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1,6-Divinylperfluorohexane

    • Product Name 1,6-Divinylperfluorohexane
    • Alias Perfluorohexane-1,6-divinyl
    • Einecs 629-824-1
    • 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
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    Specifications

    HS Code

    513088

    Chemicalname 1,6-Divinylperfluorohexane
    Casnumber 120942-56-3
    Molecularformula C8H2F12
    Molecularweight 354.09
    Appearance Colorless liquid
    Boilingpoint 108-110 °C
    Density 1.63 g/cm³
    Meltingpoint -40 °C (approx.)
    Refractiveindex 1.285
    Solubility Insoluble in water
    Purity Typically >98%
    Smiles C=CC(C(F)(F)C(F)(F)C(F)(F)C(F)(F)C=C)=C

    As an accredited 1,6-Divinylperfluorohexane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1,6-Divinylperfluorohexane is supplied in a 25g amber glass bottle with a secure PTFE-lined cap for chemical stability.
    Shipping **Shipping Description:** 1,6-Divinylperfluorohexane should be shipped in tightly sealed containers, away from heat, sparks, and open flame. Store and transport under cool, dry conditions with adequate ventilation. Label as a chemical substance, and follow all relevant hazardous material and transport regulations for fluorinated organic compounds to ensure safety and compliance.
    Storage 1,6-Divinylperfluorohexane should be stored in a tightly sealed container, away from heat, sparks, or open flame, in a cool, dry, and well-ventilated area. Protect it from direct sunlight and incompatible materials such as strong oxidizing agents. Ensure proper labeling, and avoid prolonged exposure to air or moisture to prevent degradation or hazardous reactions.
    Application of 1,6-Divinylperfluorohexane

    Applications of 1,6-Divinylperfluorohexane in Industrial Manufacturing

    1,6-Divinylperfluorohexane plays a specialized role in high-performance polymer modification, advanced electronics, and specialty surface treatments. As the manufacturer, we supply this raw material strictly to sectors with validated, ongoing large-scale consumption. Below, we detail its primary downstream value chains, focusing on practical formulation considerations and industry benchmarks across multiple industrial scenarios.

    1. Fluoropolymer Crosslinking Agent for High-Performance Cable Insulation

    This compound serves as a molecular crosslinker in the synthesis of perfluoropolymer-based insulation materials for ultra-high-voltage and data transmission cables. Its introduction during copolymerization with fluoromonomers like tetrafluoroethylene enhances dielectric strength and thermal resistance. Our customers work under strict regulatory frameworks to achieve longevity and flame retardancy in advanced wire and cable markets.

    Industry compliance standards

    • UL 444 (Standard for Communications Cables)
    • IEC 60332-1 (Flame Retardant Standards)
    • RoHS Directive 2011/65/EU
    • REACH (EC 1907/2006) substance registration and reporting

    Typical usage ratio

    • 0.1–0.5 wt% relative to base fluoropolymer resin; actual value adjusted for molecular weight and desired crosslinking density

    Downstream process integration

    • Metered directly into the copolymerization reactor as a functional comonomer alongside tetrafluoroethylene, under high-pressure conditions; subsequent extrusion and irradiation steps depend on insulation grade required for final cable application

    Final product types

    • High-voltage power cable insulation sleeves
    • Data communication cable jackets
    • Rail and aerospace wiring sheath materials

    2. Hydrophobic Coating Precursor in Electronic Component Manufacturing

    Several electronics manufacturers use 1,6-Divinylperfluorohexane as a precursor for producing ultra-thin, chemically inert hydrophobic coatings applied on circuit boards and sensitive components. These coatings mitigate moisture ingress and support miniaturization by reducing dielectric losses in microelectronic assemblies, where stringent moisture and particle contamination guidelines exist.

