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3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane

    • Product Name 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane
    • Alias Glycidyl 2,2,3,3,4,4,5,5,6,6,7,7-dodecafluoroheptyl ether
    • Einecs 498-220-7
    • 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

    843818

    Chemicalname 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane
    Casnumber 166111-82-0
    Molecularformula C9H9F12O2
    Molecularweight 374.15
    Appearance Colorless to pale yellow liquid
    Density 1.56 g/cm3 (approximate)
    Solubility Insoluble in water, soluble in organic solvents
    Refractiveindex 1.336 (approximate)
    Purity Typically >95%
    Storage Store in a cool, dry, well-ventilated place
    Smiles C1(C(C2=CC=CC=C2)O)COCC(F)(F)C(F)(F)C(F)(F)C(F)(F)C(F)(F)F

    As an accredited 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sealed amber glass bottle, labeled with chemical name and hazard symbols, containing 25 grams of 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-epoxypropane.
    Shipping This chemical, 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane, must be shipped in tightly sealed, chemical-resistant containers, protected from moisture and heat. It should comply with all relevant hazardous material shipping regulations. Ensure proper labeling, documentation, and cushioning to prevent spills, and transport via approved couriers equipped for chemical handling.
    Storage Store **3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-epoxypropane** in a cool, dry, and well-ventilated area away from heat, ignition sources, and incompatible substances such as strong acids and bases. Keep the container tightly closed when not in use. Protect from moisture and direct sunlight. Use appropriate chemical-resistant containers and clearly label them to avoid accidental misuse.
    Application of 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane

    Applications of 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane in Industrial Manufacturing

    As a specialist in fluorinated intermediates, our company supplies 3-(1H,1H,7H-dodecafluoroheptyloxy)-1,2-epoxypropane (DFHEP) to global manufacturers seeking high-performance materials for critical applications. Below, we outline verified downstream sectors that utilize this advanced epoxide, noting specific integration points, industry standards, usage ranges, and typical finished products.

    1. Fluorinated Surface Treatment Additives for Electronic Laminates

    Producers of high-frequency printed circuit board (PCB) laminates incorporate this epoxide to achieve controlled hydrophobic and dielectric properties. DFHEP enters resin matrix compounding as a reactive compatibilizer, assisting in the dispersion of fluorinated domains within polyimide or epoxy matrices. Quality teams monitor additive concentrations closely, balancing insulation stability and surface resistance after lamination and curing. Our QC partners confirm compliance with IPC-4101 and UL-94 V-0 flame retardancy testing during prototype and mass production.

    Industry compliance standards

    • IPC-4101/126, IPC-4101/99 (laminate and prepreg base materials for printed boards)
    • UL-94 V-0 (Flame Retardancy Test for Plastics)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • ISO 9001:2015 (Quality Management for Electronic Processing)

    Typical usage ratio

    • 0.2–1.0% by weight relative to total resin solids; optimized per surface energy and dielectric requirements

    Downstream process integration

    • Added during prepolymer mixing with resin/curing agent prior to lamination
    • Ensures even distribution prior to catalyst addition and sheet molding
    • Retains chemical stability during press-curing up to 180–220°C

    Final product types

    • High-frequency PCB cores, antenna substrates, millimeter-wave device laminates
    • Advanced base films for 5G and radar electronic assemblies

    2. Water and Oil Repellent Finishes for Technical Textiles

    Industrial textile mills adopt DFHEP as part of finishing emulsions for high-value synthetic fibers. This fluorinated epoxide reacts within crosslinking baths to anchor durable repellency on polyester and polyamide substrates. Formulators track its application to meet American Association of Textile Chemists and Colorists (AATCC) spray and oil repellency ratings. Integrators blend DFHEP in emulsion baths, leveraging its easy dispersibility and stable grafting performance on continuous lines.

