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2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride

    • Product Name 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride
    • Alias BTP-Cl
    • Einecs 824-001-8
    • 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

    827339

    Chemicalname 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride
    Casnumber 428-59-1
    Molecularformula C3BrClF4O
    Molecularweight 243.39 g/mol
    Appearance Colorless to pale yellow liquid
    Boilingpoint 74-76°C at 760 mmHg
    Density 1.821 g/mL at 25°C
    Solubility Reacts with water
    Refractiveindex 1.410
    Meltingpoint -22°C

    As an accredited 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 100g, sealed with PTFE-lined screw cap, labeled with hazard symbols and chemical details, packed in protective secondary container.
    Shipping 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride must be shipped in tightly sealed containers, Clearly labeled, and protected from moisture. Transport should comply with hazardous materials regulations (UN identification, Class 8 corrosive), using secondary containment. Air or ground shipment must follow IATA and DOT guidelines. Safety documents (SDS) must accompany the shipment at all times.
    Storage 2-Bromo-2,3,3,3-Tetrafluoropropanoyl chloride should be stored in a cool, dry, and well-ventilated area, away from heat, moisture, and direct sunlight. Store in tightly sealed containers made of compatible materials (such as glass or PTFE-lined) under inert atmosphere (nitrogen or argon). Keep separate from acids, bases, and strong oxidizers. Handle in a chemical fume hood and use appropriate personal protective equipment.
    Application of 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride

    Applications of 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride in Industrial Manufacturing

    2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride finds precise roles in several high-value chemical sectors. As a specialized acylating and fluorinating intermediate, its industrial relevance emerges in the synthesis of advanced active compounds, enabling control of halogenation and fluorination under regulated production environments. The following sections detail the primary application channels based on real-world manufacturing usage.

    1. Agrochemical Active Ingredient Synthesis

    Manufacturers in the agrochemical sector use this compound to introduce both bromine and fluorine atoms into complex molecule frameworks for crop protection active ingredients. The molecule supports synthesis routes for selective herbicides and insecticides requiring high halogen content and specific molecular stability. Handling under strict process control ensures safe acyl chloride integration in multistep synthesis lines, maintaining performance and purity standards from raw material all the way to field-ready formulation.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • Chemical Control Regulations (REACH, EU Regulation 1907/2006)
    • Globally Harmonized System (GHS) for Safety Data and Labelling
    • OECD Guidelines for Testing of Chemicals

    Typical usage ratio

    • 5%–15% in intermediate synthesis steps, adjusted according to target compound scale and halogenation requirements.

    Downstream process integration

    • Feeds into early-stage halogenation or fluorination steps during active ingredient synthesis. Typically added via controlled addition in a jacketed reactor. Subsequent purification isolates target intermediate before further functionalization.

    Final product types

    • Trifluoromethylated herbicide actives
    • Bromo-fluoro insecticidal ingredient intermediates
    • Fluorinated fungicide building blocks
    • Crop protection co-formulant intermediates

    2. Pharmaceutical Intermediate Manufacturing

    The pharmaceutical industry uses this raw material to build up fluorinated and brominated molecular scaffolds for specialty intermediates. Controlled introduction of tetrafluoropropanoyl chloride units allows for the preparation of potent pharmaceutical precursors, enabling design of molecules with improved metabolic stability and targeting. Rigorous batch processing and validated cleaning protocols govern its use to ensure compliance with drug synthesis standards.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia requirements
    • cGMP Guidelines (ICH Q7A, US FDA 21 CFR Part 210/211)
    • USP–NF (United States Pharmacopeia–National Formulary)

    Typical usage ratio

    • 2%–8% based on the stepwise addition to each reaction batch; exact ratio determined by stoichiometric calculations for target API intermediates.

    Downstream process integration

    • Introduced in fluorination or bromination coupling stages of active pharmaceutical ingredient (API) intermediate synthesis, prior to final ring closure or side-chain modifications.

    Final product types

    • Fluorinated piperidine intermediates
    • Brominated heterocyclic compounds
    • Active pharmaceutical ingredient precursors
    • Advanced medicinal chemistry scaffolds

    3. Electronic Chemicals and High-Purity Fluorochemicals

    This material serves as a critical intermediate for fabricating fluorinated molecules needed in semiconductor manufacturing and specialty electronic chemicals. Producers value its targeted halogenation footprint and reactivity during the synthesis of cleaning agents, etchants, and compounds enabling functional layer construction on electronic devices. Downstream applications demand stringent impurity control and absence of heavy metal contamination.

