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Dimethyl Dodecafluorosuberate

    • Product Name Dimethyl Dodecafluorosuberate
    • Alias Dimethyl perfluorooctanedioate
    • Einecs 700-901-2
    • 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
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    Specifications

    HS Code

    471124

    Chemicalname Dimethyl Dodecafluorosuberate
    Casnumber 754-09-6
    Molecularformula C10H8F12O4
    Molecularweight 432.15 g/mol
    Appearance Colorless liquid
    Boilingpoint 140-145°C (at 15 mmHg)
    Density 1.62 g/cm3 (at 25°C)
    Meltingpoint -22°C
    Solubility Insoluble in water, soluble in organic solvents
    Refractiveindex 1.323 (at 20°C)
    Purity Typically ≥98%
    Flashpoint No data available
    Synonyms Dimethyl perfluorooctanedioate
    Storagecondition Store at 2-8°C, keep container tightly closed

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

    Packing & Storage
    Packing 250g of Dimethyl Dodecafluorosuberate is supplied in a sealed amber glass bottle with a tamper-evident cap and hazard labeling.
    Shipping Dimethyl Dodecafluorosuberate is shipped in tightly sealed, chemically resistant containers to prevent leaks and contamination. It should be transported under cool, dry conditions, away from incompatible substances. Ensure compliance with all relevant hazardous materials regulations, including appropriate labeling, documentation, and handling by trained personnel during shipping and receiving.
    Storage Dimethyl Dodecafluorosuberate should be stored in a tightly sealed container, away from moisture, heat, and direct sunlight, in a cool, dry, and well-ventilated area. Keep it separated from incompatible substances such as strong bases or oxidizers. Proper labeling and secondary containment are recommended to prevent leaks or accidental exposure. Always follow relevant chemical safety guidelines and local regulations.
    Application of Dimethyl Dodecafluorosuberate

    Applications of Dimethyl Dodecafluorosuberate in Industrial Manufacturing

    As the direct manufacturer of Dimethyl Dodecafluorosuberate, we supply this high-purity compound for specialized industrial applications where its chemical stability, distinct reactivity, and unique fluorinated structure meet demanding performance criteria. The following sections provide in-depth details on how our material serves key manufacturing sectors, focusing on real-world scenarios, industry norms, optimized formulation guidance, technical processing integration, and final product categories.

    1. Specialty Electronics Coatings for Printed Circuit Boards (PCB)

    Major PCB fabrication companies integrate Dimethyl Dodecafluorosuberate as a critical fluorine donor in the synthesis of non-wetting, dielectric conformal coatings, designed for next-generation microelectronic assemblies. The compound’s perfluorinated backbone supports low surface energy coatings, ensuring moisture repellency and electrical insulation, while its methyl ester groups afford tailored reactivity for crosslinking with acrylic or epoxy matrices under controlled thermal curing processes common in high-density and high-frequency PCB production lines worldwide, especially in telecommunications and aerospace device fabrication.

    Industry compliance standards

    • IPC-CC-830C (Conformal Coating Qualification and Performance)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances in Electrical and Electronic Equipment)
    • IEC 60664-3 (Insulation Coordination for Equipment)
    • REACH Regulation (EC) No 1907/2006

    Typical usage ratio

    • Applied at 1.0–2.5% w/w in formulated fluoropolymer or modified epoxy/acrylic coating systems; exact ratio optimized based on desired hydrophobicity, film thickness, and dielectric properties required for high-frequency devices.

    Downstream process integration

    • Introduced during liquid coating formulation phase; blended prior to solvent or UV-cure component addition, then transferred to PCB spraying or dip-coat lines; crosslinked with heat or UV in automated conveyor ovens operating at 80–130°C.

