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HS Code |
461448 |
| Chemicalname | 2-Bromo-1,1,1-Trifluoroethane |
| Casnumber | 354-55-2 |
| Molecularformula | C2H2BrF3 |
| Molecularweight | 163.93 |
| Appearance | Colorless liquid |
| Boilingpoint | 66-67°C |
| Meltingpoint | -97°C |
| Density | 1.695 g/cm3 at 20°C |
| Refractiveindex | 1.353 |
| Solubilityinwater | Slightly soluble |
| Vaporpressure | 320 mmHg at 25°C |
As an accredited 2-Bromo-1,1,1-Trifluoroethane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 2-Bromo-1,1,1-Trifluoroethane is packaged in a 100 mL amber glass bottle with a secure screw cap, labeled for safety. |
| Shipping | 2-Bromo-1,1,1-Trifluoroethane is shipped as a hazardous material according to international transport regulations. It is typically packaged in secure, pressure-resistant containers and labeled with appropriate hazard symbols (flammable gas, toxic, etc.). Shipping must comply with guidelines from agencies such as DOT, IATA, and IMDG for safe handling and transport. |
| Storage | 2-Bromo-1,1,1-Trifluoroethane should be stored in a cool, dry, and well-ventilated area away from heat and direct sunlight. Keep the container tightly closed and properly labeled. Store separately from incompatible substances such as strong oxidizers and acids. Avoid contact with moisture and ignition sources. Use appropriate safety equipment and follow all relevant chemical storage guidelines. |
Applications of 2-Bromo-1,1,1-Trifluoroethane in Industrial Manufacturing2-Bromo-1,1,1-Trifluoroethane serves as a key intermediate in several advanced industrial segments, supporting high-value chemical synthesis and specialty manufacturing workflows. We supply this material with controlled purity and consistent quality to downstream producers operating in regulated environments. The following sections detail verified application scenarios across critical manufacturing fields. 1. Pharmaceutical Synthesis IntermediatesPharmaceutical manufacturers employ this compound as a halogenated ethane source for producing APIs containing trifluoromethyl groups. Its controlled bromine reactivity fits multi-step organic syntheses, crucial for molecule modification and late-stage fluorination in regulated drug pipeline development. Chemists favor its high selectivity and handling safety for active pharmaceutical intermediate creation, especially in fluoroalkylation routes where trace impurities impact drug performance and product registrations. Industry compliance standards
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2. Agrochemical Fluorination AgentLeaders in crop protection adopt this compound as a trifluoroacetyl group source in synthesis of advanced herbicides, fungicides, and regulated insecticides. Downstream plants rely on its reactivity and reproducible purity to obtain precisely fluorinated agrochemical actives. Process engineers manage batch and flow synthesis units for safe conversion, meeting international trace element thresholds and residue mandates in finished crop protection products. Industry compliance standards
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3. Refrigerant Manufacturing IntermediateDownstream producers of specialty refrigerants utilize this raw material during synthesis of next-generation hydrofluorocarbons. Process developers integrate the bromofluoroethane species into targeted halogen exchange and dehalogenation reactions to build environmentally advanced refrigerant gases. It enters proprietary continuous or batch transformations, often under catalytic conditions, enabling production streams with tightly specified GWP (global warming potential) and ODP (ozone depletion potential) values for regulatory approval worldwide. Industry compliance standards
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4. Electronics Solvent and Cleaning Agent PrecursorManufacturers in the electronics industry integrate this chemical as a precursor in formulation of select cleaning and degreasing agents for printed circuit boards and semiconductor assembly. The compound supplies controlled trifluoromethyl groups to achieve volatility and cleaning power with precise material compatibility. Quality managers ensure adherence to high purity benchmarks and residue thresholds to avoid microcontamination or device failure within downstream electronics product lines. Industry compliance standards
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5. Specialty Polymer and Fluoropolymer SynthesisSpecialty polymer manufacturers select this raw material as a unique halofluorinated monomer precursor for engineering resins and high-performance fluoropolymers. Its molecular structure enables precise addition into radical polymerizations or as a chain transfer agent in controlled polymer growth, directly influencing the thermal and chemical resistance of end-use resins. Laboratory and pilot production teams monitor addition order and cure conditions to achieve consistent polymer chain structure and mechanical profiles. Industry compliance standards
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Each time someone mentions 2-Bromo-1,1,1-Trifluoroethane, those of us in the actual production circles think immediately of its value in pharmaceutical and specialty chemical synthesis. After years of working in the lab and refining every process detail on the factory floor, we have learned that delivering a consistent 2-Bromo-1,1,1-Trifluoroethane product goes far beyond what’s often printed on specification sheets. Whether making small-batch intermediates for research groups or running full-scale lots for corporate partners, daily commitment to craftsmanship and technical rigor drives every stage of our output.
