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1,1,2,2-Tetrahydroperfluoro Dodecanol

    • Product Name 1,1,2,2-Tetrahydroperfluoro Dodecanol
    • Alias Tetrahydroperfluorododecanol
    • Einecs 221-468-0
    • 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

    612386

    Cas Number 86508-42-1
    Molecular Formula C12H4F22O
    Molecular Weight 606.13 g/mol
    Iupac Name 1,1,2,2-Tetrahydroperfluorododecan-1-ol
    Appearance Colorless to pale yellow liquid
    Density Approx. 1.7-1.9 g/cm³ (estimated)
    Solubility In Water Insoluble
    Purity Typically ≥97% (varies with supplier)
    Functional Groups Alcohol (-OH), Perfluoroalkyl chain
    Odor Odorless or faint odor
    Stability Stable under recommended storage conditions

    As an accredited 1,1,2,2-Tetrahydroperfluoro Dodecanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 1,1,2,2-Tetrahydroperfluoro Dodecanol supplied in a sealed amber glass bottle with safety cap and hazard labeling.
    Shipping 1,1,2,2-Tetrahydroperfluoro Dodecanol is typically shipped in tightly sealed, chemical-resistant containers to prevent leaks and contamination. The packaging should comply with international and local regulations for hazardous materials. Proper labeling and documentation are required, and the shipment should be protected from heat, direct sunlight, and incompatible substances during transit.
    Storage Store **1,1,2,2-Tetrahydroperfluoro dodecanol** in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat and sources of ignition. Protect from direct sunlight and moisture. Segregate from strong oxidizers, acids, and bases. Use secondary containment to prevent leaks or spills, and clearly label the container to ensure safe handling and storage.
    Application of 1,1,2,2-Tetrahydroperfluoro Dodecanol

    Applications of 1,1,2,2-Tetrahydroperfluoro Dodecanol in Industrial Manufacturing

    As a dedicated manufacturer of 1,1,2,2-tetrahydroperfluoro dodecanol, we supply this specialty fluorinated alcohol to clients who require advanced surface functionality and chemical resistance in their downstream manufacturing. Our long-standing participation in industrial fluorochemical value chains allows us to deliver technical guidance and material consistency for the specific end-use scenarios detailed below. Each industrial sector maximizes the performance advantages of this material in targeted applications according to documented compliance, controlled formulations, and established processing standards.

    1. Fluorinated Surfactant for Fluoropolymer Emulsion Polymerization

    Producers of high-performance fluoropolymer dispersions incorporate this alcohol as a nonionic fluorinated surfactant to achieve both colloidal stability and precise particle size control in emulsion polymerization systems. Its unique molecular structure imparts low surface tension, enabling effective stabilization of fluoromonomer droplets under demanding thermal and chemical conditions. Formulators adjust addition rates based on specific copolymer compositions and intended dispersion characteristics required by end-users in advanced coatings, membranes, and film technologies.

    Industry compliance standards

    • ISO 14001 for environmental management of fluorochemical processing
    • REACH (EC 1907/2006) registration and authorization for use in polymer production
    • U.S. EPA TSCA (Toxic Substances Control Act) notification for new chemical substances
    • Japanese Chemical Substances Control Law (CSCL) for import and manufacturing

    Typical usage ratio

    • 0.05–0.2 wt% relative to total monomer load; typically optimized based on surfactant demand/surface area per specific emulsion recipe

    Downstream process integration

    • Introduced to the aqueous phase prior to polymerization initiation; surfactant becomes incorporated during seed, growth, and stabilization stages of emulsion process for fluoropolymer resin production

    Final product types

    • Waterborne PTFE (polytetrafluoroethylene) dispersions
    • PVDF (polyvinylidene fluoride) latexes
    • Fluoroelastomer emulsions
    • Surface-treatment compatible fluoropolymer films and membranes

    2. Surface Modifier in Functional Textile Finishing

    Textile finishing facilities use this fluorinated alcohol as a functional surface modifier to deliver durable water, oil, and stain repellency in performance fabrics. Its high fluoroalkyl content interacts favorably with both synthetic and blended fiber substrates, imparting repellency without affecting breathability or handle. The application requires precise dosing and process adaptation depending on fabric weight, fiber morphology, and finishing line configuration.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for restricted substances in textiles
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals) for input chemical management
    • ISO 14419 for oil repellency in textile finishes
    • ISO 4920 for spray test (water repellency) on finished fabrics

