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HS Code |
331060 |
| Product Name | 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride |
| Cas Number | 112344-34-8 |
| Molecular Formula | C8H3ClF4O |
| Molecular Weight | 228.56 |
| Appearance | Colorless to light yellow liquid |
| Boiling Point | 89-91°C at 12 mmHg |
| Density | 1.454 g/cm3 |
| Purity | Typically ≥98% |
| Smiles | C1=CC(=C(C(=C1F)C(=O)Cl)C(F)(F)F) |
| Refractive Index | n20/D 1.498 |
| Solubility | Reacts with water; soluble in organic solvents |
| Storage Conditions | Store in a cool, dry place, tightly closed |
As an accredited 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle with a secure screw cap, labeled "2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride, 25g" with hazard warnings. |
| Shipping | 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride is shipped in tightly sealed, chemical-resistant containers under cool, dry conditions. It is transported as a hazardous material, following regulations for corrosive and potentially toxic substances. Appropriate labeling, documentation, and protective packaging are used to ensure safety and prevent leaks or environmental contamination during transit. |
| Storage | 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride should be stored in a tightly closed, corrosion-resistant container under a dry, inert atmosphere, such as nitrogen. Keep it in a cool, well-ventilated area away from moisture, heat, direct sunlight, and incompatible substances such as bases, alcohols, and oxidizing agents. Handle with proper personal protective equipment to avoid inhalation and contact with skin or eyes. |
Applications of 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride in Industrial Manufacturing2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride serves as a specialized intermediate in advanced chemical synthesis, supporting critical downstream applications in the pharmaceutical, agricultural, specialty polymer, and fine chemical fields. As an actual manufacturer, we supply to diverse industries with strict adherence to international quality and compliance regimes, ensuring reliable performance in each final product line. 1. Pharmaceutical API Synthesis: Fluorinated Benzamide Building BlocksThis compound is widely used as a key acylating agent during the synthesis of various fluorinated benzamide-based active pharmaceutical ingredients (APIs). Its unique structural properties contribute to enhanced metabolic stability and target binding efficiency in the drug development process, especially within oncology and CNS pipeline products. Process engineers incorporate this intermediate during the late-stage condensation step for molecule customization and regulatory-compliant impurity profiles. Industry compliance standards
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2. Agrochemical Intermediate: Herbicide and Fungicide SynthesisIndustrial formulators utilize this material as a benzoyl chloride component to produce active fluorinated intermediates for high-performance herbicides and fungicides. This increases hydrolytic stability and environmental resistance in final crop protection products. The compound enters multi-step syntheses, enabling selective acylation to improve target selectivity and degradation profile in rigorous field application scenarios. Industry compliance standards
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3. Specialty Polymer Additives: Performance-Enhancing ModifiersThis compound acts as a reactive intermediate for the modification of engineering plastics and fluorinated polymer systems needing higher weather and solvent resistance. Polymer chemists incorporate the benzoyl chloride during the functionalization stage to achieve specific surface activity and bulk property enhancements, particularly for electronics and automotive thermoplastics exposed to harsh environments. Industry compliance standards
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4. Fine Chemical Synthesis: High-Purity Fluorinated DerivativesThe material provides a critical acylating reagent in custom synthesis of bench-scale and pilot-scale fine chemicals. Research and industrial groups use it to introduce both the fluoro and trifluoromethyl groups into target compounds, optimizing physicochemical characteristics such as volatility, refractive index, or fluorine content for catalysis or analytical reagent supply chains. This serves essential needs in contract manufacturing as well as specialty downstream analysis. Industry compliance standards
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Every customer who chooses to work directly with a manufacturer expects more than a promise—the expectation is for tangible consistency, clarity on how products are made and handled, and real accountability. We know this, because over decades, we have built our track record molecule by molecule, customer by customer. In the field of specialty chemicals, suppliers often shuffle inventory, passing along molecules they haven’t touched or traced. As direct producers of 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride, every gram comes out of our own reactors, under our eyes, with safety and reproducibility as priorities from start to finish.
This molecule stands out for several reasons in advanced organic synthesis. The combination of a fluoro and a trifluoromethyl group on the benzene core, joined to the reactive acid chloride function, gives it a blend of stability and reactivity well-suited for introducing complex fluorinated motifs into more elaborate chemical targets. Chemists rely on these attributes, since finding a balance between functional tolerance during reactions and efficient delivery of the key moiety often separates success from failure in multi-step syntheses.
Most buyers of 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride do not see the time and care that goes into calibrating each critical run. The process involves tightly regulating temperature, maintaining inert atmospheres, and tracking data from batch records—backed by traceable raw material lots. In our facilities, we’ve learned that the selection of starting fluorobenzenes, the sourcing of trifluoromethylation reagents, and the purification steps all influence the color, purity, and shelf stability of the final product. Residual moisture, tiny silica content from filtration, or minuscule hydrolysis during packing can impact a customer’s subsequent step, especially if the product will serve as a synthon for pharmaceuticals or agrochemicals.
