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1H,1H,7H-Dodecafluoroheptyl Methacrylate

    • Product Name 1H,1H,7H-Dodecafluoroheptyl Methacrylate
    • Alias DFMA
    • Einecs 701-341-2
    • 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

    426668

    Cas Number 85540-48-9
    Molecular Formula C10H5F12O2
    Molecular Weight 410.13
    Appearance Clear colorless to pale yellow liquid
    Boiling Point 147-149 °C at 760 mmHg
    Density 1.581 g/cm³ at 25 °C
    Refractive Index 1.349
    Flash Point >110 °C
    Purity ≥97%
    Solubility Insoluble in water

    As an accredited 1H,1H,7H-Dodecafluoroheptyl Methacrylate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 250g chemical is packaged in a sealed amber glass bottle with a secure screw cap, labeled with safety and handling information.
    Shipping `1H,1H,7H-Dodecafluoroheptyl Methacrylate` is shipped in tightly sealed containers, typically under inert gas and at ambient temperature. It should be packed in accordance with chemical safety and transportation regulations to prevent leaks and exposure. Appropriate labeling and documentation are required for safe and compliant shipping, usually as a regulated hazardous material.
    Storage 1H,1H,7H-Dodecafluoroheptyl methacrylate should be stored in a cool, dry, and well-ventilated area, away from heat, sources of ignition, and direct sunlight. Keep the container tightly closed and protect from moisture. Store separately from strong oxidizers, acids, and bases. Use corrosion-resistant storage materials. Ensure appropriate spill control and labeling in accordance with chemical safety regulations.
    Application of 1H,1H,7H-Dodecafluoroheptyl Methacrylate

    Applications of 1H,1H,7H-Dodecafluoroheptyl Methacrylate in Industrial Manufacturing

    1H,1H,7H-Dodecafluoroheptyl Methacrylate is a specialty fluorinated monomer that impacts multiple advanced manufacturing fields through its hydrophobic, oleophobic, and chemical-resistant properties. As a direct manufacturer, we supply this raw material for integration into high-performance polymer systems across select downstream sectors. The following sections provide detailed application insights, referencing actual industry compliance requirements, practical dosage guidance, downstream integration stages, and specific end-use product categories.

    1. Weather-Resistant Architectural Coatings

    Leading exterior architectural coatings producers incorporate this fluorinated methacrylate as a co-monomer to enhance UV stability, water repellency, and dirt resistance in high-end exterior facade paints and clear topcoats. The material directly supports durable finishes on skyscraper curtain walls and modern infrastructure, where weathering and maintenance cost drive formulation choices.

    Industry compliance standards

    • ASTM D6904 (Resistance to Wind-Driven Rain for Exterior Coatings)
    • ISO 2810 (Weathering Exposure Methods for Coated Panels)
    • GB/T 34676 (China National Standard for Weather-Resistant Paints)
    • VOC Emission Regulations per local jurisdiction (e.g., EU Directive 2004/42/EC)

    Typical usage ratio

    • 0.5–3.0% by total monomer content; formulators generally increase content within this range for projects in high-humidity or high-salinity environments, adapting based on polymer backbone and pigment volume concentration.

    Downstream process integration

    • Reacts as a comonomer during emulsion or solution polymerization stages for acrylic and fluoropolymer resin synthesis, preceding let-down with pigments and additives in final dispersion steps.

    Final product types

    • Self-cleaning exterior paints
    • Anti-graffiti topcoats
    • Long-life facade varnishes
    • Protective coatings for infrastructure elements such as bridges and noise barriers

    2. High-Performance Electronic Device Encapsulants

    OEMs and contract manufacturers for electronic components deploy this methacrylate monomer in ultraviolet (UV) and heat-cured acrylic encapsulant systems, targeting improved dielectric strength, moisture exclusion, and resistance to chemical corrosion. The fluorinated side chain reduces water absorption and failure rates in microelectronics encapsulation exposed to harsh service conditions.