2-Bromo-1,1,1-Trifluoroethane, with the molecular formula C2H2BrF3, is a transparently simple molecule on paper. The substance stands out for its three strongly electron-withdrawing fluorine atoms and a reactive bromine site. We’ve put real effort into controlling both purity and moisture, both of which are crucial when the chemical is used as a building block for more complex molecules. Through years of collaboration with downstream users, we learned the best threshold for tolerated water, usually under 0.05%, which makes a difference in reaction yields for demanding synthesis routines. Our typical batch analysis confirms purity levels of over 99.5% by gas chromatography, but more importantly, our staff monitor the production line for traces of common side products that aren’t always easy to spot in standard tests.
Several grades come out of our facility, tailored by both reaction performance feedback and the specific techniques of our clients. Some partners need material shipped in light-proof, corrosion-resistant drums when long storage is expected. Others use sturdy, smaller canisters because their applications require frequent, rapid activation of the bromo-group. For both, we work to minimize residual acidity and avoid cross-contamination by incorporating dedicated equipment. That’s the practical edge a manufacturing facility can offer, based on real-life experience as much as technical guidelines.
Applications for 2-Bromo-1,1,1-Trifluoroethane branch out mainly into pharmaceuticals, agrochemical precursors, and, in select cases, as a blowing agent. In healthcare synthesis, this compound slips into the process step where a reliable trifluoromethyl group makes or breaks product viability. As a result, customers ask again and again about both reactivity and byproduct issues. The bromine’s position in the molecule turns it into an excellent leaving group—this property anchors its role in making trifluoromethylated aromatics, which remain some of the highest-value syntheses our industry supports.
We’ve noticed mid-sized customers, particularly those pursuing innovative fluorinated compounds or cutting-edge APIs, gravitate to 2-Bromo-1,1,1-Trifluoroethane for its blend of safety, reactivity, and predictable handling. Its vapor pressure profile and manageable boiling point let users scale from exploratory workbench trials straight up to pilot-plant quantities. That reliability saves time, but, more importantly, it builds trust. Scientists and engineers report back to us about minimal side reactions and clean product isolation, as long as the starting material remains tightly controlled. As a result, our crew maintains steady documentation for every lot, archiving everything from raw material origin to post-packaging checks—no shortcuts, because minor details change real outcomes.
Anyone with practical lab hours under their belt knows that not all halogenated ethanes behave equally. In synthetic chemistry, each substitution pattern leads to different reactivity, risk, and waste profiles. Introducing three fluorines in the 1,1,1-position greatly reduces flammability, boosts chemical stability, and offers a sharp contrast to similar compounds such as 2-chloro-1,1,1-trifluoroethane or simple bromoethanes. For experienced hands, this difference becomes obvious as soon as they scale up reactions—unexpected side products, lower yields, or challenging purification all trace back to subtle changes in halogen pattern.
Through our facility’s long experience with related molecules, we’ve had plenty of feedback from chemists wrestling with both cost and safety. One recurring point: substituting a chlorine atom for bromine at the same position often leads to reduced reactivity in nucleophilic substitution steps. The bromine’s larger size and different electronegativity facilitate smoother leaving group events. This behavior makes 2-Bromo-1,1,1-Trifluoroethane a prime choice for synthesis routes that other halogenated analogues can’t match in terms of yield and selectivity.
