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3-Bromo-5-Fluorobenzotrifluoride

    • Product Name 3-Bromo-5-Fluorobenzotrifluoride
    • Alias 1-Bromo-3-fluoro-5-(trifluoromethyl)benzene
    • Einecs 809-813-6
    • 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

    232914

    Cas Number 401-86-5
    Chemical Formula C7H3BrF4
    Molecular Weight 261.0 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 168-170°C
    Melting Point -7°C
    Density 1.675 g/cm3 at 25°C
    Refractive Index 1.493
    Purity Typically ≥98%
    Synonyms 3-Bromo-5-fluorobenzotrifluoride; Benzene, 3-bromo-5-fluoro-1-(trifluoromethyl)-
    Solubility Insoluble in water; soluble in organic solvents
    Flash Point 66°C
    Smiles C1=CC(=CC(=C1C(F)(F)F)Br)F

    As an accredited 3-Bromo-5-Fluorobenzotrifluoride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 100-gram amber glass bottle with a white screw cap, featuring hazard labels and the name "3-Bromo-5-Fluorobenzotrifluoride."
    Shipping 3-Bromo-5-Fluorobenzotrifluoride is shipped in tightly sealed containers, protected from light, moisture, and sources of ignition. Transport complies with relevant hazardous material regulations, classifying it as a potentially harmful chemical. Proper labeling, documentation, and handling instructions are provided to ensure safe and secure delivery to the destination.
    Storage 3-Bromo-5-Fluorobenzotrifluoride should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from direct sunlight and incompatible materials such as strong oxidizers. Keep the chemical away from moisture and sources of ignition. Ensure proper chemical labeling and provide secondary containment to prevent leakage. Store at ambient temperature, following all applicable safety and regulatory guidelines.
    Application of 3-Bromo-5-Fluorobenzotrifluoride

    Applications of 3-Bromo-5-Fluorobenzotrifluoride in Industrial Manufacturing

    As a direct manufacturer specialized in halogenated aromatics, we support diverse industrial clients in integrating 3-Bromo-5-Fluorobenzotrifluoride into downstream production lines. Below are proven application fields with process detail and regulatory focus. All use scenarios are based on actual customer requirements and market-proven formulations.

    1. Agrochemical Active Ingredient Synthesis

    Producers in agrochemical manufacturing use this intermediate for creating advanced herbicide and fungicide molecules, primarily targeting aromatic substitution or coupling reactions to achieve site-selective functional group integration. Typical protocols require careful control of halogen and fluoroarene reactivity, meeting trace purity thresholds as set by major regulatory bodies. The raw material’s aromatic fluorine and bromo groups allow precise molecular engineering, supporting scalable synthesis that meets downstream purity controls in formulated crop protection compounds.

    Industry compliance standards

    • EU REACH Regulation (EC) No 1907/2006 for intermediates
    • US EPA Pesticide Registration (FIFRA) guidelines
    • China ICAMA agrochemical raw material requirements
    • ISO 9001 audited quality management for production batches

    Typical usage ratio

    • In complex molecule routes, used at 0.5 to 1.5 molar equivalents relative to the main active core; exact ratios depend on the targeted substitution pattern and yield optimization during pilot scale-up.

    Downstream process integration

    • Introduced in the aromatic halogen substitution or Suzuki–Miyaura cross-coupling step; typically enters after initial backbone condensation, feeding directly into the functionalization reactor under inert atmosphere and controlled temperature.

    Final product types

    • Pyridine-based herbicide actives
    • Phenoxyalkanoic acid fungicides
    • Crop protection intermediates for proprietary molecules
    • Pre-cursors for seed coating formulations

    2. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (API)

    Pharmaceutical CMOs and API manufacturers select this material for constructing fluorinated aromatic scaffolds in anti-infective, anti-inflammatory, or CNS drug candidates. Its balanced halogenation supports regioselective substitution during medicinal chemistry route selection, while maintaining compliance with stringent impurity profiling. Production is monitored under validated GMP controls to ensure pharmaceutical grade material supply and downstream traceability within the active molecule synthesis chain.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guidance for APIs
    • US FDA Drug Master File (DMF) for KSMs
    • European Pharmacopoeia section on fluorinated intermediates
    • EDQM and Japanese Pharmacopoeia registration if exported

    Typical usage ratio

    • Usually 0.7 to 2.0 equivalents depending on downstream substitution type; adjusted based on medicinal chemist’s yield and regioisomer control during preclinical or process validation batches.

    Downstream process integration

    • Added post-ring assembly, providing fluorinated aromatic blocks before final amination or acylation; introduced under GMP conditions with on-line HPLC monitoring to ensure residual impurities remain below pharmacopoeia thresholds.