    Industry compliance standards

    • SEMI E49.6-0709 (High-Purity Chemical Handling)
    • ISO 14001:2015 Environmental Management
    • RoHS (Restriction of Hazardous Substances) compliance
    • Electronic Grade Purity Specification (based on SEMI standards)

    Typical usage ratio

    • 3%–12% by weight in precursor compound mixtures; precise level dependent on targeted fluorination efficiency in the downstream product.

    Downstream process integration

    • Used as a key halogenating agent during precursor synthesis for photoresist chemicals and etching gas production. Introduced under controlled, inert conditions to maintain purity and reactivity for microelectronic applications.

    Final product types

    • PFPEs (Perfluoropolyether lubricants)
    • Fluorinated photoresist monomers
    • Specialty cleaning agents for wafers
    • Electronic etching gases

    4. Specialty Polymer and Fluoropolymer Building Block Synthesis

    Producers use this raw material to introduce reactive bromo and tetrafluoropropanoyl groups into polymer backbones. The resulting fluoropolymers maintain thermal and chemical resistance for specialty film, membrane, and coating markets. Integration takes place at carefully defined chain-growth or step-growth synthesis stages, with vigilant removal of residual acid chlorides post-reaction to protect polymer quality.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for Polymers
    • ASTM D543 Chemical Resistance Testing
    • FDA 21 CFR 177.1550 for fluoropolymer food contact applications (where relevant)
    • RoHS Directive for electrical polymer usage

    Typical usage ratio

    • 0.5%–4% relative to total monomer charge, modulated according to desired polymer chain length and halogen atom density.

    Downstream process integration

    • Added to polymerization reactors during initial monomer feed or post-polymerization modification. Ensures introduction of functional side groups onto polymer chains for chemical and thermal property enhancement.

    Final product types

    • High-performance fluoropolymer resins
    • Specialty gas barrier films
    • Chemical-resistant membranes
    • Protective industrial coatings
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    Certification & Compliance
    More Introduction

    Introducing 2-Bromo-2,3,3,3-Tetrafluoropropanoyl Chloride: Product Overview from the Manufacturer’s Lens

    From Years on the Line: Why We Make This Molecule

    Working as hands-on producers of specialty fluorochemicals, we draw on years of practical experience handling raw material logistics, optimizing reactions, and watching products move from reactor to final drum. Among the range, 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride stands out for its unique chemical arrangement and the value it brings to those pushing frontiers in pharmaceuticals, crop science, and advanced materials.

    We recognize value where molecular structure meets customer need. The tight integration of bromine and multiple fluorines within a single three-carbon backbone places this compound in an unusual camp: high chemical reactivity, selectivity, and resistance to unwanted side reactions. Time and again, our partners in R&D and manufacturing return for this product when classic nonfluorinated acyl chlorides or simpler fluorinated analogs run into performance walls—whether that’s incomplete fluorination, instability, or lack of functional handles for downstream chemistry.

    Origin and Manufacturing Realities

    Day-to-day, production at scale teaches respect for nuance. We source precursors carefully to meet downstream strictures on any contaminants and manage moisture control like clockwork. 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride isn’t forgiving to shortcuts. That’s down to its acid chloride function and high bromine content. Temperatures and work-up parameters benefit from tight adherence to process specs.

    At the heart of our method sits halogen exchange chemistry, followed by selective acylation under strictly anhydrous settings. Over time, we’ve reduced impurity profiles to trace levels, especially focusing on chlorides other than the desired group and on partially fluoro-substituted side-products. The product, once isolated, remains clear and nearly colorless, handled under nitrogen until safely packaged.

    Putting This Molecule to Work

    Clients aiming for high-value fluorinated molecules seldom grab a catalog bottle and hope for the best. They work back from stringent targets—an agrochemical active with defined bioactivity and shelf life, a pharmaceutical intermediate that must pass a battery of impurity and stability tests, or a next-generation material needing precise surface properties.

    For such teams, 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride isn’t just a building block, it’s an enabler. The consecutive halogens, especially the four fluorines drawn into the propanoyl moiety, offer a springboard for precision modifications—gripping new groups where traditional chemistry falls short. The bromo and acid chloride sites each allow independently targeted transformations, so medicinal chemists or agricultural scientists can swap or extend parts of the molecule in one pot or in tandem steps. That modularity scales up to gram, kilogram, and even bulk batches, as we’ve learned shepherding multi-ton orders through quality control and packaging routines.

