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HS Code |
721527 |
| Cas Number | 423-55-2 |
| Molecular Formula | C8Br2F14 |
| Molecular Weight | 571.87 g/mol |
| Appearance | Colorless liquid |
| Melting Point | -12 °C |
| Boiling Point | 178 °C |
| Density | 2.275 g/cm³ at 25 °C |
| Refractive Index | 1.325 at 20 °C |
| Solubility In Water | Insoluble |
As an accredited 1,8-Dibromoperfluorooctane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1,8-Dibromoperfluorooctane is supplied in a 100g amber glass bottle, sealed with a PTFE-lined cap, and labeled with safety warnings. |
| Shipping | 1,8-Dibromoperfluorooctane is shipped in tightly sealed containers, protected from moisture and direct sunlight. It should be packed and labeled according to hazardous materials regulations due to its chemical properties. Ensure upright transport, avoid excessive heat, and follow all national and international shipping guidelines for fluorinated organobromine compounds. |
| Storage | **1,8-Dibromoperfluorooctane** should be stored in a tightly closed container within a cool, dry, and well-ventilated area. Keep away from sources of ignition, heat, and incompatible materials such as strong bases or reactive metals. Protect from direct sunlight and moisture. Properly label the container and ensure access is restricted to trained personnel, wearing appropriate protective equipment. |
Applications of 1,8-Dibromoperfluorooctane in Industrial ManufacturingAs a direct manufacturer of 1,8-dibromoperfluorooctane, we supply this specialty fluorinated intermediate to varied industrial sectors. Its unique molecular structure enables reliable performance in high-safety, high-durability, and high-purity downstream synthesis, especially where selective reactivity and chemical inertness are required. Below are key industrial application tracks and specifications. 1. Electronic Liquid Insulation in High-Voltage EquipmentOriginal equipment manufacturers in the electronics and power sector rely on 1,8-dibromoperfluorooctane as a functional base for advanced insulating liquids. The compound’s high dielectric strength, low electrochemical reactivity, and thermal stability enable its use in electronics-grade perfluorinated liquids for circuit breakers, transformers, and gas-insulated switchgears. Its integration supports both legacy hardware upgrades and development of next-generation compact systems demanding clean, low-loss insulation over extended operational life. Industry compliance standards
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2. Synthesis of Fluorosurfactants for Oil & Gas Drilling FluidsService companies in petroleum and mining operations utilize 1,8-dibromoperfluorooctane as a reactive brominated fluorointermediate during the manufacture of custom-tailored fluorosurfactants. Its reactivity allows for selective substitution processes, generating surfactants with superior wettability modification and emulsion stability even under extreme downhole temperature and salinity. This expands the toolkit for extracting unconventional reserves and managing complex well chemistries with enhanced environmental compatibility. Industry compliance standards
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3. Manufacture of Chemically Resistant Coatings for Aerospace ComponentsAdvanced materials manufacturers integrate our dibrominated perfluorocarbons in the production of specialty resin systems designed for aerospace and defense. The product acts as a reactive intermediate for synthesizing fluoropolymer resins delivering extreme chemical and environmental resistance. These high-performance coatings extend life of airframe, landing gear, and fuel system components in aggressive fuels, hydraulic fluids, and de-icing solutions, supporting stringent reliability and off-gassing requirements for aerospace applications. Industry compliance standards
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4. Synthesis of Advanced Fluorinated Monomers for Specialty ElastomersChemical and elastomer manufacturers employ 1,8-dibromoperfluorooctane in the synthesis of advanced fluorinated monomers, critical precursors for high-end fluororubber production. Its reactivity allows controlled incorporation into complex polymer chains, imparting resistance to aggressive chemicals, plasma, and thermal cycling. Final elastomer compositions target use in semiconductor equipment, chemical plant hardware, and precision sealing for high-purity lines, where standard elastomers fail. Industry compliance standards
Typical usage ratio
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Every batch of 1,8-Dibromoperfluorooctane leaving our reactors carries the fingerprint of the people who shape and handle it daily. We’ve learned in our chemical plants that raw specifications on paper rarely do justice to the journey a molecule takes from feedstock to finished drum. This compound—C8F16Br2 for the technically inclined—stands out for more than just its perfluorinated backbone and twin bromine atoms. Customers across specialty chemical and electronics sectors often come to us not because we offer another commodity, but because their applications demand precise, replicable material performance. There’s real experience behind those claims, because we’re the ones guiding every stage, not companies relabeling finished goods.