On the analytical side, every lot is subjected to NMR, GC-MS, and water content analysis. We have seen demand from research groups who appreciate the fine details—whether it’s limiting byproduct anhydrides or minimizing darkening that sometimes accompanies long-term storage of acid chlorides. By offering consistent purity above 98 percent, and color standards from nearly colorless to pale yellow, we eliminate surprises in our partners’ labs.
Most of our customers have specific purity requirements, and we react directly to that. For industrial users, we can supply multi-kilo pallets packed in fluoropolymer-lined containers to avoid degradation during shipment and storage. For discovery-scale or academic use, smaller amber glass bottles are available, capped under dry nitrogen. Handling and packaging are not clerical afterthoughts—they’re an extension of process control. We have customers who run automated dosing systems and need reliable viscosity and pourability even at low temperatures. In response, we log real measurements alongside every batch record, including color on the APHA scale and gas evolution metrics for shipment safety.
A lot of this attention to detail comes from past projects. Years ago, a pharmaceutical team flagged instability and unwanted polymer formation from off-spec acid chloride. That episode led us to implement tighter pre-shipping review, and it underlined the importance of shipping fully documented materials—not just purity, but free acid level, known trace impurities, and recommended storage protocols.
In this business, many sources operate as intermediaries, simply rebottling or relabeling what they acquire. Because we oversee each reaction, our technical team tracks not just final quality but how small changes in process conditions play out in real-world results. For instance, we discovered that certain sources of fluorinated benzene can contain microlevels of halogenated byproducts leading to off-target reactivity. Close tracking at the manufacturing stage allows us to choose feedstocks with the lowest unwanted impurity profile. That’s something a reseller cannot assure.
Our team frequently collaborates directly with customers’ chemists. If a customer wants extra assurance, we provide in-house stability data under different storage atmospheres. On request, we can run pilot variants to tweak the product grade for process optimization—an option that traders or repackers simply cannot match. When there is a production hiccup or the need for reprocessing, as manufacturers, we address it without delay or excuse. We document batch-to-batch reproducibility over consecutive weeks or months. There is no substitute for that continuity, especially when scaling up from milligrams to hundreds of kilograms.
Our partners in medicinal chemistry count on this product as a building block for complex heterocycles. Researchers focusing on new fluorinated pharmaceuticals have emphasized the importance of minimizing trace metals and halide-related artifacts. From polymer labs in Asia, requests have come for tighter controls on residual chlorinating agents for smooth downstream polymerization. We have learned to produce tailored lots, managing these specifics with transparency and flexibility.
In the crop protection sector, formulators tend to stress bulk handling and safety. For them, we offer technical support, fast track documentation, and advice on extended storage at different climates. Years back, one batch endured an ocean crossing in a heatwave. Because we had logged stability under such conditions, we traced minor yellowing back to shipment temperature spikes—information that helped the customer avoid a future repeat. That learning prompted us to invest in data loggers and strict pre-shipment QC for each drum.
Anyone working with acid chlorides recognizes their reactivity and the need for vigilant handling. Over the years, our shopfloor experience with 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride has led us to refine everything from PPE protocols to secondary packaging materials. Every batch worker, whether weighing material into kilos or milligrams, wears full-face shields, gloves, and acid-resistant aprons. We maintain emergency wash stations and provide detailed process and hazard briefings to all staff before production runs. These steps are not mere compliance—they’re rooted in direct lessons learned on-site.
As for external shipments, we package material in UN-certified vessels, with absorbent and desiccant pouches as standard for each shipment. The containers resist hydrolysis and accidental breakage, based on real incidents over several decades. We also coordinate hazardous material documentation for international customers, foreseeing customs delays or checks. Problems with other suppliers often trace back to simple lapses in packaging or incomplete paperwork—costs we aim to eliminate by investing in experienced logistics partners and training in-house staff carefully.
The move from discovery chemistry to production scale creates new challenges with every stage-up. Smaller trial lots often perform differently than bulk material due to factors that only emerge when quantities increase—everything from heat transfer to subtle differences in agitation and wash steps. As a manufacturer, we have lived through the headaches of scaling unexpected exotherms, trace byproduct formation, and even off-odors. Teams relying on us don’t just want paperwork—they call us for details on real-world performance, process tweaks, or scale-up wins and losses. We keep those channels open.
Having an in-house technical team on both synthesis and QA allows us to replicate and optimize conditions from gram-scale up to multi-ton shipments. Regular communication with customers drives process improvements, whether it’s tweaking purity specifications, altering packaging methods, or identifying alternate transport routes for difficult markets. Years of experience have taught us that trace differences discovered at the bench often ripple out into headaches or triumphs on the plant floor. Direct manufacturing ensures faster feedback loops, more control, and a learning culture that ultimately serves both our own interests and the wider scientific community.