    Industry compliance standards

    • IPC-CC-830B (Conformal Coating for Printed Boards)
    • IEC 60068-2-78 (Humidity Endurance for Electronics)
    • JEDEC JESD22-A101 (Moisture Resistance Test)

    Typical usage ratio

    • 2–8 wt% in solvent-based prepolymer solutions; exact ratio tailored to coating method (e.g., vapor deposition, spray, or dip application) and minimization of surface energy

    Downstream process integration

    • Introduced during the formulation of the prepolymer, then polymerized in situ after application to component surfaces under controlled UV or thermal curing environments

    Final product types

    • Circuit board conformal coatings
    • MEMS (microelectromechanical systems) water-repellent films
    • Silicon wafer anti-stiction layers

    3. Modifier for Lithographic Photoresists in Semiconductor Fabrication

    Advanced photolithography processes in semiconductor plants utilize this material as a reactive monomer in the synthesis of fluorinated photoresists. Its chemical structure imparts enhanced etch resistance and improved pattern fidelity during plasma processing, directly affecting chip miniaturization and yield optimization within foundry environments bound by international quality mandates.

    Industry compliance standards

    • IATF 16949:2016 (Automotive Semiconductors)
    • SEMI S2 (Semiconductor Equipment and Process Chemicals)
    • ISO 9001:2015 for process and quality management

    Typical usage ratio

    • 5–12 mol% as a co-monomer in photoresist resin synthesis; variation depends on target line width control and etch profile requirements

    Downstream process integration

    • Mixed with other fluorinated acrylates and photoinitiators at the resin preparation stage, followed by spin-coating, pattern exposure, and wet development in cleanroom semiconductor fabs

    Final product types

    • Advanced photoresist solutions for sub-20 nm node IC fabrication
    • Hard masks for deep-UV and extreme-UV lithography
    • Plasma-etch-resistant layer materials

    4. Plasma-Etching Gas Additive for Microstructure Fabrication

    In precision etching for microfluidics, MEMS, and high-frequency device manufacturing, our clients incorporate this fluorinated compound into plasma-processing gas mixtures to control etch rates, achieve anisotropic profiles, and minimize organic polymer redeposition. The use of our material facilitates delicate patterning of various substrates while meeting demanding environmental and safety criteria.

    Industry compliance standards

    • SEMI S2/S8 (Environmental Health & Safety)
    • OSHA 29 CFR 1910.1200 (Hazard Communication Standard)
    • IEC 60749-20 (Microelectronics Device Reliability)

    Typical usage ratio

    • Gas-phase dosage: 0.5–3% volume fraction blended with carrier gases such as CF4 or SF6; precise ratio adjusted in situ based on etching system design and etch profile target

    Downstream process integration

    • Injected in controlled pulses during deep reactive ion etching (DRIE) or plasma processing inside vacuum chambers; real-time gas monitoring to conform to product and facility safety requirements

    Final product types

    • Microfluidic chip architectures
    • High-frequency RF filter substrates
    • MEMS sensor arrays

    5. Chemical Vapor Deposition (CVD) Precursor for Low Surface Energy Films

    In the surface modification industry, 1,6-Divinylperfluorohexane acts as a precursor for CVD-grown ultra-thin fluorinated films that impart exceptional anti-fouling properties to optical lenses, display panels, and plastic substrates. Such coatings undergo thorough quality validation in clean production facilities, meeting demanding purity and adhesion benchmarks for precision optical and display technologies.

    Industry compliance standards

    • ISO 9211-4 (Optical coating durability)
    • IEC 62899 (Printed Electronics, Film Quality)
    • RoHS Directive 2011/65/EU

    Typical usage ratio

    • Gas-phase injection: 0.1–0.6 mmol per square meter of substrate area; dosage refined based on film thickness and substrate chemistry

    Downstream process integration

    • Vaporized and introduced into CVD reactors at controlled rates; reacts on heated substrate surfaces to achieve continuous polymeric fluorinated films, post-treated for enhanced adhesion

    Final product types

    • Anti-smudge touch screens
    • Lens anti-reflective and anti-fouling coatings
    • OLED and LCD display protection films
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    Certification & Compliance
    More Introduction

    1,6-Divinylperfluorohexane: A Closer Look from the Manufacturer’s Floor

    Introduction to a Distinctive Fluorinated Compound

    Every product emerging from our chemical plant carries the weight of real-world use, feedback from years at customer sites, and the quiet improvements made on the factory floor. 1,6-Divinylperfluorohexane, which we know by its molecular tag of C8F12, has steadily grown in demand among specialists in electronics, advanced polymer synthesis, and surface science. For those of us who have followed its journey through reactors, from early runs to refined procedures, this compound highlights the value you get from a process deeply tuned for purity and reproducibility.