    Industry compliance standards

    • AATCC TM22 (Water Repellency: Spray Test)
    • AATCC TM118 (Oil Repellency: Hydrocarbon Resistance Test)
    • OEKO-TEX® Standard 100 (Harmful Substance Certification for Textiles)
    • REACH Regulation (EC) No 1907/2006 (Registration, Evaluation, Authorisation and Restriction of Chemicals)

    Typical usage ratio

    • 0.5–2.0% by bath weight, depending on substrate absorption and repellency target

    Downstream process integration

    • Emulsified into aqueous coatings during the finishing stage
    • Applied by padding, exhaust, or spray before thermal fixation (150–180°C)
    • Monitored for fluorine residual and crosslink durability under simulated laundering

    Final product types

    • Protective apparel, filter fabrics, technical upholstery, industrial sewing yarns
    • Outdoor gear (tents, covers), high-visibility vests, and uniforms

    3. Reactive Modifier for Fluoroelastomer Compounds

    Elastomer composite manufacturers employ DFHEP as a functional chain extender during the blending and curing of fluoroelastomer formulations. Its epoxide and perfluoroalkyl groups participate in peroxide crosslinking or ionic cure mechanisms, enhancing chemical resistance and mechanical balance. Adjustment of dosage follows ASTM D1418 recommendations for compounded elastomers, and downstream processors validate final product conformity to automotive and aerospace sealing standards.

    Industry compliance standards

    • ASTM D1418 (Standard Practice for Rubber and Rubber Latices—Nomenclature)
    • ASTM D2000 (Classification System for Rubber Products in Automotive Applications)
    • SAE AMS3217/1 (Fluoroelastomer O-Ring Shelf Life and Performance)
    • IATF 16949 (Automotive Quality Management Systems)

    Typical usage ratio

    • 0.5–1.5 parts per hundred rubber (phr), adjusted by hardness and environmental resistance needs

    Downstream process integration

    • Added to compounding mixers before high-shear kneading
    • Reacted in situ with cure system during preform molding or extrusion
    • Heat-cured post-forming at 170–230°C in compression or injection molds

    Final product types

    • High-performance O-rings, gaskets, seals, and diaphragm sheet for fuel systems
    • Sealing elements for aerospace, automotive and chemical-processing industries

    4. Intermediate for Specialty Fluorinated Surfactant Synthesis

    Specialty surfactant producers utilize DFHEP as a key building block for advanced non-ionic and zwitterionic fluorosurfactants. It lends molecular hydrophobicity and controlled reactivity for surface tension reduction in demanding applications. Synthetic chemists employ it in epoxide ring-opening polymerizations or etherification, strictly controlled for reaction yield, residual epoxide, and by-product profiles. Downstream documentation must adhere to industrial chemical, environment, and toxicological guidance.

    Industry compliance standards

    • OECD Guidelines for the Testing of Chemicals (Environmental Safety and Biodegradability)
    • EU REACH, Annex XVII (Substances of Very High Concern, restrictions for fluorinated surfactants)
    • ISO 14001 (Environmental Management Systems)
    • GHS (Globally Harmonized System for Classification and Labelling of Chemicals)

    Typical usage ratio

    • 1.0–3.0 molar equivalents, based on target surfactant chain length and end-group selection

    Downstream process integration

    • Fed to batch or continuous reactors in surfactant synthesis
    • Reacted via base- or acid-catalyzed conditions, monitored for completion via NMR/GC
    • Product streams neutralized, extracted, and purified before post-processing

    Final product types

    • Wet-processing agents for semiconductor fabrication
    • Performance additives for high-purity cleaning fluids
    • Specialty wetting and leveling agents for high-tech coatings

    5. Key Monomer for Low Surface Energy UV-Curable Coatings

    Coating and adhesives formulators target DFHEP for inclusion in UV-curable resin systems to impart reduced surface energy and stain resistance. Its multifunctional structure supports crosslink density and suppresses tack, meeting tough industrial finish specifications. QC teams validate proper dosage for hardness-to-flexibility ratio while ensuring compliance with workplace exposure and emissions policies.