    Final product types

    • Intermediate for CNS-active APIs
    • Building blocks for anti-infective agents
    • Precursor in non-steroidal anti-inflammatory products
    • Key starting material (KSM) for custom fluorinated drug development

    3. Electronic Chemicals for Display and Semiconductor Industries

    Manufacturers supplying liquid crystal or OLED display sectors use this material to prepare high-purity fluoroarene compounds required for dielectric and alignment layer synthesis. The raw material’s fine halogen and electron-withdrawing properties enhance charge transport and stability in downstream thin-film transistor fabrication. Production meets trace metal and organics purity benchmarks crucial for advanced microelectronics.

    Industry compliance standards

    • JIS C61000-4 (Japanese semiconductor standards for organic chemicals)
    • SEMI C3 “Specifications for Specialty Gases and Chemicals”
    • RoHS Directive on restriction of hazardous substances
    • PFOA/PFOS free certifications for export to global electronics manufacturers

    Typical usage ratio

    • May vary from 0.2% to 3.5% w/w in formulation blends, depending on purity needs and downstream device layer thickness; purity grades selected (99.5%+ for display, 99.9% for semicon) to minimize background conductivity.

    Downstream process integration

    • Integrated into precursor solution during dielectric or alignment layer layer-up procedures; dosed via automated feed lines with in-line particle and metal impurity testing before coating or vapor deposition.

    Final product types

    • Liquid crystal alignment materials
    • OLED display organic semiconductors
    • Thin-film transistor dielectric components
    • Cleanroom-graded monomers for photolithography

    4. Advanced Materials: Specialty Polymers and Coatings

    Our customers in high-performance polymer and specialty coatings sectors rely on this compound as a monomer or a functional aromatic additive where halogenation and fluorination confer increased chemical, thermal, and UV resistance. During copolymerization or chain extension stages, this raw material enables fine-tuning of material surface properties or enhances cross-link density. Real-world use includes high-durability coatings for industrial and consumer electronics, as well as niche fluorinated polymers for filtration and chemical resistance.

    Industry compliance standards

    • UL 94 flammability standard (for polymer parts)
    • ISO 9001 quality management for polymer feedstocks
    • REACH Annex XIV/Restriction of hazardous substances
    • ASTM D2565 for UV resistance in plasctic coatings

    Typical usage ratio

    • Used at 1%–6% by weight during polymerization; adjusted based on molecular weight targets, degree of crosslinking, and end-use mechanical property requirements.

    Downstream process integration

    • Feeds into polymerization reactor as a co-monomer or chain modifier; incorporated at the pre-polymerization or compounding stage, with downstream QC ensuring uniform dispersion prior to extrusion or coating application.

    Final product types

    • Fluorinated engineering plastics (film or molded parts)
    • Highly durable anti-corrosion coatings
    • Specialty anti-static films for electronics packaging
    • UV-resistant polymer blends for outdoor applications
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    Certification & Compliance
    More Introduction

    Introducing 3-Bromo-5-Fluorobenzotrifluoride: A Practical Perspective from the Production Floor

    Innovating from Molecule Up: Our Take on 3-Bromo-5-Fluorobenzotrifluoride

    Every day in our facility, our team pays attention to the needs of chemists working at the bench and process engineers in the pilot plant. 3-Bromo-5-Fluorobenzotrifluoride—model number 167273-17-4, to those needing it official—has become more than just a reagent in our lineup; it speaks directly to the hands-on demands of the specialty chemicals market. If you work with intermediates for pharmaceuticals, agricultural products, or high-performance materials, this compound stands out for its reliable behavior and consistent purity. Over the past decade, our operation has shifted focus toward precision fluorinated aromatics, and this molecule earned its place as a cornerstone for several reasons.

    Why We Turned to This Molecule

    Customer feedback from R&D labs and production sites drove us to deliver robust batches of 3-Bromo-5-Fluorobenzotrifluoride. The combination of bromo, fluoro, and trifluoromethyl groups on one benzene ring creates a reagent that holds structural versatility for downstream synthesis while helping to introduce site-selective fluorination and halogenation into complex organic molecules. Every time a new drug candidate or crop protection lead comes through, tight control over functional groups is needed. Our chemists recall early struggles with related trifluorotoluene derivatives that proved unpredictable. For years we heard that off-the-shelf options sometimes fell short, particularly regarding lot-to-lot consistency and color purity. We took these details straight to our reactor operators and built our process with careful selection of starting halides, anhydrous handling, and rigorous distillation. The repeatability paid off. Customers see this in the pale to light yellow liquid with minimal side products, even at multi-kilogram scale.

    Looking at Specifications through Real-World Demands

    Each factory batch sticks to an assay of 98% minimum, a standard we set after direct dialogue with process chemists who monitor impurity profiles by GC and NMR. Moisture content and residue on evaporation drop below the detection limit, which means no headaches about crystallization steps or reactions with sensitive catalysts. As a manufacturer, we never underestimate the value of transparency with certificate of analysis data—we update methods as instrumentation advances. It’s not just about hitting a number on a spec sheet; it’s about delivering a bottle that doesn’t disrupt a process overnight.

