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1-Bromononafluorobutane

    • Product Name 1-Bromononafluorobutane
    • Alias C4F9Br
    • Einecs 205-629-8
    • 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

    190013

    Cas Number 375-02-0
    Molecular Formula C4BrF9
    Molar Mass 299.93 g/mol
    Appearance Colorless liquid
    Boiling Point 68 °C
    Density 1.788 g/cm³
    Melting Point -80 °C
    Refractive Index 1.308
    Purity Typically ≥ 98%
    Solubility In Water Insoluble
    Vapor Pressure 196 mmHg at 25 °C

    As an accredited 1-Bromononafluorobutane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1-Bromononafluorobutane is packaged in a 100 mL amber glass bottle, securely sealed, and labeled with hazard warnings and product details.
    Shipping 1-Bromononafluorobutane is shipped as a regulated chemical, typically in tightly sealed containers to prevent leaks and exposure. It should be transported under cool, dry conditions, away from incompatible substances. Handling complies with local and international regulations, including appropriate labeling and documentation to ensure safe and legal transport.
    Storage 1-Bromononafluorobutane should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat, sparks, open flames, and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Store at temperatures below 30°C. Ensure proper labeling and keep containers upright to prevent leaks. Use appropriate chemical storage cabinets if available.
    Application of 1-Bromononafluorobutane

    Applications of 1-Bromononafluorobutane in Industrial Manufacturing

    As a direct manufacturer of 1-Bromononafluorobutane, we supply this advanced fluorinated compound to established global industries that demand stable performance in specialty applications. Below, we detail several focused downstream manufacturing scenarios where our product meets industrial requirements regarding compliance, formulation, processing, and finished goods quality.

    1. Electronic Fluorochemical Cleaning Solutions

    In the electronic components industry, manufacturers use 1-Bromononafluorobutane to formulate precision cleaning fluids for circuit boards and semiconductor wafers. With its high volatility, chemical inertness, and strong solvency for particulate and organic residues, process engineers deploy it in the removal of flux, ionic contaminants, and trace oils from delicate electronic assemblies, ensuring critical cleanliness before encapsulation or further processing.

    Industry compliance standards

    • IPC-5704: Cleanliness Requirements for Unpopulated Printed Boards
    • IEC 61190-1-2: International Soldering Material Standards
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • REACH (EC) No 1907/2006—Registration, Evaluation, Authorization and Restriction of Chemicals

    Typical usage ratio

    • Solvent blends contain 10–35% 1-Bromononafluorobutane by volume, adjusted according to residue type, evaporation rate requirements, and process line throughput.

    Downstream process integration

    • Integrated directly into ultrasonic or vapor degreasing stages following surface mount or wave soldering, then rinsed prior to final drying step.

    Final product types

    • PCBA assemblies for telecommunications
    • Microelectronic sensor modules
    • Consumer device motherboards
    • Semiconductor wafers ready for dicing or packaging

    2. Specialty Heat Transfer Fluids for Semiconductor Manufacturing

    Semiconductor wafer fabs and precision cooling system manufacturers blend 1-Bromononafluorobutane into dielectric heat transfer fluids to deliver consistent thermal management under harsh plasma etching or extreme UV (EUV) operation. Its low viscosity, non-conductivity, and high thermal stability support the safe removal of excess heat from advanced chip production lines while preventing ionic or particulate buildup over long duty cycles.

    Industry compliance standards

    • SEMI S2: Environmental, Health, and Safety Guideline for Semiconductor Manufacturing Equipment
    • CE Marking under Machinery Directive 2006/42/EC (as applied to cooling equipment)
    • IEC 61010-1: Safety Requirements for Electrical Equipment
    • UL 94: Flammability Standards for Plastics Used in Devices and Appliances

    Typical usage ratio

    • Blended into heat transfer formulations at 15–60% depending on target working temperature, electrical insulation requirements, and system circulation demands.