    Final product types

    • High-frequency telecommunications circuit boards
    • Automotive control modules requiring moisture barriers
    • Avionics and satellite PCB assemblies
    • Medical diagnostic device PCBs

    2. High-Performance Lithium-Ion Battery Electrolyte Additives

    Tier-1 battery manufacturers leverage the distinctive electrochemical properties of Dimethyl Dodecafluorosuberate as a specialty co-solvent or additive to enhance cathode interface stability in advanced lithium-ion and lithium-polymer cells. Its fluorinated chain confers both high oxidation resistance and low solid electrolyte interphase (SEI) formation, thereby supporting cycle life extension and operational safety in batteries for premium energy storage systems, electric vehicles, and critical portable electronics.

    Industry compliance standards

    • UN 38.3 (Lithium Battery Transportation Testing)
    • IEC 62660-2 (Secondary Lithium-Ion Cells for Automotive Applications)
    • ISO 9001:2015 (Quality Management Systems for Chemical Manufacturing)
    • GB/T 31486-2015 (Performance Requirements for Battery Cells in Electric Vehicles—Chinese standard for battery safety and performance)

    Typical usage ratio

    • 0.5–1.7% by volume as a functional additive in combined organic carbonate base electrolyte systems, adjusted according to cell chemistry (NMC, LFP, etc.), target cycling stability, and specific capacity retention over >1000 cycles.

    Downstream process integration

    • Added directly to anhydrous electrolyte blend tanks under inert nitrogen or argon; homogeneously dissolved pre-cell filling; full electrolyte mixture injected in vacuum-sealed battery assembly lines before final cell crimping and formation cycling.

    Final product types

    • High-discharge automotive traction batteries
    • Grid-scale stationary energy storage modules
    • Consumer electronics high-density pouch cells
    • Portable medical device power packs

    3. Fluorinated Intermediates for Pharmaceutical Synthesis

    Global pharmaceutical synthesis plants employ Dimethyl Dodecafluorosuberate as a building block to introduce fluorinated groups into active pharmaceutical ingredients (APIs) and advanced intermediates possessing improved metabolic stability and membrane permeability. Its structure facilitates selective functionalization in multi-step organic synthesis routes, especially where incorporation of perfluorinated carbon fragments confers optimized pharmacokinetics in receptor-targeted compounds and specialty diagnostics.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients)
    • USP-NF (United States Pharmacopeia—National Formulary)
    • EDQM CEP (European Directorate for the Quality of Medicines—Certificate of Suitability)
    • China Pharmacopoeia 2020 (for registered intermediates/API in Chinese market)

    Typical usage ratio

    • Reactant concentrations typically ranging from 3–10 mol% relative to total carbon backbone in step-growth or ring-closing reactions, varied according to targeted fluorine incorporation and impurity profile in the finished intermediate or API.

    Downstream process integration

    • Employed during preparative batch or flow chemistry, often introduced at nucleophilic substitution or ester exchange step; processed at controlled temperature and pH with solvent and catalyst present; isolated by distillation, extraction, and chromatographic purification.

    Final product types

    • Fluorinated imaging agent precursors
    • Selective kinase inhibitor intermediates
    • CNS therapeutic active ingredients
    • Compounds for advanced oncology drug candidates

    4. Oil and Chemical Process Gasket and Seal Manufacturing

    Major OEM producers in fluid-handling industries formulate specialty fluoropolymer blends using Dimethyl Dodecafluorosuberate as a processable modifier for chemical resistance and plasticizer efficiency, since its structure supports both extrusion and molding of high-performance seals. In stationary and dynamic gasket fabrication for aggressive media pipelines, its incorporation ensures sustained integrity under continuous exposure to acids, solvents, and elevated temperatures, as demanded in chemical transport and refinery infrastructure.

    Industry compliance standards

    • ASTM D2000 (Standard Classification System for Rubber Products in Automotive Applications)
    • ISO 23936 (Petroleum, Petrochemical, Natural Gas Industries—Non-metallic Materials in Equipment for Service in Contact with Hydrocarbons)
    • FDA 21 CFR 177.2600 (Rubber Articles Intended for Repeated Use)
    • API 607 (Fire Test for Soft-Seated Quarter-Turn Valves)

    Typical usage ratio

    • 0.8–2.2 phr (parts per hundred rubber) when compounding with FKM or perfluoroelastomer matrices; dosage adjusted to balance extrusion flow, anti-stick profile, and final physical properties required by end-user specifications.

