|
HS Code |
589976 |
| Chemicalname | Dibromofluoromethane |
| Molecularformula | CHBr2F |
| Molarmass | 210.83 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 97 °C |
| Meltingpoint | -57 °C |
| Density | 2.35 g/cm³ |
| Casnumber | 373-52-4 |
| Refractiveindex | 1.522 |
| Solubilityinwater | Slightly soluble |
| Vaporpressure | 40 mmHg (at 25 °C) |
As an accredited Dibromofluoromethane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Dibromofluoromethane is packaged in a 500 mL amber glass bottle with secure screw cap and proper hazard labeling. |
| Shipping | **Dibromofluoromethane** is shipped as a hazardous chemical in tightly sealed, corrosion-resistant containers, typically cylinders or drums. It should be handled by trained personnel, stored in cool, well-ventilated areas, and clearly labeled according to international transport regulations (such as UN number 1941). Avoid exposure to heat, flames, and incompatible substances. |
| Storage | Dibromofluoromethane should be stored in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizers. Keep the container tightly closed and properly labeled. Use corrosion-resistant containers, preferably made of glass or specific plastics. Protect from sunlight and moisture, and ensure spill containment measures are in place to prevent environmental release. |
Applications of Dibromofluoromethane in Industrial ManufacturingDibromofluoromethane supports multiple downstream industries through its specialty halogenated chemistry. As an established producer, we supply material directly to advanced formulation and manufacturing operations that require precise and reliable performance for their end-use products. Below, we detail practical and compliant industrial scenarios, highlighting regulatory context, dosage, process integration, and finished goods resulting from every downstream sector. 1. Pharmaceutical Intermediate SynthesisPharmaceutical manufacturers use dibromofluoromethane as a halogen source in the synthesis of complex organofluorine intermediates for active pharmaceutical ingredients (APIs). The chemical’s unique substitution profile enables selective fluorination or bromination steps that are essential in modern drug molecule preparations. Its use is limited to strictly controlled reactors and tightly monitored process parameters to ensure API purity in accordance with completed validation and risk assessments. Industry compliance standards
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2. Fire Suppression Agent FormulationDibromofluoromethane is a recognized component in the production of halon blends for specialized fire suppression systems, especially in aerospace, defense, and archive protection. It forms part of the fire-fighting agent matrix designed for fast and controlled halogen release to interrupt combustion chemistry. Production facilities adhere to environmental and workplace safety controls, with precise metering to manage environmental loading and regulatory restrictions. Industry compliance standards
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3. Specialty Organic Synthesis (Agrochemical Actives)Chemical manufacturers producing advanced agrochemical actives use dibromofluoromethane for targeted introduction of halogen atoms at specific positions in molecular scaffolds. This facilitates the synthesis of highly selective pesticide and fungicide compounds, enabling improved field stability and bioactivity. Integration requires controlled reaction conditions, with continuous monitoring for halogen balance and residual content in intermediates. Industry compliance standards
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4. Refrigerant and Specialty Gas FormulationsDibromofluoromethane serves as an intermediate in the preparation of refrigerant blends and calibration gases, particularly where controlled halogen content is required. It enables fine tuning of boiling point and thermodynamic properties in downstream fluorinated gas formulations. In specialty gas production lines, operators blend defined volumes using gravimetric or volumetric dispensing under inert atmosphere to maintain quality and stability. Industry compliance standards
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5. Laboratory Reagent for Spectroscopy CalibrationAnalytical laboratories use dibromofluoromethane as a certified reference material in NMR spectroscopy and mass spectrometry method development. Its well-characterized fluorine and bromine nuclei enable calibration curves, sensitivity checks, and instrument tuning, especially in specialist organofluorine and halogen chemistries. Every shipment supports traceability and batch documentation with certificate of analysis. Industry compliance standards
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Dibromofluoromethane, also known as CHFBr2, remains one of those specialty chemicals that draws attention from precision industries. Our experience spans two decades synthesizing this halogenated methane derivative, and we’ve learned firsthand how its unique properties shape its place in the chemical landscape. The product ships out under our DBFM-995 model, reflecting an assay of 99.5% minimum by GC. Specifying the purity transparent in each batch, we make this assurance because downstream reactions demand consistency — especially in pharmaceuticals, organic synthesis, and material lab development.