    Typical usage ratio

    • 0.2–1.0% (owf, on weight of fabric); concentration tailored depending on required repellency class and type of textile substrate

    Downstream process integration

    • Diluted in aqueous or solvent-based bath, padded onto fabric post-dyeing, followed by drying and curing at controlled temperature; applied in final finishing step after main wet processing

    Final product types

    • Outdoor technical garments (jackets, pants, tents)
    • Upholstery and carpeting with stain resistance
    • Protective workwear and medical textiles
    • Automotive seat and interior fabrics

    3. Intermediate for High-Performance Coating Additives

    Chemical synthesis units utilize this compound in the manufacture of advanced fluorinated additives, which then enable anti-graffiti, anti-smudge, and easy-to-clean functionality in architectural, automotive, and industrial coatings. The fluoroalcohol moiety serves as a reactive intermediate for coupling or polymer modification steps, allowing for incorporation of tailored fluorine content in the final additive chemistry. Producer QC teams monitor input purity and reaction yield to ensure downstream reliability.

    Industry compliance standards

    • ISO 9001 for additive synthesis process control
    • EU REACH for chemical feedstock usage in coatings sector
    • ASTM D6578 for graffiti resistance of coating systems
    • VOC content restriction (EU Decopaint Directive 2004/42/EC) for finished coatings

    Typical usage ratio

    • Usually 5–15 mol% relative to other polyol or alcohol reactants in fluorinated polyether or urethane synthesis pathways; adjusted based on target surface tension properties of the final additive

    Downstream process integration

    • Charged to reactor in initial stage of additive synthesis, where it reacts via etherification or urethane formation before purification and blending into main coating resin system

    Final product types

    • Anti-graffiti topcoats for commercial buildings and infrastructure
    • Easy-clean automotive clearcoats
    • Industrial equipment coatings with oil/water dirt resistance
    • Protective marine and aerospace finishes with advanced weathering performance

    4. Hydrophobic Agent for Electronic Encapsulation Materials

    Manufacturers of microelectronic encapsulants incorporate this material to enhance moisture barrier and dielectric performance in specialty resins and potting compounds. Due to its extreme hydrophobicity and low surface energy, the additive contributes to reliable insulation and reduced water absorption in delicate circuitry packaging. QC teams evaluate integration to confirm insulation resistance and long-term reliability under accelerated aging conditions.

    Industry compliance standards

    • IEC 60664-1 for insulation coordination in electronic assemblies
    • IPC-CC-830 for conformal coatings in electronics
    • RoHS Directive (2011/65/EU) for restriction of hazardous substances in electronics
    • UL 94 for flammability rating of encapsulant systems

    Typical usage ratio

    • 0.1–0.5 phr (per hundred resin); adjusted to balance hydrophobicity with mechanical and electrical properties of encapsulation resin

    Downstream process integration

    • Pre-mixed with base resin prior to addition of hardeners or curing agents; incorporated via high-shear blending and maintained in a moisture-controlled environment throughout transfer, moulding, and curing stages

    Final product types

    • Epoxy and silicone potting compounds for chip and PCB encapsulation
    • Conformal coatings on microcontrollers and sensors
    • Sealants for optical and LED module assembly
    • High-frequency circuit packaging with moisture exclusion requirements

    5. Oil-Repellent Additive for Industrial Cleaning Fluids

    Producers of precision and industrial cleaning agents introduce this fluorinated alcohol to formulate advanced fluids that remove lubricants and process oils from critical machinery and parts. Its inclusion enhances wetting and penetration on metallic and composite surfaces, supporting oil displacement and residue-free drying, which are essential in semiconductor, optics, and aerospace component maintenance. Each batch is tested for compatibility with client-specified substrates and process constraints.