    Downstream process integration

    • Incorporated during internal mixing or open-mill blending with base polymer and curative agents; extruded or compression molded to shape; post-cured in high-temperature ovens (180–230°C) to release volatiles, then precision die-cut or machined to specification.

    Final product types

    • Chemically resistant pipeline gaskets
    • Tank and vessel static O-ring seals
    • Valve packing for offshore process equipment
    • Custom extruded profiles for semiconductor wet benches

    5. High-End Optical Fiber Cladding Modification

    Leading specialty optical fiber manufacturers integrate this fluoroester as a modifying agent in the cladding domains of fibers requiring low refractive index and high chemical durability. Its addition during the MCVD (Modified Chemical Vapor Deposition) process delivers tailored surface energy and exceptional stability in harsh chemical and humidity conditions, supporting the fabrication of fibers used in submarine cables, sensing, and next-generation fiber lasers.

    Industry compliance standards

    • IEC 60793-1 (Optical Fibers—Measurement Methods and Test Procedures)
    • ITU-T G.652/G.657 (Standardization for Single-Mode Optical Fiber)
    • ISO 9001:2015 (Quality Management Systems—Optical Production)
    • Telcordia GR-20 Core (Generic Requirements for Optical Fiber and Cable)

    Typical usage ratio

    • 0.3–1.1% by weight in silica or hybrid fluoride-based glass preforms; modified dynamically depending on refractive index modulation target, cladding thickness, and resistance specifications outlined by end-user cable designs.

    Downstream process integration

    • Delivered as a vapor-phase precursor during MCVD or solution-doped preform stages; reacted with silica in a controlled furnace atmosphere; resulting fibers drawn at ~2000°C and coated in-line before spooling.

    Final product types

    • Long-haul submarine communication fiber
    • Chemical-resistant process monitoring sensors
    • Optical fiber lasers for manufacturing
    • High-durability MPO cables for data centers
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    More Introduction

    Dimethyl Dodecafluorosuberate: A Manufacturer’s Perspective on Value and Application

    The world of industrial fluorinated chemicals can seem narrow from the outside, but working as a direct manufacturer gives you a different lens. Dimethyl Dodecafluorosuberate pulls its own weight among a field of specialty compounds, not just because it’s a mouthful, but because it moves industry forward in ways more common esters can’t match. Anyone familiar with polyfluorinated synthons knows the role they play in pushing the boundaries of material science, biotech, and electronics chemistry. It’s not always about hitting purity numbers; functioning at the molecular level while keeping byproducts under control brings the challenge home.

    What Sets Dimethyl Dodecafluorosuberate Apart

    This material’s formula and structure—bearing a dodecafluoroalkyl chain with two methyl ester terminal groups—brings a certain stubbornness against chemical and thermal attack. In our own lines, we keep the specifications tight: our batches meet or exceed 99% purity by GC, with water content monitored below 0.2%. Color is almost always clear as water, and we verify spectral fingerprints on each lot. The high fluorine loading across the carbon backbone doesn’t just push up boiling point and solvent resistance; it also alters the polarity landscape, creating a different behavior profile compared to non-fluorinated or partially fluorinated esters.

    Comparing to something like dimethyl suberate or other eight-carbon aliphatic diesters, this perfluorinated version stands apart. The absence of hydrogen along most of the carbon chain makes the compound less likely to degrade by hydrolysis or oxidation. Try putting it head-to-head in applications that call for a dielectric environment or where resistance to organics and acids keeps development cycles on track. Every time a chemist or formulation engineer switches from a conventional ester to a perfluorinated counterpart, it’s usually about two things: reliability under stress, and the drive for new physical properties.