    Industry compliance standards

    • IPC-CC-830 (Qualification & Performance of Electrical Insulating Compounds)
    • IEC 60695-11-10 (Fire Hazard Testing of Polymer Encapsulants)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances in Electronics)
    • UL 94 (Flammability of Plastic Materials)

    Typical usage ratio

    • 1.0–2.5% by polymer solids; manufacturers adjust within this window for demanding moisture barrier applications or for thin-layer encapsulation of miniature devices.

    Downstream process integration

    • Added at the monomer blending step prior to photoinitiator or thermal initiator charging, undergoes in situ copolymerization directly on PCB or chip assemblies via spraying, dipping, or potting operations.

    Final product types

    • Conformal coatings for circuit boards
    • Component encapsulant gels
    • Sensor sealing compounds
    • UV-curable glob top resins for semiconductor packaging

    3. Oil and Stain-Resistant Textile Finishes

    Textile finishing plants integrate this monomer in durable water repellent (DWR) treatments for technical fabrics and workwear where resistance to contamination, industrial fluids, and laundering is required. Its long-chain fluorinated group imparts low surface energy, maintaining functional performance after repeated use and washing cycles, in compliance with evolving environmental guidelines regarding perfluorinated substances.

    Industry compliance standards

    • OEKO-TEX Standard 100 (Textile Safety)
    • ZDHC MRSL (Manufacturing Restricted Substances List for Textiles)
    • REACH Regulation (EC) No 1907/2006, especially for long-chain fluorochemical use
    • ISO 4920 (Water Repellency of Fabrics by Spray Test)

    Typical usage ratio

    • 0.2–1.0% on weight of fabric; finishers may lower content for lightweight fabrics and intensify for coated heavy-duty applications, always balancing repellency with hand feel and breathability.

    Downstream process integration

    • Utilized in the aqueous finishing bath with acrylic or polyurethane binders, followed by pad-dry-cure processes at the final finishing stage post-dyeing.

    Final product types

    • Protective uniforms
    • Outdoor activewear
    • Hospital textiles
    • Industrial filtration fabrics

    4. Low Surface Energy Optical Films

    Producers of specialty optical films and display protection layers include this building block in acrylic and urethane acrylate matrices to reduce fingerprinting, ease cleaning, and minimize static dust accumulation in lenses and transparent screens. The chemical structure supports abrasion resistance and clarity, crucial for touch panels and advanced optical laminates.

    Industry compliance standards

    • ISO 9211 (Optical Coating Durability)
    • ASTM D1003 (Haze and Luminous Transmittance of Transparent Plastics)
    • RoHS Directive 2011/65/EU
    • IEC 62321 (Determination of Certain Substances in Electrotechnical Products)

    Typical usage ratio

    • 0.3–1.2% by resin weight; process engineers determine final content based on end-user scratch resistance and anti-smudge demands, as well as optical performance metrics.

    Downstream process integration

    • Introduced in the monomer blend prior to bulk or UV-initiated acrylic film casting, with post-cure surface activation or lamination to base PET/PC sheets.

    Final product types

    • Mobile device screen protectors
    • Anti-fingerprint optical sheets
    • Camera cover lenses
    • Protective films for industrial touchscreens

    5. Chemical-Resistant Industrial Floor Sealants

    Flooring system formulators employ this fluorinated monomer as a component in two-component acrylic and epoxy-acrylate sealers. Its presence increases solvent resistance, aids long-term cleanliness in harsh industrial assembly and laboratory environments, and preserves aesthetics under repeated cleaning with aggressive agents.

    Industry compliance standards

    • EN 1504-2 (Protection Systems for Concrete Surfaces)
    • ASTM C813 (Sealant Properties for Industrial Flooring)
    • ISO 11890 (Determination of VOC in Paints and Varnishes)
    • REACH Annex XVII for restricted substances

    Typical usage ratio

    • 1.0–2.0% of total resin solids; facilities prioritizing acid/base resistance may increase to the higher end while those focused on floor gloss control reduce dosage.

    Downstream process integration

    • Incorporated at the prepolymer mixing stage before crosslinking agent or hardener addition, applied via roller or spray before curing under ambient or low-heat conditions.