    Core Properties and Specifications

    1,6-Divinylperfluorohexane brings together two vinyl groups anchored at each end of a perfectly fluorinated six-carbon chain. In the plant, this translates to a colorless, volatile liquid, often with purity targeted above 98%. The chemical formula, C8F12, reflects a molecule that shields itself from external interactions almost as fiercely as PTFE, thanks to the dense fluorine coverage. This property doesn’t come from any one reaction—it results from strict distillation sequences, deeply tested fluorination steps, and continuous monitoring for contaminants like partially hydrogenated residues, which our senior technicians check using GC/MS on every batch.

    We supply the product under the catalog designation DVPFH-16, which ensures traceability right back to the synthesis log and chromatography records. Over the years, we have set standard packaging to minimize moisture ingress. We avoid larger drums that risk cross-contamination and stick to sealed glass ampoules or smaller fluoropolymer-lined canisters, each run purged under inert atmosphere. Shelf life depends on the handling environment, but in our experience, integrity holds for years under non-reactive conditions, without trace yellowing, polymerization, or loss of yield during transfer.

    Why 1,6-Divinylperfluorohexane Matters: Practical Value on the Production Line

    People outside the industry sometimes miss why this molecule matters compared to other perfluoroalkyl compounds. The answer lies in the two terminal vinyl groups. They give a single molecule the chance to act as a building block—bridging or linking together complex architectures in high-performance materials. Halogenated solvents or perfluoroethers might offer inertness, but they lack this specific chemical “handle” for polymerization or molecular grafting. When we supply 1,6-divinylperfluorohexane to a client looking to make fluorous crosslinked coatings, the reactivity is both predictable and limited, reducing side reactions and unwanted byproducts compared to traditional hydrocarbon divinyls.

    In our work with electronics manufacturers, staff have repeatedly echoed the same thing: alternate perfluoro vinyl compounds such as 1,4-divinylperfluorobutane or 1,8-divinylperfluorooctane do not hit the same balance of volatility, molecular flexibility, and crosslink spacing. The six-carbon chain in 1,6-divinylperfluorohexane gives just enough rigidity for defined network formation, but keeps volatility in check to avoid unacceptable evaporation during thin film curing. The saturated fluorine barrier suppresses dielectric losses and largely shrugs off aggressive acids or plasma treatments in microchip fabrication. Watching a batch of wafers run through plasma processing, we’ve seen lower outgassing artifacts where a high-purity 1,6-divinylperfluorohexane layer functions as a precursor, rather than older organic coatings that break down under the same stress.

    Comparisons with Other Fluorinated Reagents

    Our team frequently receives questions about whether hexafluoropropylene oxide, perfluorohexane, or long-chain perfluoroalkenes could “fill in” for 1,6-divinylperfluorohexane. In practice, they solve different problems. Perfluorohexane is a classic heat transfer agent or solvent, sure, but it has no functional group ready for polymerizations. Longer chain divinyl perfluoro compounds often lead to excessive flexibility or incompatibility with certain crosslinking chemistries. Shorter chains, on the other hand, tend to boost volatility or shift film structure away from the desired nanoscale range.

    Our own testing bears this out. Polymers made from 1,6-divinylperfluorohexane consistently feature smooth, defect-minimized surfaces after curing—close inspection under the electron microscope confirms little phase segregation, as the vinyl groups anchor to matrix chains at a distance that avoids steric clash. In an industry fixated on yield and performance, such batch-to-batch consistency creates less waste and reduces troubleshooting time.