Producing 1,8-Dibromoperfluorooctane isn’t as simple as mixing bromine with perfluorooctane. Each run in the reactor has to account for the reactivity and selectivity challenges unique to fluorinated chains. Unlike standard alkane brominations, the fluorine atoms along the backbone demand special handling. Bromination tends to target the terminal carbons. This leaves every molecule in our batches with bromines reliably anchored to the 1 and 8 positions. Factory experience taught us long ago that trace side-products—other positions getting brominated—pose real trouble downstream in electronics or specialty polymer synthesis. Tighter control in the reaction and purification means downstream users avoid costly patchwork fixes.
In our plant, purity checks don’t stop at the typical GC or NMR. High demand applications—semiconductor wet etches and liquid dielectrics among them—put a spotlight on batch consistency and subtle contamination risks. Routine screening picks up halide residuals, peroxides, and any organofluorine ‘ghosts’ left over from process lines. Customers appreciate the detail we build into our quality control, because surfactant residue or poorly washed intermediate can cause field failures or abnormal readings.
Real-world projects ask for more than a generic spec sheet, so we typically supply 1,8-Dibromoperfluorooctane in liquid form, more often than not at a technical or electronic grade. The boiling point lands it safely into manageable process windows for most users. Our standard model is packaged in fluoropolymer-lined drums or special containers for lab quantities, since standard metal canisters sometimes lead to corrosion or interaction, especially during long shipping times or extreme climates. We began offering tailored fill sizes a few years back after seeing customers with small-batch needs forced to buy vastly more material than required, leading to waste and safety headaches.
From a viscosity and handling point of view, this material pours smoothly even at room temperature, without the volatility concerns that come with lighter perfluorinated compounds. Crews on the blending floor appreciate that it doesn’t give off the sharp, lingering fumes seen with some fluorinated solvents. Every barrel that moves out gets checked for appearance—water-clear and free of haze.
Most inquiries start with a clear goal in mind. Customers specify 1,8-Dibromoperfluorooctane for applications that need inflexible chemical resistance and thermal stability. The electronics sector finds it especially valuable for its robust dielectric strength and inertness in high voltage or plasma environments. We’ve shipped product to support companies pushing the envelope in microchip manufacturing, where weak-link solvents or impurities mean scrap and rework on high-value wafers.
In specialty polymer synthesis, the perfluorinated skeleton serves as a backbone for building advanced materials. The bromine atoms at each end open up straightforward routes for further functionalization—crosslinking or introducing other reactive groups. Our engineering team often coordinates with R&D staff on custom orders where a predictable starting point is vital. They use our dibromo compound as a modular anchor for superhydrophobic coatings, lubricants, and even some advanced fire suppression agents.
Environmental stability counts. Projects needing compounds that withstand aggressive acids, bases, or sustained high temperatures see clear value in C8F16Br2. Fluorinated chemicals rarely break down in field conditions. Our clients have run qualification tests and long-term exposure studies where other carbon-based compounds failed, while this molecule stood fast, even under UV-rich or ozone-heavy atmospheres.
Chemically, perfluorinated chains follow a pattern. Every carbon swaddled in fluorine means unrivaled resistance to breakdown, but put bromines at the right locations, and you unlock new reactivity. There’s a tendency in the trade for some suppliers to confuse 1,8-Dibromoperfluorooctane with other bromoperfluorooctanes or even with mono-brominated grades. Our relationship with formulation chemists in client labs makes it clear—random or single-site bromine isn’t enough when you need defined structure-activity relationships. Mono-bromo analogues can’t deliver the same dual-anchor effects in stepwise syntheses or crosslinking procedures.
