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HS Code |
786439 |
| Productname | 1-Bromo-4-(Tetrafluoroethoxy)Benzene |
| Casnumber | 17527-29-6 |
| Molecularformula | C8H5BrF4O |
| Molecularweight | 273.025 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boilingpoint | 175-177°C |
| Density | 1.726 g/cm³ |
| Purity | Typically ≥98% |
| Refractiveindex | 1.480-1.484 |
| Flashpoint | 68°C |
| Smiles | C1=CC(=CC=C1Br)OCC(F)(F)C(F)F |
| Inchi | InChI=1S/C8H5BrF4O/c9-6-1-3-7(4-2-6)14-5-8(10,11)12-13/h1-4H,5H2 |
As an accredited 1-Bromo-4-(Tetrafluoroethoxy)Benzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams, sealed with a red cap, labeled with chemical name, CAS number, and hazard symbols. |
| Shipping | **1-Bromo-4-(Tetrafluoroethoxy)Benzene** is typically shipped as a liquid chemical in sealed, labeled containers compliant with hazardous material regulations. Packaging ensures protection from light and moisture. Transport may require UN-approved packaging and adherence to IATA, IMDG, or DOT guidelines for brominated organics. Shipping documents include safety data sheets for proper handling. |
| Storage | 1-Bromo-4-(Tetrafluoroethoxy)benzene should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from direct sunlight and sources of ignition. Keep away from incompatible materials such as strong oxidizing agents. Store at room temperature and ensure proper labeling. Use secondary containment to prevent leaks or spills, and follow all applicable chemical safety regulations. |
Applications of 1-Bromo-4-(Tetrafluoroethoxy)Benzene in Industrial ManufacturingAs a direct manufacturer of 1-Bromo-4-(Tetrafluoroethoxy)Benzene, we support several industries where high-performance molecular building blocks are required. Below, we outline real-world application segments, practical integration details, and quality benchmarks for downstream partners across fine chemicals, electronics, advanced polymers, and pharmaceutical intermediates. 1. Advanced Agrochemical SynthesisIn agrochemical production, this compound serves as a specialized halogenated aromatic intermediate for constructing novel active ingredients, particularly fluorinated herbicides and fungicides. Formulators employ the tetrafluoroethoxy functionality to enhance target molecule stability and soil persistence while the bromine atom supports further functionalization via Suzuki or Ullmann coupling reactions. Manufacturing plants accurately meter input based on target molecule yield and structural requirements prior to subsequent derivatization and purification steps. Industry compliance standards
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2. OLED & Display Material ProductionOur material plays a critical role as a building block for synthesizing high-purity organic electronic materials, specifically targeting the small molecule layers in OLED (Organic Light Emitting Diode) and QLED display panels. Its electron-withdrawing fluorinated side chain and para-bromo group facilitate precise electronic tuning and solubility adjustments when incorporated into hole/electron transport materials, host emitters, or charge-blocking layers. Electronics manufacturers demand ultra-clean input to avoid unwanted side reactions and meet robust device performance requirements. Industry compliance standards
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3. Pharmaceutical Intermediate ManufacturingThis aryl halide finds strong demand in active pharmaceutical ingredient (API) synthesis, particularly within advanced intermediates for anti-inflammatory or oncology drug candidates. Medicinal chemists value the tetrafluoroethoxy group for tuning lipophilicity and metabolic stability in candidate molecules. The brominated aromatic positions the intermediate for further elaboration via nucleophilic substitution or metal-catalyzed bond formation, supporting modern SAR (structure–activity relationship) programs. Production requires stringent handling and documentation at every stage to meet regulatory filings. Industry compliance standards
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4. Specialty Fluorinated Polymer Additive PreparationProducers in the advanced plastics sector utilize this raw material as a functional monomer or reactive modifier in specialty fluorinated polymer synthesis. The tetrafluoroethoxy moiety imparts non-stick and low-surface-energy properties to engineering resins, while the aromatic bromine promotes controlled grafting or cross-linking with polyarylene or fluoropolymer backbones. Adjustments in feed composition allow precise tailoring of physical and chemical properties in the downstream resin or composite matrix. Industry compliance standards
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Years on the chemical shop floor taught us that every compound brings a distinct character to the workbench. 1-Bromo-4-(Tetrafluoroethoxy)Benzene stands out in our product range, not because it fulfills a niche, but because it carves new possibilities in synthesis. Chemists who walk our production halls spend endless cycles checking purity, consistency, and every trace of byproduct. This compound, with its distinct bromo functionality paired with a robust tetrafluoroethoxy side chain, has a way of making itself indispensable in projects that demand both precision and innovation.