    Final product types

    • Chemically-resistant floor topcoats
    • Anti-slip coatings for food processing facilities
    • Gloss-retentive warehouse sealers
    • Laboratory and cleanroom flooring systems
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    Competitive 1H,1H,7H-Dodecafluoroheptyl Methacrylate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1H,1H,7H-Dodecafluoroheptyl Methacrylate: Reliable Performance From the Source

    Our Direct Experience with 1H,1H,7H-Dodecafluoroheptyl Methacrylate

    At our facility, we work every day with fluorinated acrylate monomers and know firsthand the benefits and quirks of each. Among these, 1H,1H,7H-Dodecafluoroheptyl Methacrylate stands out as a true workhorse for those seeking advanced surface properties in their finished products. Its structure—methacryloyl group on one end and a perfluorinated heptyl tail on the other—gives it much more than a simple chemical label. The features become clear the moment this compound goes into action on the line.

    Model and Specifications: Built for Consistency

    We offer this product in a purity that meets the precise standards of high-end coatings, specialty plastics, and advanced textiles. Having made literally thousands of kilograms through continuous runs, we use rigorous distillation and multi-stage purification to cut down on side-products that compromise real-world performance. The physical appearance is a clear, colorless liquid, free from particulate residue. Moisture content is controlled below 0.05%, and acid value sits well within industry-accepted thresholds. Many researchers and engineers notice our batches have a consistent refractive index and density, which lines up with tight spec sheets found in scientific literature. Maintaining this level of quality demands constant attention to both upstream synthesis and downstream handling. We rely on continuous monitoring and analytical verification—NMR, GC-MS, and FTIR run side by side with every batch leaving our plant. The numbers don't lie: repeatability here beats synthetic shortcuts seen in less carefully produced brands.

    Practical Usage: Why Users Keep Turning to This Monomer

    Real value comes to life in customer applications. End-users have run our 1H,1H,7H-Dodecafluoroheptyl Methacrylate through an arsenal of tests—in paints, textile finishes, UV-curable formulations, and advanced resins. Across these uses, the goal remains simple: boosting resistance to water, stains, oils, and a broad range of chemicals. The long fluorinated chain achieves low-surface-energy finishes. In practice, this means coatings shed stains and liquid, keeping surfaces cleaner and providing longer lifespans in aggressive environments. Textile processors see increased durability against repeated washing, a definite improvement over more conventional hydrophobic agents. In electronics, the high dielectric strength and chemical inertness grant an edge in protecting circuit boards and sensitive assemblies from moisture and contamination. Thermal stability and light resistance keep product appearance sharp, even with prolonged outdoor exposure.

    User feedback proves invaluable in shaping incremental changes in our process. Once, a customer using direct-to-metal anti-corrosion coatings reported inconsistent wet edge and flow at low ambient temperatures. Revisiting our purification line, we fine-tuned the removal of specific fluorinated impurities. The next batches showed marked improvement—not just to lab testers but in real-world, on-site application teams, where it counts. We're not just moving barrels; we’re solving process puzzles alongside chemists, process engineers, and quality teams who—like us—value detail above marketing hype.

    Differences from Other Fluorinated Methacrylates

    Many types of fluorinated methacrylates line up on our product catalog, but all do not behave the same. The performance gap becomes obvious if you compare side-by-side in the lab or on the manufacturing floor. Compounds with shorter chains, such as trifluoroethyl or pentafluoropropyl methacrylate, give some degree of hydrophobicity. Yet these deliver less long-term repellency, lower chemical stability, and don't match up for oil resistance and barrier properties. Longer side chains, as found in our 1H,1H,7H-Dodecafluoroheptyl Methacrylate, allow for higher contact angles—sometimes as much as 110 degrees or more, verified using our own carefully calibrated goniometers. Stain and oil repellency scale up with the number of fluorine atoms. At the same time, polymer film flexibility and adhesion hold strong, avoiding the embrittlement linked to bulkier perfluorinated chains.

    Some products on the market use a mixture of chain lengths, introducing variability in performance. We commit to a tight distribution in the heptyl range, keeping both quality and regulatory standards in check. The compound also handles UV-curable formulations better than many shorter-chain analogues. Formulators report fewer side reactions and better stability during high-intensity curing—key for electronic materials exposed to heat and light. In fluoropolymer synthesis, our monomer integrates cleanly, co-polymerizing efficiently with standard partners like methyl methacrylate, butyl acrylate, or hydroxyethyl methacrylate. These compatibilities, dialed in through countless runs and field trials, cut rework rates and allow demanding users to meet final property targets with less formulation guesswork.