We’ve seen cases where end users tried swapping for 1-bromoperfluorooctane or 1,2-dibromoperfluoroalkanes hoping for cost savings. In polymer workups, for example, mismatched reactivity leads to inconsistent chain lengths or incomplete grafting. Several R&D teams reached out for troubleshooting only after performance or product shelf life took a hit. Our plant teams know how crucial that double bromine placement is: it means every molecule acts as a true bridging agent, not a dead end or unreliable chain stopper.
Another differentiator involves volatiles and purity. Lower-grade or under-purified material can drag in residuals from side reactions, including partially fluorinated species or nondescript halides. In precision electronics, those ghost species threaten critical dielectric and breakdown specs. Our regular customers stick with our supply chain because our on-site purification removes those problems before they can show up inside a clean room or pilot-scale reactor.
Our team has worked alongside engineers scaling up high-performance cable insulation, supplying drums to groups tackling new generations of fire-retardant coatings. Each time, partners remarked how competing brominated compounds either fell short on lifespan or lost their structure under harsh processing. Unlike others that char, seep, or produce problematic off-gassing, well-made 1,8-Dibromoperfluorooctane remains stable, supporting safe handling and predictable performance in both bulk and specialty settings.
Microelectronics fabricators lean on us for guaranteed purity lots, critical for lithographic and plasma-treated surfaces. Our direct access to manufacturing means we take feedback from field trials and feed it back into process controls. If a particular batch delivers higher yield or lower defect margins, we trace root causes and document the lessons. We’ve worked through periods of tight regulatory scrutiny, adjusting handling practices and improving packaging to address stricter regional controls or logistics limits.
Smaller R&D outfits value our ability to provide pilot-scale fills and documentation on molecular structure, spectral fingerprinting, or lot history. We’ve seen multiple research groups publish using our compound for functional group substitutions, achieving surface modifications or catalytic intermediates not feasible with alternatives. For them, confidence in lot consistency streamlines both regulatory paperwork and project timelines.
Shipping this material safely takes experience. We learned early on that perfluorinated chemicals, while tough in lab settings, can react badly to careless storage. Placement in temperature-controlled warehousing pays off, especially for large inventory turns or delays at customs. Our plant manages dedicated fluoropolymer transfer lines and drums to prevent leaching or accidental contamination from process residues. Customers visiting our warehouse see labeled, segregated zones—a discipline built up from decades of feedback and incident reviews.
Safety around this family of chemicals isn’t a checkbox exercise. Each operator receives hands-on training before working the filling stations or interacting with bulk transfer lines. We reinforce the value of PPE, spill management, and emergency stop equipment in our daily briefings and shift handovers. Our records show the incident rate remains extremely low, even with regular auditing from outside partners. Direct involvement in production means our managers see issues firsthand and act on them quickly, not waiting for a quarterly review or distant emails.
End users also count on traceability. Every drum carries identifying batch data, pulling from process logs that record key reaction parameters and sampling results. If ever a quality issue arises, we work with customers to investigate—sometimes even retrieving retained lab samples to cross-check purity claims or diagnose application setbacks. Relationships between production, shipping, and application departments form the backbone of rapid troubleshooting.
Experience in perfluorochemical synthesis means grappling with a changing regulatory landscape. As countries update their frameworks around persistent organofluorine compounds and halogenated chemicals, we monitor rules and guidance closely. Our team stays in regular contact with environmental managers and legal counsel to upgrade handling, containment, and waste management protocols as expectations shift. Instead of merely posting warning signs or generic paperwork, we host regular workshops with site staff, share regulatory updates, and build controls into engineering modifications.