    Industry compliance standards

    • ASTM D3359 (Standard Test Methods for Measuring Adhesion by Tape Test)
    • ISO 2812-1 (Paints and varnishes — Determination of resistance to liquids)
    • EN 13432 (Packaging—Requirements for packaging recoverable through composting and biodegradation)
    • OSHA 1910.1200 (Hazard Communication Standard)

    Typical usage ratio

    • 0.3–1.2 wt% of total formulation solids; adjusted for film thickness and substrate hydrophobicity

    Downstream process integration

    • Blended with acrylate or urethane oligomers during resin compounding
    • Applied via roll, spray, or doctor blade before UV irradiation
    • Cured at 365–405 nm for rapid throughput, monitored for cure completeness

    Final product types

    • Anti-graffiti coatings for public infrastructure
    • Scratch- and stain-resistant finishes for industrial equipment and consumer electronics
    • Functional overlays for automotive interiors and high-traffic floorings
    Free Quote

    Competitive 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Leading with 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane: Practical Insights from Direct Chemical Manufacturing

    Understanding the Value of a Modern Fluorinated Epoxide

    Over years at the synthesis bench and within scale-up halls, our hands have shaped intermediates that bridge the precision of fluorochemistry with everyday performance in ever-evolving industrial environments. 3-(1H,1H,7H-Dodecafluoroheptyloxy)-1,2-Epoxypropane (Model: DCFHE-EP) has held our focus for the way it answers the need for low-surface-tension, high-durability functional groups in specialty resins, coatings, and surface treatments. Engineers, scientists, and process developers seek the unique combination of an epoxy group coexisting with perfluorinated segments, and in this molecule, both find a robust foundation.

    During the development of DCFHE-EP in our plant, our chemists worked to address challenges arising from traditional epoxypropane technologies, especially in applications demanding high chemical resistance. The introduction of the perfluoroheptyloxy moiety fundamentally changes the behavior of the base epoxide. We observed in polymer and resin matrices over repeated batch runs that the addition imparts outstanding oleophobic and hydrophobic character. Wetting angles consistently outperform those seen with hydrocarbon or ether-modified analogs. Our technical team measures—and our industrial clients notice—the difference in fouling resistance and long-term stability, especially where chemical exposure is relentless.

    What Sets DCFHE-EP Ahead in Usage and Application

    Much of what makes DCFHE-EP notable springs from the juxtaposition of two powerful chemical features: the reactive epoxide, and a stable, fluorinated tail. In daily work at the reactor and blending stations, we see the molecule enter multiple streams. Coating developers prefer DCFHE-EP when standard glycidyl ethers stop short of performance targets. Our batch records reveal that even at lower loadings, the perfluorinated root confers a drop in surface energy, supporting formulations for anti-graffiti, anti-fingerprint, or low-adhesion coatings. Industries focusing on electronic or photonic device encapsulation rely on its chemical and thermal endurance. Through aging trials and exposure tests, devices using our product routinely outlast those dependent on simple alkyl epoxies.

    Epoxidation, when merged directly with a robust perfluoroalkyl chain, leverages the best of both synthetic pathways—crosslinking potential and chemical inertness. Our partners in the adhesives and sealants segment frequently share feedback on enhanced bonding to not only metallic but also notoriously stubborn fluoropolymer surfaces. Handling properties, measured viscosity, and cure behavior all point toward easier downstream processing, bypassing some of the headaches that plague older epoxide chemistries. Our in-lab application trials, confirmed by customer runs, led us to fine-tune levels of impurities—especially residual halides and unreacted alcohols—that sometimes limit shelf life or reactivity in competitor materials.

    Comparison with Other Epoxy and Fluorochemical Intermediates

    Chemical manufacturing is a discipline rooted in comparative iteration; every shift change and quality audit brings the chance to measure nuance in performance. DCFHE-EP doesn't occupy the same application space as simple glycidyl ethers or epichlorohydrin-based epoxides. We see, batch after batch, low water uptake and pronounced resistance to both acids and bases. Other epoxy compounds often break down when facing strong oxidizers or aggressive solvents typical of cleaning-in-place protocols, but the perfluorinated tail does not budge. Labs using hydrocarbon analogs have to compromise between cure speed, adhesion, and resistance. With DCFHE-EP, customers blend less stabilizer. Cure times and modulus data, charted from our scale-up trials, trend toward better balance between flexibility and mechanical robustness.