    Product Development: What We've Learned in Scale-Up and Production

    Manufacturing this compound at scale introduces learning curves not described in textbooks. Early pilot runs faced unexpected by-product formation in the telomerization stage, which threatened both purity and downstream usability. We reconfigured reaction temperatures and carefully controlled pressure profiles. Significant reduction in tailing peaks on GC traces told us we’d improved. Mixing techniques matter, too; just small tweaks in agitation reduce microbubble formation that could affect polymer film clarity. Temperature-sensitive storage showed up as a concern, especially in regions with large seasonal swings. After several field failures, we transitioned to refrigerated logistics and lined drums, virtually eliminating yellowing and viscosity drift, which bolstered long-haul stability for our overseas clients.

    Every solvent used in the process, from cleaning to synthesis, undergoes reclamation and purification cycles. This isn’t just for environmental compliance. We noticed the trace impurities—not visible to the eye but obvious on NMR—can sneak into product and cause slow degradation, often months after the end user receives the shipment. Through close-loop control and supplier collaboration, we nearly wiped out these contaminants.

    Regulatory and Environmental Considerations

    1H,1H,7H-Dodecafluoroheptyl Methacrylate falls under increasing scrutiny due to the presence of multiple carbon-fluorine bonds. We operate under strict internal guidelines, anticipating shifts in global regulations, especially those relating to PFAS (per- and polyfluoroalkyl substances). Every batch runs through screening—not just for product quality but for residual unreacted starting compounds and related by-products. We run regular waste audits, knowing the scrutiny regulators now direct toward PFAS trace levels in water discharge and airborne emissions.

    Some voices inside and outside the industry question the future of long-chain fluorinated compounds. Our team follows the science and the policy trail closely. Alternatives still lag in key technical properties—nothing matches the stain repellency, chemical inertness, and weatherproofing these monomers deliver in coatings and textiles. We share data with users on responsible use, from rational formulation down to end-of-life disposal. Whenever possible, we explore recycling routes and support partners looking at collection and incineration schemes to close the loop and reduce environmental persistence. By staying ahead of coming rules, we keep supplies running even in regions shifting toward polymers with higher environmental scrutiny.

    Supporting Technical Teams: Why Direct Partnership Matters

    Working hand in hand with formulators and process chemists gives more than just good business; it provides concrete improvements for everyone down the chain. Years ago, a big commercial coater faced issues with polyester fabric treatments. Their customer demanded both a "dry" hand feel and deep water repellency, something hard to achieve with traditional perfluorinated agents. Side-by-side trials with our monomer yielded softer, more flexible films that retained repellency after 30 washes—a leap over shorter-chain products. By swapping data logs and testing methodologies, we zeroed in on optimum polymerization conditions. That open exchange closed the gap between old, rigid recipes and newer, higher-performance finishes.

    In electronics manufacturing, a major printed circuit board outfit needed accurate data on monomer migration and residuals after thermal cycling. Our technical staff ran hours of accelerated aging and chemical extraction, providing analytical reports down to low ppb levels. These direct discussions built trust—engineers didn’t need to decipher generic spec sheets or wait weeks for an answer. We understand users’ process realities, having faced our own thermal stability and trace impurity problems. This technical dialogue stands as the backbone of progress for both us and our users.

    Operational Reliability: Satisfying Demands at Scale

    Scaling up means more than turning on larger reactors or doubling solvent stocks. Maintaining purity and batch-to-batch consistency under high demand takes tight control of synthesis, purification, and packaging. Investment in in-line analytics, regular operator training, and digital process control cut down errors that haunt less robust operations. We never take shortcuts on holding times, material compatibilities, or drum specifications, even during times of high market volatility. Upstream supply security matters, too. We keep buffer inventories of key raw materials and qualify backup sources to avoid the supply hiccups sometimes seen with specialty chemicals. Downstream, packaging and shipping staff receive the same attention as the synthesis crew—proof that end-to-end care means fewer complaints and callbacks.