The chemical structure gives dibromofluoromethane both reactivity and distinctive practical value. With a boiling point near 96°C and a density over 2 g/cm3, this compound finds stable performance under standard conditions, neither volatilizing too quickly nor degrading in sealed systems. Several groups turn to dibromofluoromethane precisely for its halogen content: bromine atoms provide desirable reactivity with nucleophiles, while the fluorine atom resists displacement, letting synthetic chemists direct reactions as planned.
In our factories and partner labs, dibromofluoromethane often acts as a key intermediate — not just as a standalone solvent or additive. Research teams match it with Grignard or organolithium reagents, exploiting its dual halogen properties to build up fluorinated organics. Scientists aiming to introduce a single fluorine atom into molecules use CHFBr2 as a controlled stepping stone, avoiding over-fluorination problems linked with other fluorinated methanes. Pharmaceuticals, agrochemicals, and advanced polymers all stem from reactions involving this small, seemingly simple molecule.
Material science teams want precision starting points — CHFBr2 supplies that fidelity. Its high degree of halogenation modifies polymer backbones, shifting thermal stability, flame retardance, or adhesion. In contrast to more aggressive halomethanes, this compound blends reliability with selectivity. During process scale-up, our engineers discovered that controlling temperature ramps and maintaining water-tight lines keep batch yields high; even a trace of moisture can catalyze decomposition or by-products, so we document best practices and continually update our technical support for clients.
Comparing dibromofluoromethane to other halomethanes is more than a technical exercise; it guides project design from the start. Take bromoform (CHBr3) and chlorodifluoromethane (CHClF2). Customers sometimes ask if one can substitute the other, but years of practice indicate major distinctions. For instance, bromoform delivers three bromine atoms — higher density, but less synthetic flexibility. Once a chemist replaces all hydrogens with halogens, future reactions grow unpredictable. Dibromofluoromethane leaves one hydrogen and one fluorine: chemists can tune reactions, insert the molecule into larger scaffolds, or selectively replace a bromine.
Chlorodifluoromethane sits on the opposite end: two fluorines, one chlorine, no bromine. Its reactivity and environmental profile differ widely. Dibromofluoromethane avoids some of the tighter environmental scrutiny faced by other halons and offers a distinct profile for producing CF2 containing intermediates. Case studies in our plant show that direct comparison pushes researchers to clarify their process needs; anyone chasing unique selective syntheses avoids the one-size-fits-all approach by considering the actual reactivity pathway.
Manufacturing dibromofluoromethane relies on exact starting materials and diligence at every stage. We acquire pristine chloroform and treat it under liquid-phase conditions with antimony trifluoride and bromine. Decades ago, some operators cut corners — resulting in lower yields or product with trace metal contaminants. Our best results came from patient addition: controlling pressure and temperature allows the halogen exchange to run complete without runaway exotherms or residual chloride. Quality monitoring, like GC-MS on every batch, tracks both product and trace side-products.
Handling the product downstream, plant operators factor in its moderate toxicity and volatility. Facilities need efficient ventilation and leak-free systems — not as hazardous as some industrial toxins, but not a benign material either. Long experience shows that simple safety investments pay off: proper cold traps, corrosion-resistant gaskets, and continuous online monitoring all reduce unplanned downtime and loss. In our earliest large-scale runs, even a loose valve cost thousands in lost raw material; now, with all-steel lines and dedicated operator training, efficiency stays high even as batch numbers rise.