    From Lab Bench to Process Scale: Production Experience

    We synthesize Dimethyl Dodecafluorosuberate by controlled esterification of dodecafluorosuberic acid and high-purity methanol, always under anhydrous conditions. As producers, we run this reaction under carefully managed inert atmospheres, using fluoropolymer equipment that doesn’t leach contaminants. By carrying the entire purification process in-house, we hold final product consistent batch to batch. Doing this at production scale offers more learning than reading journal protocols: refining downstream isolation, off-gassing, and filtration steps to minimize product loss and avoid trace metal contamination is where experience pays off. End-users need to trust each drum or flask, whether it’s for a kilogram to run an experimental polymerization or a ton for electronics pre-polymer work.

    One early hurdle we solved involved the unpredictable hydration and byproduct formation in glass-lined reactors. Solution came through switching to certain perfluorinated reactor linings for isolation and using active drying towers on all input lines. Dryness isn’t just a spec sheet checkbox with Dimethyl Dodecafluorosuberate—it’s the difference between a product that stores well and one that walks itself to decomposition. Even one percent increase in water takes the shelf life down dramatically, so the QC lamp doesn’t go off until the numbers are right.

    The Uses Driving Industry Growth

    Nobody buys a specialty ester like this to sit on a shelf. In the last ten years, we’ve watched the customer mix broaden from just academic and high-end research labs to bigger commercial operations. The push comes especially from advanced polymers and new dielectric materials. Dimethyl Dodecafluorosuberate acts as a building block where regular suberates fall short by breaking down or changing dimensions under heat or voltage.

    The electronics sector keeps coming back for the perfluorinated backbone, especially for use in making high-performance, low-loss materials. These have become the brains of everything from next-generation circuit boards to medical imaging scanners. The methyl ester part gives extra compatibility with a range of comonomers, letting formulators tune mechanical properties without wrecking the dielectric strength or chemical resistivity. Our technical feedback from materials engineers often covers things like solvent solubility—plenty of traditional solvents barely touch this compound, which actually helps developers maintain cleaner process streams.

    Biomedical research also leans on this ester. Its inertness and lack of bioactivity take it off the table for catalytic reactions—that’s a feature, not a bug. Where bioincompatibility stops many organics from moving into in vivo device coatings or implantable materials, Dimethyl Dodecafluorosuberate’s resistance to metabolic breakdown closes that loop. Researchers appreciate a reagent or intermediate that won’t complicate cell culture or animal model studies by leaching unpredictable byproducts.

    The Environment, Health and Safety Questions

    Every manufacturer working with high-fluorine content compounds has to stare risk and regulation in the face. The environmental footprint of perfluorinated chemicals—including this class of esters—has drawn a sharper spotlight every year. We get our share of regulatory scrutiny, especially as rules get stricter on allowable emissions and residue handling. Our response has been to invest early in closed-system production and solvent recycling infrastructure. It’s more than just compliance—it builds trust with partners and gives us a clearer conscience as a chemical maker.

    Our shop floors enforce strict PPE protocols thanks to the compound’s volatility and potential for irritation in raw form. Over the years, incidents have dropped off due to process containment and automation, improvements that didn’t just happen—they followed actual worker feedback and real-world incident logs. We learned that substituting raw cleaning solvents with fluoropolymer-safe alternatives reduces risk not just to the environment, but also to the people who spend their days up close with the chemistry.

    Safe disposal stands out as another challenge every batch. Residual esters never get vented untreated. Our on-site neutralization systems and contractor partnerships follow the lines drawn by global authorities on perfluorinated chemical disposal. The drive toward sustainable manufacture now shapes every purchasing and waste decision, from choosing catalysts down to drum liner materials.