    Applications Shaped on Factory Floors

    Most of what we know about applications doesn’t come from just literature, but from suppliers and engineers who call us to discuss process tweaks. In microelectronics, 1,6-divinylperfluorohexane acts as a precursor for robust coatings that barely interfere with signals—a property that matters when working at millimeter and submillimeter wave frequencies. The fluorinated backbone blends low dielectric constant with high hydrophobicity, so connectors stay free from moisture even after salt fog tests. Some clients in aerospace exploit the same structure to create composite layers that withstand rocket fuel mixtures which degrade polyolefin-based coatings in weeks.

    We recently worked closely with a pilot line seeking advanced lithographic resists. Their feedback proved again the advantage of the double vinyl functionality: more uniform crosslinking, fewer pin-holes after bake-out, and lower pattern collapse probability even as design rules edge downward. In another case, one research group requested custom batch synthesis with specific isotope labeling to trace surface reactions. Our plant’s flexibility—real people adjusting fluorinator conditions or monitoring chromatograph signals through the night—delivers what generic traders or repackagers simply cannot.

    Handling and Safety Realities

    From a manufacturer’s view, there is an entire invisible story behind every drum or canister leaving our site. We train our staff to respect 1,6-divinylperfluorohexane’s volatility and to keep lines swept with dry nitrogen during transfer. Its chemical inertness reduces fire risk compared to hydrocarbon analogs, but the devil lies in handling practices, not broad rules. Standard safety glasses, nitrile gloves, and local ventilation form the baseline, and spills clean up easily with activated charcoal or carbon sorbents. Many of our end users receiving pre-weighed ampoules appreciate the added safety and measurement certainty, especially around sensitive optical equipment or in gloveboxes where contamination concerns outweigh all else.

    Economic and Supply Chain Insights

    As a plant working at the frontier of fluorine chemistry, we appreciate how raw material fluctuations can ripple straight to end-users. We maintain strict sourcing guidelines for the base perfluoroalkyl iodides and fluoride sources. This keeps pricing stable and lets us absorb shocks instead of passing them down-line overnight. Persistence pays off: By investing in reactor upgrades years ago, our facility achieved both higher yield and sharper separation from oligomeric byproducts. We monitor every batch, not just for client spec compliance, but also to anticipate irregularities in the upstream fluorocarbon mix. Such vigilance keeps product off the line if any impurity creeps above our tried-and-tested benchmarks.

    Our approach stands apart from brokers who chase spot deals and sometimes mix material from various suppliers without full traceability. Direct manufacturing, continuous inventory tracking, and real-time customer feedback offer a steadier hand during spikes. We have answered questions from multinational R&D teams during sudden supply crunches—our records allowed us to map available inventory instantly, letting critical projects continue while others waited for restocked containers.

    Environmental and Regulatory Responsibility

    Fluorinated chemicals draw their share of scrutiny these days, and rightfully so. We track all local and international regulations regarding registration, permitted emissions, and downstream disposal. 1,6-Divinylperfluorohexane, with its saturated backbone, largely avoids the breakdown routes that create persistent perfluorooctanoic acid or similar legacy contaminants. Tight process control ensures both minimal waste and quantifiable off-gas capture. Our waste streams run through full containment, then into advanced carbon filtration before any release. Plant staff routinely log emissions, independently verified by outside auditors who tour our fluorination wing at least twice per year.

    Recent regulatory changes in some regions have called for even stricter certification. Because we design processes in-house, we pivot quickly and keep documentation ready for new standards. Clients have presented us with requests for custom regulatory records; our sample archiving, dating back years, makes this straightforward. We supply documentation on silicone and perfluorinated contamination thresholds to any customer on request, and never ship outside the scope of registered applications. Our team expects new regulations in the future and has already allocated resources toward greener synthetic routes, such as electrochemical steps that trim reagent consumption by up to 30% in scale-up trials.

