorous, but decades spent perfecting the details made it reliable for the world’s pickiest chemists.