    One recurring concern coming from downstream customers centers on halide exchange side reactions, which plagued earlier suppliers when they used less refined bromination steps. Our solution came from rethinking solvent choice, drying protocols, and a post-synthesis purification sequence scaled from glass reactors up to jacketed vessels. Fielding troubleshooting calls taught our team that consistent melting and boiling point readings are never just academic details—they matter to people planning for scale or automation. Our technical batch records document this rigor, and internal QC audits never skip the physical properties that impact storage or use over time.

    Practical Use Cases and Insights from Production

    If you’re building aryl ethers, sulfonamides, or Suzuki coupling precursors, you will probably hit roadblocks trying to bring in both fluorine and bromine on a benzotrifluoride ring using base chemicals alone. Our molecule serves as a shortcut for those seeking to introduce unique patterns of substitution that persist under challenging reaction conditions. Several direct customers in pharmaceutical manufacturing embed this structure in active ingredients or intermediates, reporting superior uniformity in final product through multiple process steps. These feedback loops influence how we structure our in-process testing and how we approach QA on intermediates.

    Agricultural innovation looks different when viewed from the factory floor. Formulators come to us citing challenges in stability and performance linked to minor impurities in halogenated intermediates. A specific project we supported involved a new-generation fungicide route that required tight control over both the position and integrity of the trifluoromethyl group. The yield and robustness improvements, when shifting to our 3-Bromo-5-Fluorobenzotrifluoride, resulted from not just the molecular structure, but also from low trace moisture and careful drum filling procedures. This direct connection between manufacturing practices and end-use value drives our commitment to invest in continuous improvement.

    Comparing Where it Actually Matters

    Discussions about “similar products” have real-world implications for those running kilo labs or scaling to semi-bulk. 3-Bromo-5-Fluorobenzotrifluoride differs from more common isomers—like 2-Bromo-4-Fluorobenzotrifluoride—in terms of both reactivity and downstream compatibility. Customers often need to swap positions of substituents for different reactivity in cross-coupling or nucleophilic aromatic substitution. In practical terms, changing the bromo or fluoro position shifts the electronic nature of the ring, lending a different pathway for catalysts. Our experience finds that certain metal-catalyzed reactions run more cleanly with this specific isomer, reducing byproducts that would otherwise slow a multi-step synthesis.

    Some chemists try broader-use trifluoromethyl bromobenzenes, only to run into solubility or volatility issues at higher temperatures. By focusing on a controlled process and maintaining trace impurities at low parts-per-million, we spare customers from time-consuming purification and troubleshooting. Our knowledge stems from seeing failed batches and downtime due to overlooked details like trace water or non-volatile residue. Those working with competing products report inconsistent behavior, unpredictable kinetics, or unexplained palladium fouling. For us, these are more than QC talking points—they’re lessons learned by walking the shop floor.

    Process Insights: Realistic Reliability over Laboratory Cleanliness

    Too often, chemical manufacturers push dry, sanitized descriptions that don’t match what we see every month. Our facility runs routine production campaigns several times each year. Over those cycles, we encounter everything from batch-to-batch color shifts to pressure fluctuations and the occasional scale-up surprise. Our staff document which upstream suppliers produce halides that resist forming residual byproducts, and every tweak to our drying cycles comes from direct returns on product performance downstream. Nobody benefits from idealized process write-ups set apart from the mess of real operations.

    Walking between the reactor line and the analytical lab, our engineers don’t pretend 3-Bromo-5-Fluorobenzotrifluoride is maintenance-free or universally easy to handle. During temp spikes, its volatility challenges plant teams to fine-tune condenser performance and storage. Over the years, one of the clearest lessons is that avoiding problems in the field starts with aggressive solvent recovery, careful selection of drum packaging, and strict limits on residual moisture before shipment. Every time we troubleshoot with a user—whether it’s about cloudiness at low temp or unexpected HPLC peaks—we feed that learning back into our in-house practices.

    Why Production Choices Dictate Results: Integrity from Start to Finish

    Many requests over the years have pushed us to move from pilot scale to a reliable, scalable workflow for this fluorinated benzotrifluoride. Our scale-up efforts included detailed analyses on thermal stability, handling during transfer, and even the right combination of inert gas sparging during filling. That whole stream—raw materials, synthesis, distillation, QC, and logistics—rarely flows without friction. Our firm conviction is that small interruptions or shortcuts anywhere in the chain show up quickly in the end-user’s lab, usually as analyst calls about unexplained side products or upstream impurity carryover into sensitive synthesis steps.