Fluorinated and brominated methanes share a complicated relationship with government regulations. We monitor global changes closely, since any upward shift in environmental restrictions could upend entire production lines. Compared to some halons, dibromofluoromethane faces lower ozone depletion concerns, which explains its appeal to responsible manufacturers testing new synthetic ideas. As a company, our policy involves routine waste minimization and solvent reclamation — not because it’s a fad, but because costs drop and audits become less burdensome.
Over 15 years, regulatory agencies have issued several rounds of new reporting requirements. We don’t fear these changes; direct experience proves that early compliance pays dividends. Upgrading our vent controls, neutralizing halogenated wastes on-site, and keeping precise production logs all enabled seamless transitions. In 2019, when regional authorities asked for breakdown rates under simulated sunlight, we had experimental data in hand — our technical staff had already proven out low incidental emissions well ahead of the requirement.
Supply-chain transparency remains central. Our raw material records, inspection certificates, and shipment tracking feed into customer peace of mind. By focusing on full documentation, we’ve earned trust not only from buyers but also from external inspectors. On the rare occasion a customer reports an off-spec lot, rapid root-cause analysis usually traces back to an upstream parameter or equipment anomaly rather than inherent material variability.
Clients sometimes trial traders or brokers, hoping to shave a few cents per kilogram. The pattern rarely ends well: inconsistent purity, unreliable documentation, and minimal technical support give rise to production interruptions or unpredictable yields. We learned in the early 2000s that the cheapest-looking offer often ends up costing a plant far more through lost batches or failed rebounds. In one memorable situation, a major electronics manufacturer found that a tiny rise in metallic impurities crippled their yield in a photolithography precursor — they returned to us after two failed campaigns, and we helped them restore runs above 96% yield by providing both product and process audits.
Direct manufacturers offer more than drums of chemicals. We field every technical question directly: about solvent compatibility, process scale-up, or regulatory pathways. If a process engineer wants to validate dibromofluoromethane as a new intermediate or modify a formulation, our production chemists and lab staff provide more than theoretical answers. We’ve run those reactions ourselves, learned which grades work best, and logged which environmental controls avoid unnecessary downtime. That collection of know-how never passes through traders or distant sales desks.
We’ve seen dibromofluoromethane emerge in projects across three continents. In pharmaceutical pilot plants, its ability to act as a halogen carrier enables the preparation of advanced building blocks — for example, the introduction of specific fluorine atoms into aromatic frameworks. Engineers from an Eastern European research facility worked with our team to optimize their route: by leveraging the dual halogen presence, they cut intermediate formation times, reduced waste, and improved crystallization outcomes for the target active ingredient.
Polymer designers rely on CHFBr2 as a monomer precursor for specialty high-performance resins. Our best partnerships developed when formulation leads shared their performance targets upfront. In one case, a specialty cable manufacturer in Asia sought better fire resistance in insulation without compromising flexibility. Using our DBFM-995 lot, their research unit produced a proof-of-concept resin that met both flame-retardant standards and regulatory limits. Our ongoing dialogue helped them fine-tune halogen ratios and reduce outgassing.
Academic collaborations frequently explore CHFBr2 for original synthetic purposes. Graduate groups value consistent supply and open technical exchanges; a research university in North America used our dibromofluoromethane to develop new coupling reactions. The compound’s dual reactivity opened doors to forming C-F and C-Br bonds, which had previously required entirely distinct reagents and setups. Our production notes — including side-product charts and safe handling bulletins — gave their lab team a head start in avoiding known pitfalls.
Synthetic chemistry is never static. Over the past five years, demand for dibromofluoromethane in advanced organic transformations has grown alongside the push for more selective, less wasteful routes. We work on continuous improvement: refining purification sequences, investing in new distillation columns, and validating micro-analytics. Small process tweaks — like improved fractional condensing and targeted impurity tracking — offer persistent gains. As customers advance toward even lower threshold impurities, we step up to meet those requests; a recent example involved extra-deep cleaning cycles to supply sub-ppm metal content for use in optoelectronic material synthesis.