From the raw bins to packed vials, control at every stage matters. Unpacking drums of raw halides and specialty alcohols, blending under inert gas, and running stepwise heat cycles have become part of our routine. Every kilo of 1-Bromo-4-(Tetrafluoroethoxy)Benzene comes off the line with a backstory of hands-on effort and ongoing calibration. This compound brings bold electron-withdrawing features, making it effective for downstream transformations requiring a reliable activation point.
The model for 1-Bromo-4-(Tetrafluoroethoxy)Benzene leans on a reliable reaction of 4-bromophenol with tetrafluoroethyl iodide under carefully selected bases. Our reactors churn through batch after batch, with an eye on temperature profiles and pressure stability. It does not tolerate carelessness—trace moisture, off-ratio reagents, or rushed workups leave ghosts in the spectral analysis. By locking down reagents, drying glassware, and sequencing the addition just so, our teams pull out a crystalline product with minimal impurities.
Folks interested in exact specifications often ask about purity by GC or NMR. Our own routine targets a minimum purity above 99%, supported by HPLC where necessary. Moisture is kept low, with Karl Fischer readings rarely breaking the threshold of acceptable limits set by formulation chemists down the chain. We ready the material for custom packaging too, whether that means ampules for research, drum-scale batches for pharmaceutical intermediates, or smaller bottles for development groups pushing new catalysts.
End-users sometimes wonder why a compound like this, with both bromine and tetrafluoroethoxy groups, finds its way into so many custom syntheses. We’ve watched it unlock new aromatic substitutions, forming ether or amine derivatives without fuss. The bromo anchor offers a ready position for Suzuki, Heck, or Buchwald–Hartwig couplings, while the tetrafluoroethoxy moiety offers steric and electronic protection for delicate downstream chemistries.
Working with customers in electronics, we’ve seen it serve as a launching pad for liquid crystal displays and specialty polymer applications. Teams in pharmaceuticals look to it for its unique influence on pharmacokinetics. The real value shows when formulating active materials seeking thermal or chemical resistance. Fluorinated ethers resist many forms of degradation, and the bromine atom opens doors to efficient halogen-exchange chemistry—no time wasted wrestling with unstable intermediates.
Always, the chemist’s touch matters. Handling 1-Bromo-4-(Tetrafluoroethoxy)Benzene means understanding its volatility and keeping it away from excess moisture. A faintly sharp, ether-like odor betrays evaporation in poorly sealed vessels. We pack the material under nitrogen, knowing customers rely on it arriving ready-to-use, not compromised by transit. Years of shipping taught us to avoid clear glass at scale—the material fares better in amber bottles or lined metal drums, limiting UV exposure and moisture pickup.
Custom requests have become routine. Some process groups ask for sodium-dried material; others need extra documentation for regulatory filings in new territories. Our experience running kilo-plant synthesis means our batch records meet the scrutiny of auditors, whether for commercial, academic, or medical applications. Some R&D teams look for micro-scale samples. No job is too small, because a novel catalyst or sensor often starts on the milligram scale before jumping to drums.
We see requests for related materials: 1-bromo-4-methoxybenzene, 1-bromo-4-ethoxybenzene, or fully fluorinated phenyl ethers. Comparisons come down to where fluorine takes the chemistry. In our own work, the tetrafluoroethoxy chain stiffens the ring, slows down hydrolysis, and changes how the compound sits in solvents. Standard alkoxy or methoxy versions break down faster under harsh alkaline or acidic conditions. Swapping the fluoro chain can drop the reactivity in nucleophilic substitution but boost resistance in high-temperature polymerizations.
Brominated analogs without the fluoro pieces, such as regular 1-bromo-4-alkoxybenzenes, handle well enough in common reactions, but lose the durability in rugged electronics or high-stress pharmaceutical pathways. We’ve run side-by-side pilot trials. The tetrafluoroethoxy version resists yellowing and side reactions during scale-up, and in some solvent blends, it dissolves more quickly or offers tolerable volatility for automated reactors.
On the shop floor, you see the wins and frustrations up close. Operators chase the tail ends of distillations, adjust agitators to deal with foaming, and tweak reaction times based on daily humidity. Our best lessons rarely come from spec sheets—they come from the days when something misbehaves and the team pulls together, debugging a stubborn crystalline slurry or tracking down a temp spike. Each time, we learn a little more about what this compound wants from us, and about what downstream teams can expect when they put it to use.
The call often goes beyond purity and yield. Teams working up new OLED materials ask about trace metals, color stability, long-term shelf life, and even odor thresholds. Researchers ripping through 96-well plates want a compound that delivers predictable signals in LC-MS or HPLC profiles without ghost peaks. This comes back to the patience of distillation and the discipline of packing. We keep logs of every tweak—every improved workup or cleaner recrystallization passes down the chain.