    Why the Chemistry Matters

    The importance of Dimethyl Dodecafluorosuberate doesn’t always come across in abstract numbers or market statistics. Talk to the engineers working up new generations of supercapacitor membranes or the university teams studying electroactive polymers, and you’ll hear about the bottlenecks caused by degradation, contamination, and creeping losses in material properties. This is where the unique construct of our ester—high fluorine density on a rigid linear chain, capped with methyl esters—bypasses some of the old sticking points in both stability and tunability.

    The molecule resists most attempts at unwanted hydrolysis, stands up to the most aggressive bases and acids, and shrugs off long-term exposure to oxidative conditions that would push regular suberates or even partially fluorinated analogs to failure. It’s not all about indestructibility, though. The polarizable ester groups allow for careful downstream transformations when needed, while still holding onto the parent backbone’s environmental resistance traits. With every batch, we keep a line of sight on the reality that once the molecule leaves our facility, it faces chemistry more complex than anything we saw in our reactor.

    Testing in real-world settings makes a difference. We’ve lost track of the times customers reported performance above spec, not because of a change in formulation, but because the material held up after months of trial cycles that destroyed their earlier approaches. In our records, longevity, electrical insulation, and resistance to solvent swelling far exceed anything seen in hydrocarbon analogs.

    Differences from Other Products: More Than Molecular Tweaks

    Shop floors and labs often see products described as “fluorinated” being lumped together, but the differences run deeper than the name suggests. Some families modify just one or two sites with fluorine—those can show improved stability, but never achieve the extremes of true perfluorinated esters. We’ve put samples of Dimethyl Dodecafluorosuberate next to mono- or tetrafluoro derivatives from other sources; time and again, the stability in corrosive media or at high voltages sets our product apart.

    Methyl ester terminals matter, too. Swap these for ethyl or longer alkyl groups, and solubility drops off or processing temp windows close up. Our process engineers have worked directly with customer polymerization lines to document the difference—quicker initiations, fewer side products, easier purification. In some formulations aimed at high-dimensional stability, even the smallest shift in the end-group structure has a ripple effect on final mechanical performance. That said, every application tells its own story, and we keep options open for custom ester groups as needed, backed by our own synthesis capabilities and access to alternative starting materials.

    Comparing perfluorinated suberate esters to other fluoroorganic building blocks, such as perfluorooctanoic acid derivatives or hexafluoropropylene oxides, reveals more than just a raw material sourcing decision. The linear, evenly fluorinated carbon backbone of Dimethyl Dodecafluorosuberate gives predictable chain mobility, cohesive energy, and packing density in solid state or polymer matrices. That predictability saves teams from late-stage surprises in large-scale fabrication or coating operations. By contrast, branched or cyclic perfluorinated compounds can introduce unpredictable behavior—something many of our clients report back after head-to-head comparison testing.

    Application Trail: What Our Customers Have Built

    Years of client feedback and joint development projects painted a picture of how Dimethyl Dodecafluorosuberate truly pulls ahead. On the electronics manufacturing side, one longstanding customer scaled up using our material for a new class of flexible yet robust printed circuit dielectric layers. Their process improvements tracked back not just to lower process failures, but to a boost in product lifespans under thermal cycling. Another team produced advanced optical coatings, leaning on the refractive index modulation and the resistance to UV-induced degradation that only comes from high-fluorine esters of this sort.

    In the materials sector, polymers built on our suberate backbone served as the core ingredient in developing next-generation membranes for hydrogen separation and storage, something previously blocked by decay rates seen with hydrogenated or chlorinated alternatives. We joined forces with partners to adapt our process and deliver tailored batches, tracking every tweak for both performance and regulatory compliance. The willingness to meet new challenges, whether for more stringent purity or new performance targets, keeps both our business and the client’s innovation cycle moving forward.

    The pharma sector runs a tighter lane, but even here, the inertness and lack of metabolic interaction for certain applications made the compound a unique asset in long-term implantable devices and drug-delivery coatings. We’ve worked head-to-head with medical device teams, finding solutions for the ever-present challenges of extractables, leachables, and shelf life. The trust we build while iterating through these tough requirements forms the backbone of long-term industry partnerships and opens the door to breakthroughs beyond our original application list.