Performance aside, safe handling matters. Three fluorines provide a shield—more inertness, reduced risk of unwanted decomposition, and improved shelf life under most industrial storage conditions. Feedback from technical teams shows that switching away from mono-halogenated ethanes to our product means fewer polymerization headaches and simplified containment protocols, so long as moisture and iron contamination are kept in check. With other derivatives, problems like unstable reactions or the need for cooled transport happen more often, eating into budgets and timelines.
No matter how carefully any chemical is described in a brochure, the real test comes during day-to-day operations. Some buyers worry about purity drift between batches, especially through long contract cycles or in markets where transportation times stretch months. As manufacturers, we face these same challenges—raw material quality, equipment cleaning, seasonal shifts in humidity. Addressing these, our technicians designed purification columns that trap hydrolytic side-products, and we keep vigilant logs of storage container integrity. Regular calibration and third-party audits help us spot problems early, which means few surprises for our downstream partners.
Another issue circulating in industry circles concerns regulatory shifts. Environmental policies continue to evolve fast, especially with regard to halogenated refrigerants and solvent emissions. We stay up to date with international standards. More importantly, we work with site engineers to reduce leakage and contain vapors. In practice, site audits and operator checklists do more to prevent waste and contamination than any sales promise ever could. Our own recycling program for spent containers—scrapped and reconditioned in-house—means less environmental risk and improved traceability, both big factors for industrial clients who can’t afford compliance missteps.
Shelf life can frustrate even veteran users if not enough attention is paid to the storage environment. Our teams install humidity monitors and set up periodic checks for oxidation by-products. Customers running into issues with degradation find success by switching over to our acid-washed drums and low-headspace canisters. By keeping shipment times tight and using air-tight seals, we see significantly less deviation in downstream chemical yields. These concrete tweaks, based on customer feedback, keep wastes down and process reproducibility up where it matters.
In the last decade, focus has shifted to highly selective pharmaceuticals and next-generation agrochemicals where fluorinated organic linkers play a central role. Our factory has contributed directly to projects ranging from antiviral candidates to patented herbicides, each demanding strict control of trace metal contamination and residual bromide. The team at our plant doesn’t just run samples through auto-analyzers. They actively troubleshoot customer procedures by reviewing their process cases, sometimes even spotting non-obvious sources of loss—like moisture intrusion through suboptimal valve gaskets or micro-leaks in inert gas setups.
Several partnerships with university spinouts and early-stage biotechnology firms have shaped the way we stock, package, and deliver the product. Smaller collaborators often lack the infrastructure for long-term dry storage, calling for rapid response times and batch customization. For these users, we keep a standing inventory matched to their development timelines, so they can avoid expensive downtime or failed pilot runs. This approach helps nurture innovation by mitigating risk for the smallest teams, who often take the biggest scientific chances.
Experienced R&D chemists frequently mention the advantages they see using 2-Bromo-1,1,1-Trifluoroethane over structurally similar reagents. High selectivity in introducing trifluoromethyl units, combined with manageable handling requirements, means researchers progress to scale-up steps quicker. Fewer purification steps translate into reduced solvent use, lower labor costs, and diminished environmental liabilities. By following feedback cycles with these advanced labs, we continuously update our filtration and drying systems, tuning process windows so that the final material stays uniform across production campaigns.
Quality in chemical manufacturing means more than ticking boxes on a checklist. Our team’s hard-won experience building multiple production lines has sharpened our internal procedures. For example, by rotating technicians between synthesis, isolation, and packaging roles, cross-training hones both technical and troubleshooting skills. During comprehensive training sessions, experienced staff walk new hires through worst-case contamination scenarios and proper corrective actions. The equipment calibration schedule isn’t just paperwork; it translates into measurable consistency batch after batch, making a difference when a critical shipment is due.
Auditors from pharma and agrochemical multinationals run their own validation routines in our plant. These reviews focus on everything from lot traceability to micro-scale chemical reactivity tests. When recurring out-of-spec test results do arise, the response goes beyond a single corrective action—the whole process, down to cleaning solution recipes and inert gas sources, is reevaluated and adjusted where necessary. Transparent documentation and cross-department communication make for a leaner, more responsive operation. Through these practices, customers have confidence not because we say the product is good, but because our process records back it up every time.