    Specifications: Where R&D and Manufacturing Meet

    From our vantage, fastidious attention to detail pays off, especially as clients’ QC requirements tighten year over year. Specifications on this product evolved not by edict but by working shoulder to shoulder with advanced synthesis labs. Customers demanded not only high assay but also minimal hydrolysis, trace color, and reliable reactivity—even after months in storage. We looked beyond classic GC/FID to robust NMR, fluorine quantitation, and impurity scans for chlorinated and brominated byproducts.

    We achieve assay values above 98% by area (commonly surpassing 99%), with moisture typically below 0.05%. Color remains below APHA 20 in clear bottles. As acid chloride and bromo groups stand front and center in the molecule, each batch retains the high reactivity essential for further conversions, verified by test reactions against standard amines and alcohols. Many customers request certificates tracing not only lot identity but entire chain-of-custody data, and our logistics and documentation teams ensure full traceability from incoming material to final drum.

    Differences from Similar Products: Deep Chemistry, Not Just a List

    It’s tempting to see 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride as just one more acyl chloride with a halogen twist. Long before you reach for it, though, real differences define its chemical behavior. Many commodity acyl chlorides like benzoyl or acetyl chloride react quickly, but their byproducts struggle to match the stability and selectivity you need for tight process windows. Switch to partially fluorinated versions, and you may find progress, but not without a constant struggle against instability and competing side reactions.

    Adding bromine alongside tetrafluorination builds unique reactivity: nucleophiles can take the bromo site directly or swap it via metalation for near-limitless analog synthesis. Chemists aiming for advanced pesticides, fluorinated pharmaceuticals, or fine-tuned surface coatings routinely struggle with side chain manipulations. This compound solves that problem; bromine’s position next to four electron-withdrawing fluorines activates it incredibly, allowing clean substitution, but without triggering runaway decomposition.

    Compare with 2-chloro-2,3,3,3-tetrafluoropropanoyl chloride, for example. Here, the bromo version enables more robust halogen exchange and opens broader catalytic pathways for further halogenations or cross-coupling reactions—key advantages when designing exploratory compound libraries. Simpler fluoropropanoyl chlorides offer cost-savings but sacrifice versatility in more complex transformations, narrowing their appeal to bulk commodity synthesis rather than advanced fine chemicals.

    From experience, the bromo group’s lability fits perfectly for late-stage diversification. Project teams focused on iterative design cycles, where synthetic accessibility must match theoretical planning, choose this option for true lead optimization. Over and over, our technical collaborations confirm that upstream investments in this building block create outsized gains in final product yield, purity, and patentability.

    Handling and Storage: Operator Lessons That Matter

    Few chemists appreciate the operational quirks of storing, handling, and moving acid chlorides until they deal with large volumes. Our production floor drills into new operators the importance of airtight seals and low-humidity packaging. Imagine even a brief exposure to air—moisture triggers hydrolysis and HCl release, not only wasting expensive material but also fouling downstream processes. That lesson runs throughout our packaging shift.

    Our setup uses inert gas blanketing and temperature-controlled storage; materials move swiftly from reactor to packaging, with every drum purged and sealed immediately. We ship exclusively in corrosion-proof, tightly sealed containers rated for volatile corrosives. Every operator on our team has seen at least one case where improper handling sparked avoidable quality investigations. We pass along those hard-won lessons to customers buying in bulk, providing detailed instructions for venting drums, drawing samples, and splitting aliquots in a glovebox or dry room.

    Scaling Up: Production Experience in Bulk

    Not all specialty chemicals scale gracefully. Many acyl chlorides shift behavior at larger batch sizes or during extended storage. 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride took several rounds of scale-up optimization, moving from kilogram glassware syntheses to metric ton reactors. Rarely does textbook chemistry mention heat of reaction, gas evolution rate, or the nasty habits of intermediates in real plant settings. Our control system ensures careful temperature modulation, staged addition of strong reagents, and real-time tracking of exotherms and offgas composition.

    Standard laboratory conditions hide peculiarities of mass transfer and mixing seen in industrial vessels. On a 10-ton plant scale, the difference between flawless batch and rework comes down to control of microhydration and acid scavenging strategy. We’ve pioneered in-line drying and phase separation techniques to wring every last drop of usable product from each run. For regular customers, we reserve on-demand capacity and safety stock, smoothing out seasonal swings in downstream project schedules.

    Quality Assurance: Beyond Test Results

    Chemical companies like ours rise or fall by the consistency and transparency of their quality control. For a reactive intermediate of this nature, we perform not only slate-of-the-art purity and identity checks but also “fit for use” compatibility trials tailored to end-use chemistry. Real stability studies, with product aged under varying humidity and temperature, flag storage life and best-by guidance. Each lot includes documentation showing absence of unexpected brominated, chlorinated or nonfluorinated side-products.