    Industry compliance standards

    • ASTM F1110 for cleaning effectiveness evaluation
    • SEMI F63 for semiconductor wet cleaning chemicals
    • SAE AMS 1526B for aviation cleaning fluid requirements
    • Occupational Safety and Health Administration (OSHA) guidelines for handling volatile cleaning agents

    Typical usage ratio

    • 0.02–0.1 wt% in concentrate formulations; dosage optimized for cleaning performance vs. cost and downstream wastewater compatibility

    Downstream process integration

    • Dissolved directly into the cleaning agent base; distributed in blending vessels and subject to agitation before bottling or bulk dispatch to industrial cleaning line operators

    Final product types

    • Precision electronic part cleaning liquids
    • Aerospace engine and part wash solutions
    • High-purity optic and lens cleaning agents
    • Maintenance cleaning fluids for automotive and heavy industry assembly lines
    Free Quote

    Competitive 1,1,2,2-Tetrahydroperfluoro Dodecanol prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

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    Certification & Compliance
    More Introduction

    Introducing 1,1,2,2-Tetrahydroperfluoro Dodecanol – A Closer Look from the Manufacturer’s Perspective

    Understanding 1,1,2,2-Tetrahydroperfluoro Dodecanol

    In our plant, 1,1,2,2-Tetrahydroperfluoro Dodecanol often runs along sidechain fluoroalcohol lines. The molecular structure contains a hydrocarbon backbone where most hydrogens get swapped out for fluorines, leaving specific hydrogens to form the hydroxy group near one end. This gives the compound its distinct set of properties: chemical stability, unique surface activity, and a clear difference from both standard dodecanol and even shorter-chain fluoroalcohols. Over years handling this chemistry, there’s a real benefit in seeing those differences firsthand.

    Specifications and Quality Standards from the Manufacturer’s View

    Producing 1,1,2,2-Tetrahydroperfluoro Dodecanol means tracking purity throughout every step, from raw perfluorododecane to the final alcohol. In our workflow, purity consistently tops 98% as checked by NMR and GC-MS. Moisture levels fall below 200ppm, because even small traces can trigger unwanted reactions downstream. We package it in special fluoropolymer bottles to keep the material uncompromised during shipment, based on lessons learned from early days using less robust packaging. Handling the compound in bulk gives us a pragmatic view: it flows as a viscous, clear, nearly odorless liquid at room temperature. Old myths about fluorinated raw materials being aggressive prove inaccurate with this one—we’ve stored full drums for over a year with no change in fundamental properties.

    How 1,1,2,2-Tetrahydroperfluoro Dodecanol Performs in Real-World Applications

    From the production floor, applications drive our manufacturing choices. Fluorotelomer alcohols, including this C12 variant, show up wherever customers demand chemical resistance, repellency, or stable interface characteristics. Our batches serve as key intermediates for specialty surfactants, fluorinated lubricants, and electronics coatings. Based on direct customer feedback and our own test runs, this product keeps surfaces water- and oil-repellent well beyond standard alkyl alcohols. Performance endures in high-voltage environments or aggressive solvent systems. In resin modification, it brings low surface energy without spreading environmental or regulatory worries tied to shorter-chain fluoroalcohols.

    Chemists at partner firms ask for C12 because it extends chain length, which increases molecular weight and lowers volatility compared with C6 or C8 alternatives. This reduces migration—an asset when you’re formulating coatings that need long service life, such as anti-fingerprint films or low-friction bearings. Our own lab trials reinforce that the increased chain length doesn’t hinder compatibility with many synthetic backbones, so formulators don’t face tough trade-offs between performance and processability.

    Why Chain Length and Functional Groups Matter in Fluoroalcohols

    Long-chain perfluoroalkyl alcohols deliver a different balance of performance and safety than short-chain cousins. Manufacturers wrestled with this balance for decades, especially with shifting regulations. The C12 chain adds mass and reduces volatility, making it less likely to vaporize or escape during manufacturing or in use. Shorter-chain analogues, while easier to handle, often raise concerns for bioaccumulation or stricter global restrictions.

    Chain length also affects physical properties that manufacturers notice right away—things like viscosity, flash point, and miscibility. In our experience, surface treatments incorporating this product last longer and provide more consistent barrier properties under heavy use or repeated cleaning. The hydroxyl group at one end lets the molecule anchor to various substrates or react in polymerization, setting it apart from nonpolar perfluorocarbons. Those without the alcohol group don’t bond readily, so they merely coat surfaces without building in durable properties.