    Our product also diverges sharply from non-fluorinated epoxides in terms of environmental behavior. Perfluorinated chemistry does draw scrutiny; questions about persistence and the presence of PFOA-related impurities guide our process controls. We use specialized distillation and purification steps, so analytical records from our quality group show undetectable levels of legacy perfluorooctanoic acids and similar byproducts. In tests where fluorinated chemicals are needed but regulators cast a wary eye, these results help users maintain compliance.

    Formulation Experiences Gained by Direct Production

    Daily production of DCFHE-EP involves both organofluorine chemistry and traditional epoxidation, which bring their own sets of hazards and scaling subtleties. Process engineers find that managing the reactivity of the oxirane function against potential side reactions requires close attention to water scrubbing, real-time FTIR dust analysis, and monitored addition rates. Over years of operation, we adapted our plant workflow to limit heat spikes and minimize unwanted polymerization inside process vessels. That background gives us confidence in the reproducibility our customers expect—if a batch meets specs this month, you’ll see the same specs met with every order.

    Feedback spills in from industrial users. OEMs involved in marine and aerospace applications have noted reduced frequency of surface treatments between maintenance intervals. Testing cycles in lab and field conditions line up with performance under immersion, even in salt spray and strong bases. Compared to earlier generations of fluorinated epoxides, current runs of DCFHE-EP reduce the formation of micro-cracks and delamination, which means less downtime and replacement cost.

    We’ve produced generations of intermediates for performance coatings, and every chemist in our team knows the importance of consistency. High-performance sectors lean heavily on predictable results over decades, not just years. That mindset keeps our quality teams focused on nitty-gritty details, such as controlling residual water and keeping impurity peaks in our NMR and GC scans well below actionable thresholds. DCFHE-EP lines up with needs for clarity, substrate adhesion, and chemical tolerance where competitors still find shortfalls.

    What End Users Expect—And How We Respond

    End users often come to us with legacy problems unsolved by commodity chemicals. With DCFHE-EP, many have phased out blended surfactants and migrated toward single-ingredient solutions that do the job of two or three additives. Field teams deploying new fluoropolymer-based resins in pipeline coatings share stories of better abrasion resistance and less need for touch-up after installation. Industrial painters using HVLP and electrostatic spray lines report fewer rejected panels and less overspray drift—results that stem directly from the molecule’s tailored wetting properties.

    As the actual manufacturer, we recognize that no application remains static. Users push for greater UV resistance and ever-lower surface tensions. Adjustments in production, driven by on-the-ground trials, translate into tweaks to our feedstock and control over fractional crystallization stages, protecting purity at each plant scale. That level of production agility doesn’t surface in the supply chain of simple resellers. It’s the byproduct of real-time process feedback, process safety reviews, and open lines of communication between plant, R&D, and technical service teams.

    Regulatory shifts also guide choices. Safety data, impurity profiles, and batch traceability often tip the balance in tenders with major end users. Our ongoing investment in analytical capabilities—LC-MS/MS, high-resolution NMR, trace OFET—is driven not by marketing, but practical customer scrutiny. Down to lot number, we provide assurance that meets both environmental and technical standards demanded across electronics, coatings, and adhesive industries.

    Reactivity, Handling, and Storage—Learned from Continuous Operations

    Experience with the flask, reactor, and drum reveals that epoxy groups require care not just in laboratory scale, but during large bulk transfers and storage. DCFHE-EP’s dual nature—electrophilic oxirane paired to a fluorinated tail—means shelf life and pot life outpace fragile non-fluorinated analogs, provided oxygen, moisture, and temperature exposures stay controlled. Maintenance techs in our warehouses monitor ambient conditions tightly, guided by field failures and lessons from customer audits. Polymerization inhibitors, antioxidant flushing, and custom packaging were all born from production-side headaches, not classroom theory.