    Downstream process integration

    • Charged into closed-loop recirculating chillers, wafer coolers, and bath exchangers immediately after furnace or plasma reaction stations.

    Final product types

    • Dielectric cooling fluids supplied for direct immersion in wafer cooling racks
    • Coolant systems for stepper and EUV lithography platforms
    • Insulated heat exchangers for chemical vapor deposition lines
    • Sophisticated modular chiller units for foundry installations

    3. Pharmaceutical Aerosol Propellants for Metered Dose Inhalers (MDIs)

    Pharmaceutical formulation specialists employ 1-Bromononafluorobutane within select inhalation drug development programs, particularly when formulating experimental MDI propellants for high-purity, low global warming potential alternatives to legacy HFCs. Its molecular properties allow for controlled atomization and deep lung delivery of active pharmaceutical ingredients (APIs), while stringent batch purification addresses trace residuals for patient safety.

    Industry compliance standards

    • United States Pharmacopeia (USP) – General Chapter <825> Radiopharmaceuticals—Preparation, Compounding, Dispensing, and Repackaging
    • European Pharmacopoeia (Ph.Eur.) 01/2022:0065 (Aerosol preparations)
    • Good Manufacturing Practice (GMP) under EU EudraLex Volume 4
    • Guidance for Industry: Metered Dose Inhaler (MDI) and Dry Powder Inhaler (DPI) Drug Products (US FDA)

    Typical usage ratio

    • Aerosol formulations specify 60–94% by weight in the inhaler propellant mixture, dependent on the physical compatibility of API, required dose uniformity, and device pressure targets.

    Downstream process integration

    • Charged into pressure vessels with micronized API and excipients during aseptic filling and crimping of single-dose or multi-dose MDIs in class 100-10000 clean rooms.

    Final product types

    • Prescription and investigational metered dose inhalers (MDIs)
    • Clinical trial supply packs for respiratory pharmaceuticals
    • Novel propellant-based nasal sprays

    4. Advanced Fluorinated Coating Intermediates

    Processors of high-performance surface coatings and specialty fluoropolymer finishes utilize 1-Bromononafluorobutane as a reactive intermediate in the synthesis of tailored perfluorinated building blocks. Its structure allows for functionalization by nucleophilic substitution, enabling the manufacturing of hydrophobic, solvent-resistant coatings suitable for demanding aerospace, chemical containment, and precision optics fields.

    Industry compliance standards

    • ASTM D522: Standard Test Methods for Mandrel Bend Test of Attached Organic Coatings
    • ISO 12944-6: Paints and Varnishes—Corrosion Protection of Steel Structures by Protective Paint Systems
    • REACH (EC) No. 1907/2006—Annex XVII for per- and polyfluorinated substances
    • Full traceability per ISO 9001:2015 quality management systems

    Typical usage ratio

    • In reactive blending for fluorinated monomer synthesis, added at 5–18% relative to the polymer precursor mass as determined by stoichiometry of the desired substitution or chain-extension step.

    Downstream process integration

    • Introduced at the controlled addition step within the main reactor during polymerization prior to cross-linking and dispersion, influencing final surface energy and fluorine loading.

    Final product types

    • Anti-fouling and release coatings for aerospace assemblies
    • Corrosion-resistant linings for process vessels and piping
    • Optical-grade fluoropolymer finishes for high-precision lenses
    • Protective coatings for display panels and touchscreens

    5. Etch Gas Precursors for Advanced Printed Circuit Board (PCB) Fabrication

    Fabricators of multilayer PCBs and flexible circuits deploy 1-Bromononafluorobutane in the synthesis of non-flammable plasma etching gases used during the production of microvia and fine-line interconnects. Its uniform volatility and controlled fluorine delivery aid precise removal of organic substrate and copper features, avoiding undercut and delamination defects in high-density assemblies.