Environmental scrutiny isn’t just a paperwork exercise. Back at the plant, we upgraded vent controls, solvent reclamation, and off-gas cleaning to lower overall plant emissions. Alterations to filtration and solvent stripping made a real difference in reducing off-spec discharge, protecting both workers inside the gate and the wider community beyond the fence. Waste collection contractors on-site participate in reviews, ensuring transported residuals get treated or destroyed following the highest standards, not low-bid shortcuts.
Customers propose questions regarding end-of-life disposal and downstream environmental impacts. While C8F16Br2 is designed for stability and durability, we never dismiss these inquiries as someone else’s problem. Instead, we feed lessons from customers, regulators, and internal risk reviews back into process design and after-sales support.
No product stands still. As manufacturing chemists, we’d rather hear about potential shortcomings during a customer’s pilot run than after a major field failure. Structured feedback loops let us adapt batch procedures, update purification steps, or even consider longer-term alternatives to feedstock sourcing. We keep open lines to R&D users, regulation specialists, and operators inside our own plant.
Recent years pushed us to document and tighten hazard labeling, improve digital batch tracking, and swap out some process aids after tough conversations with downstream users and regulatory bodies. This openness sharpens our rigor and boosts the broader industry’s standards for similar chemicals. One lesson stands out: detailed operator logs, systematic small-scale trial runs, and precise customer feedback create a virtuous circle, improving quality and real-world reliability.
It’s easy to lose perspective when C8F16Br2 appears as just a line item on an invoice. Inside our facility, every production run connects teams from procurement to lab analysis, from line engineers to documentation specialists, each accountable for what leaves the factory floor. Real ownership and presence—being on the ground, solving problems as they come, listening to partners—is why many customers return with their next order.
Customers relying on 1,8-Dibromoperfluorooctane usually build high-value products or push boundaries in R&D. For them, process drift, unknown contaminants, or unreliable documentation disrupt both timelines and budgets. We support firms making coatings, electronics, and specialty polymer backbones, applications where deviations cost more than just rework—they can threaten entire product lines or safety certifications.
Our investment in plant modernization came after seeing firsthand how small process deviations spiraled into quality variation. Customers upstream and downstream push us to maintain discipline, not just for compliance but because field failures link directly to careless manufacturing. The in-house synthesis, control, and documentation offer advantages that resellers and traders often lack. There’s accountability built into every step, from raw material procurement to filled drum.
End users share data, not just complaints. If a coating fails rapid-aging simulation or an electronics batch flags nonconforming dielectric readings, we have the source data and retained samples to investigate. Customers stick with us through regulatory transitions and market swings because, as chemical producers, we own the challenge and fix it directly, not by bouncing the issue from desk to desk.
As end-use markets evolve, so too does our responsibility. Working with researchers developing novel coatings, fire suppression solutions, or precision electronics means constantly reviewing and refining our practices, from reactor setups to analytical methods. Our internal R&D keeps pace, investigating both near-term improvements and long-range redesigns in pursuit of better performance, safer handling, and reduced environmental impact.
Open communication with project leads, regulatory councils, and peer manufacturers helps us anticipate emerging needs—whether it’s a new packaging format, better shelf-stability, or compatibility with stricter compliance regimes. We share what we learn about the behavior of dibromoperfluorooctane over long transport, in novel blending scenarios, or in fielded equipment. This expertise—earned from running the actual manufacturing process, managing plant risk, addressing user setbacks—distinguishes us from those merely passing along drums.
Choosing 1,8-Dibromoperfluorooctane from a dedicated producer with feet in both the lab and on the shop floor means you’re buying more than a molecule. You receive the accumulated lessons of years of synthesis, real stakes in every specification, and a partnership focused as much on your project’s end goals as on what goes into a drum. Dependable quality, flexible supply, and honest feedback—these are the standards we set and meet daily, not out of obligation, but because lasting success in specialty chemicals relies on true, ongoing collaboration between maker and user.