    Handling safety matters. Perfluoroalkyl groups bring both chemical resilience and thermal stability, but our production team notes the need for careful ventilation, glove selection, and specific soak times if spills occur during drum filling or line cleaning. We provide explicit documentation for sites using DCFHE-EP in closed-process manufacturing, ensuring exposure minimization for operators as standard, not exception. Years of incident-free shipping strengthen trust for end users relying on our control.

    Unique Features and Everyday Impact—Drawn from Direct Manufacturing

    From a chemist’s notebook or a plant manager’s incident report, the recurring message about DCFHE-EP is straightforward: reliable performance under real-world conditions. The distinct molecular backbone enables stronger repulsion of oil, water, and myriad organic stains on concrete, metal, and glass surfaces. Unlike pure perfluoropolyether additives or hydrocarbon epoxides, DCFHE-EP couples crosslinking potential with extreme fouling resistance, opening doors to high-end coatings, anti-adhesion products, and high-performance elastomers that traditional ingredients couldn’t touch. Real-life applications—airport runway sealants, critical insulants in remote telecom installations, advanced lens coatings—owe longevity and easy maintenance to these core chemical features.

    Through continual scale-up, pilot-to-commercial manufacturing, and transparent technical communication, we've listened to the feedback loops between our process, field application, and market realities. DCFHE-EP emerged not as a proof-of-concept but as a direct answer to stubborn issues with hydrolysis, chemical staining, and early failure mechanisms oft observed in older epoxide chemistries. We see partner companies phase down reliance on supplemental surfactants as new lab trials confirm that single-additive systems outperform legacy blends. That transition, pioneered from the heart of our manufacturing team, encourages tighter supply chains, fewer compatibility headaches, and more predictable final product quality.

    Future Directions Guided by Experience and Stakeholder Needs

    Chemical manufacturing never stands still. As innovators, our team works alongside industrial chemists and field engineers to push the boundaries of what new intermediates offer. Demand grows for next-generation lubricants and surface finishes with even greater stain resistance and lower environmental impact. The wide adoption of DCFHE-EP by players in smart materials, microelectronics packaging, and life sciences signals that a shift is underway—applications that once struggled to meet regulatory and performance criteria with legacy chemistry now meet both without trade-off.

    Our commitment to iterative process improvement keeps us tuned to any contamination, supply chain wobble, or end-user dissatisfaction. DCFHE-EP’s molecular robustness combines with cyclical process analytics to minimize batch variability. Whether meeting the outside world’s push for sustainability or the relentless internal drive to sharpen plant safety and output, the voice of our operations team stands behind every drum and shipment.

    Practical experience signals where pitfalls lurk. Overdosing in high-concentration formulations, excessive heating, or improper storage might push epoxides—even fluorinated ones—toward unwanted side reactions. Years of operational troubleshooting taught us to issue clear technical bulletins, keeping users ahead of avoidable problems. Whether the client’s technical inquiries stem from confusion about application temperatures, substrate prep, or side effects from mixing in poorly vented spaces, detailed guidance comes straight from our own field-tested protocols.

    Earning Trust Through Reliability and Transparency

    In an age of advanced materials, credibility comes from walking the factory floor, not from abstract promises. We produce DCFHE-EP for our own and our customers’ demanding standards. Reliable on-spec delivery is backed by traceable analytical data, real-time support, and shared know-how earned over cycles of success and crisis. Our relationships grow with clients who appreciate this commitment, even as business cycles and regulatory frameworks shift.

    With every batch, shipment, and technical bulletin, our mission remains clear. DCFHE-EP stands as an outcome of direct engagement with real industrial problems—a specialty product shaped by actual hands-on manufacturing, refined by practical feedback, and embraced by sectors where performance, regulatory clarity, and safety intersect. Through our ongoing focus on transparent process control, process safety, and documented purity, we aim not only to supply a chemical but also to move the industry standard forward. Explicit communication threads through our documentation, not marketing jargon but field-tested advice. This is what builds relationships for the long term and shapes the evolution of every product we make.