    Industry compliance standards

    • IPC-6012: Qualification and Performance Specification for Rigid Printed Boards
    • ISO 9001:2015 Quality Management Systems applied to PCB manufacturing
    • UL 796: Standard for Printed-Wiring Boards
    • Industry best practices for plasma emission controls and effluent abatement

    Typical usage ratio

    • Formulated into etch-gas blends at 4–22% concentration, selected based on substrate type, target feature size, and specific plasma process window.

    Downstream process integration

    • Dosed via mass flow controls into dry-etch reaction chambers adjacent to photoresist development and prior to mechanical panel cleaning or post-etch rinsing steps.

    Final product types

    • Fine-pitch multilayer PCBs for high-speed computing
    • Flexible printed circuits for automotive and consumer electronics
    • RFID antenna boards
    • Custom IC substrate panels
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    Certification & Compliance
    More Introduction

    Understanding 1-Bromononafluorobutane: Advancing Fluorinated Chemistry with Confidence

    Over the years manufacturing fluorinated compounds, we have witnessed that the evolving needs of electronics, pharma, and specialty chemical industries are driving innovation and demanding reliability from every molecule they use. Among our range, 1-Bromononafluorobutane (also recognized as perfluorobutyl bromide, CAS 375-02-0) distinguishes itself as a high-purity reagent at the intersection of performance and precision. A clear, colorless liquid with a distinct set of features, this specialty fluorocarbon has become indispensable to customers requiring robust solvency, chemical inertness, and precise reactivity.

    Why 1-Bromononafluorobutane Holds a Unique Place in Chemical Manufacturing

    In our manufacturing facility, we design every production run to meet rigid consistency standards. The specifics that set 1-Bromononafluorobutane apart lie in its nine fluorine atoms, which dramatically alter its characteristics compared to lower fluorinated analogs and other halogenated butanes. Not every fluorinated butane imparts the same thermal stability, hydrophobicity, or chemical selectivity. We see first-hand the differences these features make for end users. The presence of a terminal bromine atom introduces both versatility and reactivity, giving chemists a valuable handle for a broad spectrum of downstream syntheses, including cross-coupling and substitution reactions not accessible with most other perfluoroalkanes.

    In our experience, handling perfluorinated bromides like this requires specialized expertise—both in the reaction environment and in the design of purification routes. High-purity end products mean less background interference for critical reactions in the lab or plant. The chain length—specifically four carbon atoms fully substituted with fluorine—offers a careful balance: lower volatility than the shorter homologs, more manageable viscosity, and fewer environmental hurdles than longer-chain compounds. 1-Bromononafluorobutane has earned its reputation on the bench and in the reactor vessel thanks to these qualities.

    Production Reliability and Specifications from the Ground Up

    From raw material selection to the configuration of our reactors and distillation systems, our team controls every step with a focus on reproducibility. We monitor each batch by NMR, GC, and titration to ensure that the bromine and fluorine content matches stringent quality targets. Typical product leaves our facility at over 99% purity, with negligible moisture and minimal non-volatile residue. We’ve invested in closed transfer and bulk packaging solutions, reducing ambient contamination risk and keeping the bottling environment inert. Supporting the supply chain behind advanced fluorinated chemistry means treating each parameter as a lever on end-use performance.

    Quality begins with the incoming perfluorobutanol and extends to the methods we use for bromination and subsequent purification. Bromination with NBS or elemental bromine under photoinitiation must balance thorough conversion with minimized side-products—a difficult feat at scale. Industrial experience shows us that batch reactions require exhaustive analytical follow-up; we see the difference in long-term customer trust. Many products circulate on the market with suboptimal purity ranges, but high-value applications in microelectronics or pharmaceuticals simply will not tolerate that risk.

    End-Use Applications: Real-World Impact

    Working with engineers and R&D chemists across industries, we encounter applications where no substitute matches 1-Bromononafluorobutane’s chemical behavior. As an intermediate for synthesizing perfluorinated building blocks, this material has no real analog. You’ll find it as a prized reagent in coupling reactions, where its clean, controlled reactivity with organometallics allows the installation of perfluorobutyl groups onto aromatic or heterocyclic scaffolds. This has enabled a generation of specialty polymers and advanced ligands for catalysis.