    Some of the biggest headaches for users stem from inconsistent storage protocols. Early on, we noted condensation spikes inside drums parked on tarmac in humid coastal regions. Insulation upgrades, desiccant inserts, and clear labelling about temperature and moisture limits helped bring complaint rates down. These “small” shifts matter more than public-facing certifications or paper guarantees. Fewer surprises, greater trust.

    Research and Continuous Improvement: Staying Ahead of the Curve

    Manufacturing doesn’t stay still, and neither does research on this class of fluorinated acrylates. Our R&D team works on refining reaction yields, cutting batch cycle times, and integrating greener solvents that don’t sacrifice product purity. We run regular root-cause analyses on any returned batches, using advanced chromatography and mass spectrometry to spot obscure trace impurities. Lessons learned from these investigations have led to both tighter process controls and improved worker safety—because small surprises in production can become big problems for users relying on high-spec material.

    We pay close attention to formulation trends. For example, some users combine our methacrylate with silicone acrylates, aiming for lower surface energy and even better durability against weathering or mechanical abrasion. We've supported projects using our monomer in micro-patterning for anti-smudge smartphone screens and hydrophobic glass. Fine-tuning initiator levels, co-monomer ratios, or cure schedules, our technical team gives direct, traceable advice, cutting development cycles and unexpected downtime for customers. Reliability extends far beyond what’s printed on certificates of analysis; traceability, open communication, and responsive troubleshooting have become our trademarks.

    Serving New Applications: Expanding the Boundaries of Use

    Growth areas continue to emerge. Durability remains the watchword for construction sealants and exterior finishes. In these sectors, our monomer carries over its dirt resistance, gloss retention, and resilience against UV weathering. Users building medical and lab-grade films push for sleek, easy-to-clean surfaces demanding no compromise in transparency or robustness under repeated sterilization cycles.

    Development doesn’t lock into rigid formulas. A surprising application has come from the world of high-end automotive and aerospace parts. UV-cured coatings using our methacrylate provide non-stick, low-iridescence surfaces on composite materials and carbon fiber panels, helping design engineers achieve both function and aesthetics. Ongoing tests in microelectronics, touch display films, filter membranes, and high-performance adhesives show that material science keeps pushing requirements higher and higher. Our team works with innovators to clarify what tweaks in polymer structure or curing protocol can unlock the specific attributes users value most.

    Real-World Challenges: Addressing Traceability and Regulation

    As transparency and regulatory requirements climb, traceability in every step comes front and center. Our facility uses detailed batch tracing, not just for ISO procedures but out of necessity. More users expect quick documentation to support procurement audits, sustainability reviews, or supply-chain certification programs. This level of scrutiny sometimes uncovers overlooked steps—a reminder that trust is built one container at a time. Proactive, open responses to questions about impurities, lifecycle, and environmental impacts give us an honest foundation with technical buyers and regulatory authorities alike.

    Recent years brought a sharp increase in PFAS investigations. While current regulatory frameworks don’t treat 1H,1H,7H-Dodecafluoroheptyl Methacrylate as a universal risk, we commit extra attention toward minimizing unreacted residuals and avoiding detectable discharges. Future compliance likely means tighter controls and faster reporting. No shortcuts, no disclaimers—just real-world responsibility demonstrated in every lot shipped. For those partners building new products under stricter guidelines, we bring actual experience managing trace PFAS compounds and reporting in a timely, transparent fashion.

    The Path Ahead: Realigning Manufacturing With End-User Needs

    Decades of handling 1H,1H,7H-Dodecafluoroheptyl Methacrylate have taught all of us in manufacturing that success comes through consistency, transparency, and adaptability. Each year, technical requirements shift, environmental rules grow sharper, and user expectations evolve. We step forward by sharing experience, offering direct answers, and acknowledging scientific and performance limits honestly. Teams planning to scale advanced, stain-resistant, and weatherproof solutions find deeper value with a direct manufacturing partner—one with the evidence, practical insight, and accountability to deliver not just a product, but a collaborative solution for tomorrow’s challenges.