Scaling up production for 1-Bromo-4-(Tetrafluoroethoxy)Benzene means more than growing batch sizes. Exothermic reactions ramp fast, so we monitor jacket temperatures and set up run-off tanks. Our teams check for leaks and vent lines twice as often, since halogenated analogs love to find the smallest gasket flaw. Vent scrubbers keep emissions in check, sparing our neighbors from any unwelcome vapors. Clean workstations and regular turnover of PPE keep the crew safe, and we run fire drills every quarter—safety is as much about habit as it is about equipment.
Old hands in the plant remember dust explosions years ago with other halogenated materials. Nobody wants a repeat, so we document every hazard and drill upstarts on response procedures. Regular audits make sure no shortcuts get taken. We built double containment around our reaction pits and swapped out old piping for fluoropolymer-lined systems after a near-miss five years back. Every improvement in safety comes from past headaches.
Working with research customers brings fresh challenges. Some days, questions come about expanding into new building blocks. Other times, customers want greener or more atom-economic syntheses, and we shift to new bases or solvents when reliability holds. Sustainability pressure leads us to monitor waste streams, reclaim solvents, and find safer precursor routes. We invest in operator training so everyone understands green chemistry principles—not every change falls into place smoothly, but adapting is part of our DNA.
Customer feedback shapes every improvement. Someone in Japan struggled with a byproduct plugging reactors; we re-optimized our last quench step to remove the impurity. A group running flavor chemistry asked for low-odor batches, and now all storage happens in fully sealed kits with headspace analysis. For tough regulatory filings, we support with stability data, impurity profiling, and even run stability-accelerated studies when required. Big projects in electronics and imaging sometimes need a tweak to the final recrystallization solvent—our lab adapts, runs test lots, and shares findings back, closing the loop on collaboration.
Experience shows that behind every bottle sent out lies trust earned through repetition. When a customer launches a project built around 1-Bromo-4-(Tetrafluoroethoxy)Benzene, they depend on our process, not just our specs. Consistent supply, responsible sourcing, and transparent reporting build that trust, much more so than claims in a brochure. If issues ever crop up—one-off color shifts, odd retention times, transit mishaps—we pull out logs, retest retained samples, and solve problems, not just send apologies.
From sample batches to full commercial runs, batch-to-batch reproducibility stays at the heart of what we do. Every critical parameter—reaction temperature, reagent grade, workup sequence, crystallization time—gets logged and checked. New staff learn the details slowly, upgrading from helper to shift lead over time. Mistakes can be costly, but every one brings a reminder: accountability goes hand in hand with reliability. Long-term partners bring feedback, and we use each suggestion to shape the training and standard operating procedures.
Production tech refuses to stand still. Our best solutions come from combining tradition and new ideas—old glassware builds trust, but new pumps, in-line monitors, and predictive analytics catch trouble before it grows. Chemists walk between retrofits and consoles, tracking every aspect of a run in real time. Batch reactors equipped with telemetry feed into dashboards, and supply chain software forecasts bottlenecks before they impact timelines. This lets our team anticipate shortages, forecast demand, and respond fast to order spikes without sacrificing quality.
The field keeps shifting—green chemistry, digital synthesis, broader regulatory requirements, changing customer needs. Our crew signs up for regular training and industry workshops. We attend supplier meetings, share best practices across departments, and listen when the market moves. We scan new literature, partner with university labs, and even contribute to precompetitive industry groups. Our materials, including 1-Bromo-4-(Tetrafluoroethoxy)Benzene, form the backbone of innovations that go far beyond our walls.
Chemical manufacturing boils down to expertise, stubbornness, and a willingness to learn from each run. Nobody assumes that quality happens by accident, and the market rewards those who learn from every misstep. Each kilo of 1-Bromo-4-(Tetrafluoroethoxy)Benzene carries with it hours of labor, dozens of data points, and a quiet pride from the teams who touch it at each stage. Investing in reliable production methods, rigorous analysis, and sustainable sourcing pays off year after year.
Looking forward, we see demand for purer, better-documented chemical building blocks growing in every major industry. Our commitment stands: we invest in advanced purification, safety improvements, and lean process adjustments wherever the evidence takes us. When partners advocate for lower carbon footprint or tighter impurity limits, our R&D group puts in the time to find answers, not excuses. Our track record with 1-Bromo-4-(Tetrafluoroethoxy)Benzene shows that investing in the right chemistry and the right people pays dividends for years to come.
Every time a box leaves our warehouse, someone, somewhere starts an experiment, builds a new device, or seeks an answer that did not exist yesterday. Knowing that 1-Bromo-4-(Tetrafluoroethoxy)Benzene enables those steps forward brings real satisfaction to our team. We back our work not just with numbers, but with real stories—bottles corrected after a hurricane cut power, runs adjusted on a midnight shift, impurities tracked and traced until we hit our mark. Our promise rests on this experience: every batch is an investment in the future of chemistry, one reaction at a time.