    Choosing Quality in Specialty Fluorochemicals

    Manufacturer experience plays a central role in quality. Process reliability, control of impurities, and long-term storage knowledge all become essential. Some years back, sourcing issues created batch-to-batch variability from other producers—stuff that cost our customers time and money to fix. Tight control in our own process pays dividends: fewer side-products, reliable reactivity, and no “invisible” contaminants that can scuttle downstream reactions. We’ve fine-tuned purification to keep color, odor, and trace acid content at a minimum.

    We don’t see much value in chasing extreme purity beyond a practical threshold. Marginal gains past 99% typically don’t deliver noticeable improvements in final applications, while costs spike fast. Instead, our focus goes to removing problematic impurities and keeping predictable reactivity. Every improvement added to our quality system started because either our people noticed something unexpected on the shop floor or customers told us about a hiccup in their process. Real product quality grows from this ongoing feedback cycle.

    Environmental and Health Considerations from a Manufacturer’s Lens

    Synthetic fluorochemicals draw plenty of attention from regulators and the wider public. We keep up with these demands both out of responsibility and necessity—no plant operator wants a regulatory surprise shutting down a line. By designing our operations for closed-system handling and minimal operator exposure, we preserve both safety and efficiency. Local and international regulations focus more on short-chain PFAS and on perfluorinated carboxylic acids than on C12 fluoroalcohol, but scrutiny ripples outward. We respond by offering chain lengths and functionalities that address performance goals without raising the same level of concern. In real-world terms, this means customers get consistent results without facing recalls or shifting compliance targets.

    Waste management takes center stage for any serious producer. We reclaim nearly all solvents from alcohol purification cycles. Scrubbing and water treatment lines run close to capacity, not just to please inspectors but because we’ve seen the real costs of effluent mismanagement. It’s easier to invest in containment up front than to face site remediation years down the line. The move to longer-chain structures like C12 often means reduced acute toxicity and lower environmental mobility, but we never rely on that alone—waste controls stay tight regardless of regulatory relief.

    Differences between 1,1,2,2-Tetrahydroperfluoro Dodecanol and Similar Products

    Comparing this product to other fluoroalcohols uncovers real differences that matter to chemists and engineers. C6 and C8 variants, familiar in many surface treatments and paper coatings, evaporate more readily and don’t form as persistent a barrier after application. Switching to C12 length directly affects the lifetime and effectiveness of repellency. Formulators aiming at high-performance membranes or weatherable films pick the C12 alcohol because it blends hydrophobicity, accessibility for further chemical reactions, and resistance to chemical attack. Practical field tests, not just specs on a PDF, show how C12 retains function even under outdoor exposure or thermal cycling.

    The market once pushed perfluorinated ethers or sulfonates for tough applications, but those lack the reactivity of a free alcohol. Many downstream syntheses demand a functional group at the end of the chain, or else the molecule won’t anchor into the matrix—meaning lost performance and wasted cost. Suppliers with limited synthetic capability often substitute simpler, less effective compounds. Our control over both chain length and terminal group lets us offer a product that responds to the evolving needs of modern surface science.

    The Realities of Manufacturing Advanced Fluorochemicals

    Production of 1,1,2,2-Tetrahydroperfluoro Dodecanol involves multiple steps, each needing tight control. Unlike some simpler organics, this chemistry won’t tolerate sloppy process discipline—minor process drift leads to side-products that either gum up purification or get flagged by end-users. We invest in real-time analytics and regular process audits led by staff who have worked every shift, not just read the manuals. Piloting changes on the main line, instead of only in the lab, has meant a few lost batches for us over the years, but avoided rolling out changes that don’t scale or introduce unexpected hazards.

    Sourcing specialty fluorinated starting materials once meant global headaches. Building out in-house distillation capacity now brings direct control over chain length and reduces reliance on outside vendors. This capability allows us to adapt rapidly as customers ask for longer or shorter chains, new functionalization, or tighter specs. Few ingredients feature in as many industrial test programs as C12 fluoroalcohol—market shifts often show up in our order volumes before making headlines.