    Semiconductor manufacturing routines often look to perfluorobutyl derivatives for surfactant systems or dielectric fluids. In those environments, purity and residue profile draw scrutiny at the parts-per-million level. Devices fail if contaminants persist, so purity isn’t an abstraction to us—it’s our daily focus. In medical device manufacture and pharmaceutical intermediate development, the absence of extractables and leachables in our bromoperfluorobutane makes it a first call for chemists in the field. Its utility stretches to liquid chromatography, high-performance surface treatments, and niche roles in fluorinated surfactant innovation.

    Chemists favor 1-Bromononafluorobutane for its unique balance: high fluorine content paired with a reactive leaving group, yet low enough molecular weight for manageable handling. The perfluorinated backbone gives it both thermal and oxidative stability, expanding how and where it can be deployed compared to non-fluorinated or partially fluorinated alternatives.

    Differences from Standard Perfluorinated and Halogenated Butanes

    Some view all perfluorinated compounds as interchangeable, but operational realities show otherwise. The distinction between 1-Bromononafluorobutane and, say, perfluorobutane or 1-chlorononafluorobutane, is not academic. The replacement of bromine with chlorine changes reactivity significantly; bromine is a more effective leaving group, so downstream synthetic possibilities expand. Compared to perfluorobutane—which contains no bromine or other reactive handles—the brominated version transforms from an inert fluid to a collaborative reagent for carbon-carbon bond formation.

    Chain length and branching play a role too. Shorter-chain compounds like 1-bromoperfluoropropane evaporate more readily, complicating storage and handling. Higher homologs, such as 1-bromoperfluorooctane, trend towards higher viscosity and slower reactivity, making them less attractive for applications demanding fast kinetics or low surface residue. Our product lands squarely in the sweet spot: manageable volatility, low toxicity profile, and predictable reactivity—satisfying customers looking to minimize both operational risk and environmental impact.

    Best Practices for Safe and Effective Handling

    Through the years, we’ve observed that familiarity with perfluorinated reagents does not always prevent costly handling errors. Details matter. 1-Bromononafluorobutane resists attack from water, acids, and bases under normal process conditions, but its volatility increases the importance of proper ventilation and personal protection. Experience taught us that investing in closed-system transfers saves both material and health costs. We regularly recommend using PTFE gaskets and glass reactors to avoid material incompatibility, especially at elevated temperature. The halogen atom invokes a necessary respect for environmental scrutiny, so we advise collecting all process residues for permitted disposal.

    Users in laboratory and pilot settings sometimes assume all perfluorinated substances are benign. Yet, we encounter regulations growing stricter regarding long-term persistence and bioaccumulation of certain class members. While 1-Bromononafluorobutane is typically consumed in chemical transformations, conscientious management of waste streams and emissions signals professional responsibility and foresight. Our supply chain partners recognize the value of proactively monitoring process air and waste.

    Upscaling, Consistency, and Market Realities

    Every year we get requests for larger volume commitments and expanded shipments. Customers have experienced market shortages of niche fluorocarbon building blocks, especially when demand surges in electronics fabrication or specialty surfactant research. Unlike bulk commodity chemicals, 1-Bromononafluorobutane demands careful scale-up to keep trace impurity levels controlled and avoid runaway byproduct formation. We built our dedicated process lines for just this reason, reducing cross-contamination with other halocarbons and maintaining physical segregation from non-fluorinated production.

    As synthesis routes evolve, we keep pace by refining our purification techniques. Lowering halide salt and iron traces avoids headaches later for the downstream chemist. The upshot for the buyer: confidence that every shipment performs identically, batch after batch, from kilogram jars all the way up to multi-ton containers.

    Global logistics favor those who can package and transport these specialty reagents without compromising quality. We deploy fluoropolymer-lined drums and cylinder valves with documented leak integrity. Simple mistakes at the final packaging line can erase months of careful synthesis—something no manufacturer or user can afford.