Plants that run day and night for months rely as much on people as on process diagrams. More than a few managers over the years have pointed out that state-of-the-art equipment only delivers if crews heed small signals—design tweaks that guard against contamination, an extra rinse cycle on hot days, a pause to double-check storage tank humidity. Mistakes caught early save both money and safety hazards, something only real-world experience instills.
We stay engaged with industry groups that advocate for worker safety and responsible chemical management. Regular knowledge-sharing across company sites helps the entire team keep pace with official standards as well as practical realities. Not every technical solution comes from published best practices—sometimes, it’s the offhand observation of a line operator that spurs a process improvement. New staff pick up these traditions quickly, as seen in daily “lessons learned” exchanges on the shop floor.
Producing and supplying halogenated compounds like 2-Bromo-1,1,1-Trifluoroethane isn’t just about output volume or sales growth. The risks of personal and environmental harm in handling, storing, and shipping must be taken seriously. Our plant sets protocols based not on minimum legal requirements but on lived experience. Chemical-resistant coatings, high-integrity seals, and non-reactive transfer lines all stem from lessons learned preventing losses and ensuring clean changeovers.
Customers see the difference when containment protocols go right. Over several years, we’ve written and updated practical, clear standard operating procedures for both normal use and emergency scenarios. Routine drills, joint inspections with outside safety consultants, and honest incident reporting reduce both the likelihood and impact of leaks, exposures, and costly downtime. Such technical diligence not only safeguards staff and neighbors but also protects our partners’ investment in secure, timely chemical supply.
Waste management is another key focus. Any residual brominated compounds from test batches or line flushes are segregated, analyzed, and neutralized in line with both local and global requirements. By reducing both direct emissions and offsite disposal needs, we lower our environmental footprint while meeting customer expectations for sustainable chemical sourcing. This conservatism translates into measurable risk reduction without compromising output.
Customers’ needs change as end-market pressures evolve. As a direct producer, we keep listening to formulation experts, plant operators, and contract managers, who don’t hesitate to share aggravations or suggest fixes. Changes as simple as shifting label language or adding new drum gaskets frequently come from user suggestions, rather than top-down initiatives. Leaning into this direct feedback loop sharpens our competitive edge by making each run more responsive to real client conditions.
Lean manufacturing doesn’t just mean cost-cutting. It underscores the drive to reduce errors, waste, and extra work, ultimately making the production and delivery of 2-Bromo-1,1,1-Trifluoroethane more predictable for everyone involved. A recent upgrade to our drying columns came from joint troubleshooting with end users who discovered micro-traces of acidity in particular runs. Their attention to process nuance, combined with our on-the-ground technical data, led to an adjustment that now benefits all future batches.
We also invest in ongoing workforce education. Plant workers and technical staff complete periodic workshops on the chemistry of fluorinated and brominated substances, potential upsets, and new handling practices introduced by shifting global regulations. This effort means every operator understands not just the “how” but the “why” of each step, which pays off in safer, more predictable production cycles and lower recall rates.
Our experience with 2-Bromo-1,1,1-Trifluoroethane reaches far beyond theory and technical data. Each drum, canister, or small bottle reflects decades of responding to changing science, shifting logistics, and the ever-present need for reliability. Every production hand, from raw material intake to packaging, gets the gravity of supplying a compound that directly impacts real-world discoveries and market-ready products. The distinctions between us and other halogenated organic suppliers stem not merely from purity or standards compliance, but from collective institutional memory—a bank of lessons learned through repeated cycles of challenge and adaptation.
As customers around the world push boundaries in healthcare, agriculture, and materials, they depend upon suppliers who not only guarantee but live up to their promises, shipment after shipment. Our pledge remains the same: to keep improving, listening, and securing the knowledge and processes that deliver the 2-Bromo-1,1,1-Trifluoroethane our partners need to keep advancing their own goals.