As fluoroaromatic acid chlorides go, this molecule offers a unique kinetic profile thanks to the ortho-fluorine and para-trifluoromethyl groups. In our experience, this trifluoromethyl group inhibits certain side reactions common with the more basic chlorobenzoyl chlorides, allowing cleaner reaction profiles and harder-to-achieve selectivity in certain condensations and acylations. The increased electron-withdrawing power tunes reactivity for specific cross-couplings or amide formation, often enabling milder conditions and reducing formation of problematic tars or overacylation products.
We produce a range of benzoyl chlorides featuring different aromatic substituents. Through studying yields, impurity loads, and user feedback, we’ve found that 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride delivers higher reliability in routes seeking both metabolic stability and targeted fluorine placement—they often cannot substitute a mono-fluorinated or mono-CF3 product and obtain the same performance. For instance, attempts to use a mono-fluorinated acid chloride in certain cyclizations lead to unwanted hydrolysis or isomer formation, wasting both time and material. From the feedback we gather and our own troubleshooting, users in pharmaceutical, agrochemical, and material science fields prefer this product when project success depends on precise control of reactivity and clean transfer of structure into final molecules.
Our site engineers have tracked warehouse inventories for both 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride and its close relatives. Demand for the dual-substituted compound has risen as research into next-generation fluorinated bioactive molecules accelerates. In production, we assemble parallel data on other aromatic acid chlorides to tune offer and costs effectively in response to real-world market needs. Cost pressures never override quality here—repeat customers have come to us after other supply chain sources failed to meet the same standards or transparency.
Transparency is an overused word in this industry. For us, it means answering direct questions, providing as much detail as the customer requires, and not hiding behind generic documents or incomplete disclosures. Drawing on our actual batch history, we share not only certificates of analysis, but also processing notes and, if needed, the story of challenges resolved in a specific production run. As a direct manufacturer, we see every defect, shortcoming, or packaging wrinkle for what it is—a learning opportunity. We do not pretend perfection, but we always act to improve and communicate openly about process changes, raw material adjustments, or supplier vetting outcomes.
In some cases, a customer’s project will require adjustments in process—whether it’s to minimize energy costs, alter a minor impurity, or pivot to a heavier load due to a new downstream route. We make it part of our promise to follow through, drawing on years of run data and hands-on troubleshooting. For us, selling a specialty molecule like 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride isn’t a one-off transaction. Each new order continues a technical dialogue that leads to long-term trust.
Chemical production faces tighter pressure from both regulators and communities. We have prioritized moving from legacy chlorinating agents toward greener, less hazardous alternatives. By studying lifecycle impacts, we reduced offgas and effluent loads from our primary acid chloride lines, retrofitted process scrubbers, and installed on-site solvent recovery systems. Our QC team tracks all shipments for compliance with Europe’s REACH standards and other international frameworks, often going above baseline legal obligations. Years of inspections and collaboration with health and safety bodies have resulted in more robust environmental metrics, reduced waste, and stronger risk controls.
Our experience proves that complying with changing regulatory landscapes while protecting both people and the environment is not only manageable but beneficial to long-term business. The trust we have built with downstream users comes partly from taking the initiative to exceed minimum regulatory standards—often anticipating new requirements before they are enforced.
Many chemical users settle for unpredictable lead times or unexplained batch variation when buying from distributors or speculators. By working directly with the producer, our partners receive not only product but the benefit of institutional memory stretching back through thousands of batches made, shipped, and supported in the field. We have weathered raw material shortages, transportation strikes, and shifting demand from global research. Our customers never receive vague promises; they have full visibility on batch composition, shipment timing, and variance histories.
This hands-on manufacturing experience informs our guidance to customers scaling up or shifting markets. If a laboratory in one region needs to meet different certification, we work to match documentary and analytical requirements. If a formulation team encounters unforeseen side reactions, our synthesis staff can suggest adaptations grounded in the chemistry, not empty conjecture. The willingness and ability to support customer needs with authentic, grounded expertise distinguishes our offering from that of brokers or speculators. Reliability, transparency, and technical know-how have become our trademarks.
We believe that the best specialty chemicals emerge from both technical stewardship and a culture of learning. For 2-Fluoro-6-(Trifluoromethyl)Benzoyl Chloride, ongoing development hinges on persistent testing of new synthesis routes, improvement in isolating and purifying both intermediates and end stages, and a real willingness to refine manufacturing models as scientific literature and industrial demand evolve. We coordinate with academic consortiums and private research partners, exploring catalytic and non-chlorinated routes, while continuing to refine safe and scalable versions of tried-and-tested processes. This work is painstaking, but our best learning comes directly from the challenges our clients set us, and from the minor defects we catch and correct before they ever leave our site.
Through this approach, our team remains ready not only to serve current needs, but to anticipate future shifts in reactivity, regulatory expectation, or supply preferences—keeping the dialogue open, the chemistry sharp, and the trust unbroken.