    Challenges and Real-World Solutions

    Producing 1,6-divinylperfluorohexane at the purity demanded by advanced industry brings unique challenges. Even small levels of partially fluorinated byproducts or residual catalyst can derail high-frequency electronic performance or lead to batch rejections in sensitive applications. To deal with this, our team has developed a dedicated furnace and distillation train that operates under continuous monitoring, using feedback from inline NMR and MS. When instruments flag deviations, we halt production and adjust conditions before wasting valuable raw fluorocarbons.

    Shipping volatile, fluorinated organics overseas carries real headaches, from customs checks to compatibility issues with seals and transfer pumps. We resolve this with clear labeling (avoiding vague ‘perfluoroalkene’ terminology), robust secondary containment, and dialogue with freight handlers and customs across major trade routes. Our logistics coordinator works closely with production—a real partnership that streamlines delivery times and slices through paperwork that often delays less-experienced shippers.

    On the technical side, clients sometimes require blends with other monomers, adjusted viscosity, or tailored vapor pressure for unique equipment. By manufacturing in-house, we can rerun a batch to precise end-points or custom filter for particulates below 0.05 microns, something no wholesaler or bulk repacker attempts due to cost and risk. This directly supports process optimization on our customer’s end and builds long-term trust between lab benches and the reactor crew.

    Voices from the Chemical Floor: People and Technology

    It’s easy to focus on numbers, throughput, or paperwork, but the real story involves technicians who know the faint scent of a clean fluorination run versus one veering off-course. Their experience guides each reactor setup and keeps QC sampling aggressive rather than complacent. We value cross-functional knowledge sharing—lessons from a reactor upset go straight into operator guides, and those guides are revisited often. The result isn’t just a box of chemical; it’s a process honed until outlier runs become rare exceptions.

    Diversifying the skillset of our plant staff means that each shift—whether handling packaging, running analytics, or setting up distillations—carries knowledge passed down from earlier workers and built on daily experience. Our research team runs pilot projects with the production crew, letting insights from failed fractionations or tricky moisture pickups fuel future improvements. Reactors, lines, and pumps are tweaked after hours if necessary; continuous improvement is part of the job, not something left for audits or quarterly reviews. This effort shows up in the consistency end-users notice, as rare call-backs attest to our refusal to let standards slip, no matter the economic climate.

    Research, Collaboration, and Future Directions

    Beyond daily production, our technical team stays plugged into emerging research. We host visiting academic groups interested in novel surface treatments, and sponsor joint tests with university teams seeking to create next-generation fluoropolymer networks. Some of these efforts have led to new blends combining 1,6-divinylperfluorohexane with emerging silicon or phosphorus-based components, offering benefits beyond traditional perfluorinated polymers. Feedback from these experiments lands directly back at our factory, spurring improvements and new production protocols.

    Forward-looking, we are rigorous about sharing results that help the industry as a whole. If problems arise with a specific application—crazy adhesion issues, unexpected UV breakdown, or incompatibilities with exotic co-monomers—we treat these not as proprietary secrets, but as learning opportunities. Discussions with peer manufacturers highlight pitfalls and drive industry-wide standards up. This habit pays off: our 1,6-divinylperfluorohexane doesn’t just meet benchmarks, but sets many of them, as demonstrated in recurring adoption across demanding R&D groups.

    Closing Thoughts on Value and Responsibility

    Our ongoing commitment as a direct manufacturer remains simple: deliver each kilogram of 1,6-divinylperfluorohexane with the full assurance carved from careful production, direct engagement with users, and relentless attention to detail. No process is ever truly finished—new customers bring new formulations, and old customers push for ever-higher purity and performance. By staying rooted in the reality of plant operations, not far-removed marketing, the feedback loop remains tight and honest. Engineers, scientists, and supply chain managers know they are working with a partner who sees the full arc of the product: from perfluorinating reactor, through glass-lined distillation, to the packed, labeled containers stacked in the shipping bay.

    Safety, purity, reliability—these don’t come from slogans, but from years of attention and a genuine investment in people and technology. As the market for advanced functional fluorocarbons keeps shifting, our own experience on the production line ensures that every batch of 1,6-divinylperfluorohexane consistently benefits those pushing the boundaries of science and technology.