    Why Purity and Source Matter—A Manufacturer’s Perspective

    The conversations we have most often with customers revolve around origin and traceability. Sourcing from the manufacturer gives end users recourse if issues arise, with transparent insight into how and where every lot was made. We have seen market confusion when intermediaries broker poorly tracked material, leading to delays, reproducibility problems, and unnecessary regulatory concern.

    Direct supply lines also facilitate tailor-made solutions. On occasion, customers have required modified impurity profiles, adjusted distillation cuts, or documentation exceeding standard requirements. We foster these collaborations, drawing on our decades of technical know-how and laboratory data. For those scaling and qualifying new processes, the value of close communication with the actual producer far outweighs pennywise cost savings via anonymous brokers.

    Supporting Regulatory and Environmental Responsibility

    Our experience proves that delivering high-performance fluorinated intermediates responsibly is nonnegotiable. 1-Bromononafluorobutane, as a perfluorinated substance, must align with an evolving set of safety, stewardship, and reporting expectations. We proactively monitor regulatory developments across the United States, European Union, and Asia, regularly updating safety and compliance documentation. We maintain updated registration files and work in parallel with downstream users to support product stewardship and best practices in recordkeeping.

    We recognize that some stakeholders seek non-halogenated or partially fluorinated alternatives to reduce persistent organic pollutant loads. While 1-Bromononafluorobutane offers unique chemistry not duplicated by less fluorinated materials, we support efforts to recover, recycle, or safely destroy fluorocarbon process streams. Our R&D group continually explores both greener synthesis and end-of-life strategies. Internal process optimization reduced waste generation in-house, and we regularly share our findings with customers to improve their sustainability track record as well.

    Building Trust: Listening to the Marketplace

    Chemists want answers, not only molecules. Over the years, our technical team has responded to queries as varied as reaction byproduct formation, storage anomalies after intercontinental shipping, and integration into automated dispensing systems. Successful partnerships depend on knowledge transfer; we publish application notes and technical bulletins reflecting lessons learned, key safety tips, and optimal reaction conditions for new cross-coupling methodologies.

    It pays to invest in long-term relationships, not short-term transactions. Reproducible performance starts far upstream, from attention to precursor quality and trace impurity control, and runs through to after-sales troubleshooting. Our clients report fewer downstream surprises, saving money, time, and reputational risk—because we anticipate the needs behind each barrel, not just the shipment itself.

    Innovation and Looking Forward

    Fluorinated chemistry continues to grow in complexity, especially as next-generation electronics, specialty coatings, and pharmaceuticals push the boundaries of material science. 1-Bromononafluorobutane will keep serving as a foundation for building ever-more-sophisticated architectures. Our insight from decades of hands-on manufacturing guides the decisions we make improving process efficiency, minimizing operator risk, and meeting the sustainability expectations of a changing world.

    We keep adapting. Process improvements continuously lower the energy and materials footprint of each kilogram produced. Analytical breakthroughs let us identify and eliminate minor impurities in record time. Those savings and advances translate directly to customers, whose own success depends on reliability in their supply chain. Our teams regularly revisit both process safety and waste minimization targets to stay ahead of regulatory mandates and industry best practices.

    Final Thoughts: Relying on a Proven Supply Partner

    In today’s landscape, sourcing quality 1-Bromononafluorobutane supports both R&D agility and manufacturing scale. Its unmatched combination of fluorine density and synthetic flexibility keeps it in demand for some of the most challenging applications taking shape today. We have seen what it takes to move perfluorinated chemistry from the lab to production scale, and learned to treat every shipment as an extension of our manufacturing reputation.

    Our continued investment in technology, analytical rigor, and close customer communication means that each bottle, drum, or tank carries not just a product, but decades of collective expertise and commitment. Those lessons, hard-won across batches large and small, are why chemists worldwide rely on us when the margin for error disappears and only the best will do.