    Industry Drivers and the Evolution of Product Use

    The push toward more durable, high-performing, and environmentally sound surfactants continues to shape demand for products like 1,1,2,2-Tetrahydroperfluoro Dodecanol. In electronics, a single defect traced to a surface contaminant can cost millions. Manufacturers expect their suppliers to understand both molecular details and bulk handling needs. Demand in textiles and nonwovens climbed with new technical fabrics needing persistent liquid and stain resistance. Many long-time users once relied on C8 chemistry, but performance and compliance needs drove a shift to longer-chain structures. Customer-led innovation plays out daily—someone might need a batch with tighter moisture limits, or a new grade fit for direct food-contact coatings.

    We don’t just make and ship: we consult with engineers and formulators about exact conditions. For some, the C12 alcohol might serve as a drop-in replacement for materials now restricted or phased out. For others, it’s the backbone of next-generation polymers with adjustable surface energy and toughness. What doesn’t change is that production flexibility and technical background matter just as much as scale.

    Building Trust as a Direct Manufacturing Partner

    Confidence in specialty chemicals starts at the source. End-users—coatings firms, polymer houses, electronics makers—want traceability down to the source drum. Over years supplying leading researchers and global brands, we learned that trust doesn’t come from marketing, but from traceable data. Batch records go back years, detailing not only QC results, but anything extra—like transport temperature, storage time, or drum material. Multiple labs, both in-house and independent, confirm every order. Customers who visit see our processes at work, not just glossy brochures.

    Direct relationships have solved more technical hurdles than any spec sheet ever did. Years ago, a major client hit persistent foaming in their process—tough to spot on paper, instantly visible on a plant tour. Joint troubleshooting, not just supplying a different grade, solved their problem fast and upgraded our collective process know-how.

    Pushing Innovation in Fluorochemical Manufacturing

    Developing the right product depends as much on cooperation as on chemistry. Some of our biggest advances came from working with outside R&D teams focused on special needs—improved solubility for unorthodox solvents, or new ways to graft the alcohol onto flexible substrates. We dedicate a portion of every run to lab samples, so emerging needs receive quick custom tests. Experience keeps reminding us that unpredictabilities on the bench, in pilot lines, or during scaling can yield new process tweaks, purity improvements, or cost savings for everyone along the chain.

    Our chemists see change as constant in this sector. Short supply cycles, evolving regulatory scrutiny, and technical shifts in end-use markets force everyone to adapt. Holding core technical expertise and equipment in-house makes the difference: we pivot faster and adjust specs based on direct customer input, not just what upstream suppliers offer.

    Real-World Challenges and Ongoing Solutions

    Making 1,1,2,2-Tetrahydroperfluoro Dodecanol at scale brings day-to-day hurdles not always visible from the outside. Fluctuations in fluorinated raw material prices, increased waste solvent management costs, and transportation bottlenecks have all tested our systems. Many in the supply chain recall times when a global event delayed precursor shipments—it’s a call to strengthen both inventory strategy and local backup sourcing.

    Continuous process improvement remains central to staying ahead. Lean methods, close tracking of energy and emissions, and a willingness to invest in updated containment systems yield both safety and efficiency. Our team reviews every incident or batch deviation in real time and feeds lessons learned directly into process adjustments. This isn’t just box-ticking or regulatory compliance—it makes day-to-day operation smoother, more predictable, and directly benefits customer projects.

    Looking Toward the Future – Responsibility and Opportunity

    We see 1,1,2,2-Tetrahydroperfluoro Dodecanol as part of the next chapter in specialty chemistry. Applications keep branching out—every month brings a new customer, new blend targets, or a novel end-use. Our current priorities include energy optimization, a faster analytical turnaround, and developing still cleaner grades to match upcoming environmental standards. Clients are seeking replacements for legacy materials increasingly restricted or under review, but without giving up the performance the industry expects. Our team shares data with partners, participates annually in industry forums, and collaborates with universities to push research that addresses both real and potential issues, from environmental persistence to synthetic alternatives.

    With each batch, our experience grows—handling unexpected feedstock issues, troubleshooting downstream reactivity, or responding to regulatory changes. Hands-on, plant-floor exposure beats abstract models—practice uncovers flaws and opens up improvements. This knowledge translates into product consistency and flexibility—qualities that aren’t captured in certificates or glossy spec sheets, but in lines kept running, customer trials succeeded, and real-world problems solved as they arise. Through close engagement with both the science and the daily realities of the manufacturing world, we keep advancing what this unique compound can deliver across industries.