    Solving Problems Beyond Chemistry

    Producing Dimethyl Dodecafluorosuberate at scale presented hurdles not seen in small-scale syntheses. Logistics becomes as important as chemistry. Shipping regulations and world exporting norms tighten every year for fluorinated compounds, pushing us to invest in specialized packaging and real-time tracking for all transit. Feedback from downstream processors taught us that product stability and container purity can make or break large batch applications. We analyze not just the chemical content, but interactions with every drum liner and seal, learning slowly but surely how to stop contamination before it starts.

    A manufacturer’s role looks different from that of an intermediary—we own the outcome from sourcing precursors to the minute our product lands in a user’s vault. Keeping the end-to-end process in our hands, from reactor design to packaging choices, means we see and solve the small day-to-day inefficiencies before they cascade upward. Collaborating with customers on specification adjustment, contaminant tolerance, and even co-design of downstream purification setups brings practical improvements to all sides.

    It’s not all about the latest regulatory buzz or breakthrough science. At its core, the job involves listening to teams on the ground—polymer chemists, electrical engineers, safety specialists—and applying whatever lessons their experience brings. The feedback loop between us and client labs never closes. Each specification question or process bottleneck works as a signal for refinement. When new compliance rules land, we navigate updates to keep every lot traceable and every partner in the loop.

    Looking Forward: Responsibility and Innovation

    The market for perfluorinated compounds like Dimethyl Dodecafluorosuberate continues to walk a tightrope, balancing demand for extreme performance against the growing call for environmental accountability. We keep an eye on alternative feedstocks, process reusability, and closed-loop waste handling. With regulators, end-users, and activists weighing in, every production run carries stakes beyond profit. We invest in life-cycle analysis and ongoing research projects to shrink hazards and demonstrate stewardship, not out of obligation, but due to the sheer impact these molecules have on global systems.

    Our investment in greener manufacturing isn’t just a response to outside pressure—it’s a necessity. The chemistry won’t wait for politics or funding cycles to sort themselves out. Our plant teams brainstorm alongside R&D to drive innovation in catalyst recycling, gas capture, and alternative process design. The goal isn’t to cut corners, but to rethink what safe, scalable, and sustainable specialty chemical manufacturing can mean in this century.

    True progress sits at the intersection of reliability, safety, and creativity. Our team treats every customer success as a signal to dig deeper—whether it’s lowering residuals, shortening process times, or opening new application areas by tweaking a synthesis route. The process of making, refining, and delivering Dimethyl Dodecafluorosuberate stands as much for the behind-the-scenes work as for its headline technical features. Each improvement, whether noticed by a customer or not, lines up with our commitment to grow as responsible partners in a rapidly-evolving market.

    In Our Hands: A Material That Shapes Outcomes

    Having spent years turning raw starting acids into final, drum-ready Dimethyl Dodecafluorosuberate, we see every lot as a direct outcome of both skill and accountability. From the moment raw materials hit the reactors, through high-vacuum distillation and analytical confirmation, to shipment and technical support, the material’s success mirrors our own. No two production runs teach exactly the same lesson. As applications grow, so too does the potential for this compound to break new ground.

    Working with a molecule that consistently pushes boundaries shapes our mindset as manufacturers. Every report from a downstream user who found a creative way to deploy our product—a coating that lasts an order of magnitude longer, a membrane that withstands punishing environments, a device that avoids system failures thanks to unmatched insulation—validates the hours invested in refining process and logistics. Seeing how innovative teams choose Dimethyl Dodecafluorosuberate not just for performance, but for the long game of reliability and safety, keeps the daily challenge alive and worth it.

    Our role goes beyond simple fulfillment. It’s about learning from every batch, partnering for new developments, and never settling for yesterday’s solution. For us, Dimethyl Dodecafluorosuberate remains both a measure of what’s possible and a call to keep mastering every link of its creation and delivery.