    Some customers require full impurity mapping—LC-MS, GC-MS, and even elemental analysis for trace halides or metals, depending on stringent pharmaceutical or crop science requirements. Fulfilling those requests isn’t a side gig for us. Even under time pressure, we run parallel batches to allow for full specification testing before a drop leaves our site. Recalls, in our experience, almost always stem from overlooked minor impurities or results lost in translation between manufacturing and QC labs. Our cross-training system avoids those pitfalls.

    Sustainability and Environmental Care: Taking Responsibility

    Working with heavily halogenated reagents means greater responsibility for containment and environmental stewardship. Each batch run includes detailed offgas capture and treatment as well as scrubbing and recycling where possible. Hydrochloric acid and bromide wastes are neutralized and recovered in-house, lessening the load on external disposal partners. As more downstream users track their own Scope 3 carbon and waste footprints, we partner in sharing emissions and waste reduction data for each bulk shipment.

    Customers expect more than minimum regulatory compliance. We shift continually to greener alternatives in solvents and support reagents and push energy and water efficiency upgrades. Investments in closed-loop operations and rigorous containment lower risk and shrink the long-term liability of the supply chain. As fluorinated reagents face tighter European and North American regulatory scrutiny, we keep lines open with both customers and authorities, supplying thorough dossiers for REACH, TSCA, and GHS compliance as markets require.

    Client Feedback: What End-Users Tell Us

    Over the years, we have gathered a steady stream of technical questions and feedback from laboratories and plants around the globe. Many customers run pilot reactions in parallel with our samples and quickly share results: sharper yields, faster conversions, cleaner work-ups compared to more basic fluorinated or brominated building blocks. Not every use scenario fits. But those engaged in specialty pharma, high-performance polymers, or active crop science compounds find particular value in the customizability of this molecule.

    Repeat orders and technical support calls share a common thread—whether they seek single-drum lots or several containers per shipment, customers value ready assistance in process adaptation, troubleshooting scale-up, or sudden customization. We meet those needs with direct access to our process chemists, not just a customer service desk ticking boxes.

    Safety and Training: Protecting People in Practice

    Handling acid chlorides and heavily fluorinated intermediates takes work: not just procedures on paper, but routine drills and hands-on practice. We instill, through training and peer mentoring, a discipline around splash protection, reliable venting, and detailed response plans for any chemical release. Decades in this industry remind us that real-world safety depends less on mandatory briefings than on building muscle memory—alerting a colleague, shutting off a valve, inspecting a seal without delay.

    All our drums and containers come with explicit handling instructions. Our strongest training focus remains preventing contact with moisture and unprotected equipment surfaces; we stress use of fit-tested respirators and chemical-resistant gloves. Over the years, we have managed a few near-miss hydrolysis events (all contained), further motivating refinements in operator training and storage protocols. This ethos carries through to every outgoing shipment, affirming to clients they are ordering not just commodity, but reliability.

    Future Directions: Anticipating Demand and Innovation

    Markets for specialty halogenated intermediates continue to shift. Drug discovery teams hunt for new motifs, while materials scientists chase enhanced thermal and chemical resistance in surface coatings or engineered polymers. Our investment in research partnerships lets us map application trends from the inside out, tuning purity, packaging, or batch scale for specific programs.

    Feedback from customers often triggers process tweaks—improved distillation, faster lead times, or even specialty packaging for extreme conditions. This compound, thanks to its balanced reactivity, finds its way into newer transformations—cross-couplings, fluorination cascades, or stepwise functionalizations impossible for simpler building blocks. We actively consult on emerging synthetic applications, designing sidechain variants or fluorinated analogs that complement customer targets.

    Summary of Why We Commit to This Compound

    Years of production and countless synthetic routes confirm the unique place of 2-Bromo-2,3,3,3-tetrafluoropropanoyl chloride in the toolbox of advanced chemical synthesis. Its high reactivity, clear differentiation from less functionalized or singly halogenated acyl chlorides, and robust tolerance for demanding downstream transformations form an unmatched package for innovation-minded clients. Our role, as producers and stewards of this chemistry, remains to guarantee consistent supply, measured quality, and the nuanced support that real-world applications demand. The molecular structure commands respect, but it’s the human insight—earned from years on the production floor and through countless collaborations—that ensures every drum delivers on its full promise.