Digitization changes how we manage production. Automated batch logs, real-time spectroscopic analysis, and predictive maintenance have transformed manual work. For instance, online vapor-phase monitors now detect anomalous spikes before problems scale up. This lets operators adjust conditions on the fly rather than waiting for days-old analytics. Those investments give customers fewer delays, less batch loss, and higher consistency from drum to drum.
Supply chain shocks, whether pandemic, logistical, or political, tested our readiness repeatedly. Smooth operation relies on more than making molecules — it demands redundancy in raw materials, local supplier vetting, and strong export documentation. Where some companies scrambled, we found our years of direct supplier relationships and in-house quality control let us prioritize reliable partners. That’s how we can respond fast to changes in lead times and client requests — supporting both new and long-time users.
Real-world production includes daily hazards and routine challenges; dibromofluoromethane requires respect but no burdensome paranoia. Our plant workflow minimizes points where human error can cause spillage or unexpected release. Operators receive focused training: how to detect leaks, the correct PPE, and the route to containment in case of accidental release. We record every near miss or deviation, follow up each with practical retraining, and draw from those lessons to improve process hardware.
Over two decades, aggregate exposure incidents have dropped sharply — a direct outcome of procedural upgrades and a culture that empowers operators to report faults without fear. We invest in strong workplace communication: a team meeting before every shift sets expectations and flags any known equipment quirks. That regular rhythm underpins accident prevention more than any expensive gadget or regulation.
Waste management reflects a real-life balancing act: halogenated residues aren’t trivial to dispose. We built in neutralization tanks and partner with certified disposal vendors to close the loop. Throughout, compliance with local and international standards goes beyond paperwork — we test effluent, maintain up-to-date records, and participate in periodic audits. The upshot is a facility that faces fewer enforcement actions and achieves steady licensing renewals.
The case for using dibromofluoromethane rests on both chemistry and practicality. Compounds with mixed halogenation unlock reaction pathways that single-halide molecules cannot reach. Fluorine’s presence tunes both reactivity and final product stability, while the bromines allow selective transformations. Customers come to us with new project proposals every year: from targeted pharmaceutical intermediates to next-generation dielectric materials. By maintaining technical depth, stable quality, and transparent documentation, we provide more than just product — we give users a trusted building block.
Some industrial trends ebb and flow, but demand for reliable halomethanes—especially those with controlled fluorination and bromination—remains robust. As long as research and process teams dream up new molecular architectures, CHFBr2 has a practical future as both a tool for invention and a bedrock for established routes. We know this from tracking repeat orders, seeing finished products perform in the field, and working directly with teams to resolve bottlenecks in real time.
Surviving as a manufacturer in specialty chemicals hinges on more than annual price negotiations. Customers want stability, clarity, and a problem-solving attitude — especially when pushing boundaries in synthesis or scaling new materials. We treat every shipment as an extension of our reputation: documented purity, full traceability, and real-world experience offered up front. If a project stumbles on a reactivity snag or ambiguous regulation, most issues dissolve after a technical call and prompt follow-up samples for testing.
Partnership grows through shared challenges: revealing process flaws, rethinking reaction order, or identifying unexplored application domains. In three years, we’ve supported a major agricultural R&D push in Latin America, swapped feedback with electronics pioneers, and revised batch protocols for fine chemical producers needing results on tight timelines. The trust developed in these exchanges often expands to future business — new product lines, technical workshops, and mutual introductions across industries. That’s the snowball effect of genuine chemical manufacturing experience in action.
Dibromofluoromethane represents more than a niche molecule. It stands as a testament to what focused production, applied chemical knowledge, and ongoing customer dialogue can accomplish together. Our years in the trenches have proven that delivering on both the technical and human sides of business forges results that outlast trends and market swings. For anyone needing reliability, responsive support, and a proven history in halogenated chemistry, our doors and phone lines remain open. The ongoing evolution of synthetic methods and regulatory frameworks keeps us working, learning, and improving with every ton shipped from our plant.