    One of the biggest drivers separating practical manufacturers from repackagers involves the openness of process records, willingness to provide detailed COA, and a shared readiness to support troubleshooting. As an original producer, we receive regular batch-specific feedback, and our staff update work instructions to match field data. Something as simple as feedback about a change in bottle size due to solids forming in drums during a cold snap can push hundreds of gallons of process changes. Everything we do flows back to a straightforward goal—delivering product that does exactly what our customer expects, without caveats or extra purification required on their end.

    Safety, Stewardship, and Shared Accountability

    Much of the talk about difficult halide intermediates focuses on hazard labels or regulatory compliance; for those in daily production, safe handling and minimization of human exposure starts on the plant floor. This particular compound requires respect—a vigilant eye for leaks, strict glove discipline, and organized airflow inside our filling and drum packing areas. Even after years of handling, our team maintains training refreshers on fire hazard control, proper waste segregation, and keeping transfer lines clean. These habits ensure not just our safety but that product reaches customers with maximum integrity, free from avoidable contaminants.

    We invest in newer containment and monitoring technologies not as headline-makers but as real tools that save incident response calls and downtime. Each fill station has real-time VOC monitors, and our maintenance group regularly audits seals and hoses to catch subtle wear before it results in product loss or risk. Over the years, regulatory requirements have evolved; meeting them stems not from form-filling, but from court-tested best practices and shared accountability between operators, supervisors, and delivery drivers. Our plant’s reputation travels by word-of-mouth among operators and procurement teams—honest feedback matters more than formal certifications.

    Collaborative Problem Solving Shapes the Future

    Success in manufacturing rests on more than a product’s spec sheet or shelf-life statement. The market for fluorinated and halogenated aromatic compounds has remained dynamic, shaped by new demands from fast-moving R&D and shifting priorities in pharmaceuticals, electronics, and crop sciences. Every time a customer calls us with feedback, whether positive or a new challenge, our team pays close attention. For example, several of our partners faced issues with catalyst poisoning unrelated to published literature—after structured, transparent communication, we identified trace metal contamination sources upstream and re-tooled a purification step, protecting future users from similar hidden costs.

    That attitude—listening, adapting, and acting—is an unspoken bond between manufacturers and those who rely on industrial-scale chemistry. We recognize that as downstream technology changes, so must our approach to analytical detection, feedback integration, and production best practices. Several years ago, our team saw the need to improve traceability on each drum, embedding QR-linked batch data. Since implementing this, we’ve noticed a drop in confusion over historical records and fewer delays in project development. Direct transparency earns trust, and it empowers users to focus on their progress, not the paperwork.

    Pushing for Better: Responding to Changing Demands

    As large molecule and targeted therapy fields continue to expand, the need for reliable specialty intermediates like 3-Bromo-5-Fluorobenzotrifluoride goes beyond traditional supply chain relationships. Every request—be it for expedited delivery, custom packaging, or updated impurity profiling—represents a problem that’s already hit someone’s workflow. Our experience shows that what matters most isn’t just the molecular structure, but the responsiveness of teams working behind the scenes.

    Our plant teams meet frequently to share feedback from technical support, so someone refining an industrial-scale Suzuki coupling in Europe or a glassware-scale pharmacophore assembly in North America benefits from the same process learning. We see a future where customers request not just product, but integrated documentation packages, upstream trace records, and ongoing analytical support. These requests reflect a tough reality: the path between bottle and final application is often crooked, and only a partnership approach keeps projects on track.

    The Value of Experience: Lessons from the Factory Floor

    Day-to-day production teaches humility. There’s a unique satisfaction in seeing batches pass final QC, then hearing weeks later that a customer’s process ran smoothly without deviation. Each time our loading bay sees drums of 3-Bromo-5-Fluorobenzotrifluoride heading to a new R&D initiative, we remember the cycles—reactor cleaning, small tweaks in drying time, late-night process control checks—that make or break overall success. True progress grows not from static specifications but from a dynamic, feedback-rich process.

    Working hands-on with this compound taught us the value of deep collaboration. Analytical teams, production staff, supply chain managers—every group plays a part in ensuring that every drop, gram, and drum meets the needs of those exploring the next generation of pharmaceuticals, crop protection agents, and specialty materials. Over the years, the performance of 3-Bromo-5-Fluorobenzotrifluoride in end applications has reflected not just underlying chemistry, but the dedication of everyone who handles it, from tank farm to analytical bench.

    Conclusions Rooted in Experience

    3-Bromo-5-Fluorobenzotrifluoride’s role in specialty synthesis isn’t built from anonymous product lists but emerges from genuine effort, partnership, and open communication between manufacturer and user. Our contributions don’t end after filling a drum; the product’s story continues in the hands of teams worldwide creating solutions for health, food, and technology challenges. Everything we do distills down to a straightforward goal—consistent, reliable product that supports the wider effort to innovate responsibly and efficiently in a changing world.