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3-Perfluorooctyl-2-Iodopropanol

    • Product Name 3-Perfluorooctyl-2-Iodopropanol
    • Alias 8:2 FTOH-I
    • Einecs 700-205-4
    • 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

    548678

    Product Name 3-Perfluorooctyl-2-Iodopropanol
    Molecular Formula C11H6F17IO
    Molecular Weight 582.05 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically >95%
    Cas Number 204338-24-5
    Solubility Insoluble in water, soluble in organic solvents
    Density Approx. 1.9 g/cm3
    Smiles CC(COI)C(C(F)(F)F)C(F)(F)F
    Storage Conditions Store in a cool, dry place; keep container tightly closed

    As an accredited 3-Perfluorooctyl-2-Iodopropanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 25g, sealed with PTFE-lined cap, labeled with chemical name, CAS number, hazard info, and manufacturer details.
    Shipping 3-Perfluorooctyl-2-Iodopropanol is shipped as a regulated chemical, typically in tightly sealed, chemical-resistant containers to prevent leaks and contamination. It should be handled with appropriate protective gear and shipped in compliance with hazardous material regulations, such as UN/IMDG/IATA rules. Proper labeling and documentation are required for safe transportation.
    Storage 3-Perfluorooctyl-2-iodopropanol should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong acids, bases, and oxidizers. Protect it from light and moisture. Store at recommended temperatures, typically room temperature unless otherwise specified. Use secondary containment to prevent leaks and follow appropriate chemical hygiene protocols.
    Application of 3-Perfluorooctyl-2-Iodopropanol

    Applications of 3-Perfluorooctyl-2-Iodopropanol in Industrial Manufacturing

    As a direct manufacturer focused on specialty fluorinated intermediates, we supply 3-Perfluorooctyl-2-Iodopropanol for a select range of industrial applications where its unique perfluoroalkyl structure and iodine functionality provide high-value performance characteristics. Based on verified downstream usage, the scenarios below detail the principal end-uses, regulatory references, dosage guidelines, process pathways, and final product outcomes, precisely mapped to industry realities.

    1. Fluorinated Surfactant Synthesis for Firefighting Foams

    Manufacturers in the fire safety sector incorporate our raw material into formulation routes for advanced film-forming fluorosurfactants, a critical component in class B aqueous film-forming foam (AFFF) concentrates. The C8F17 backbone contributes to heat, solvent, and hydrocarbon resistance in the final surfactant structure, while the iodopropanol function enables targeted chain extension. All usage must align with modern environmental regulations, especially in regions enforcing PFOA and PFOS content limitations.

    Industry compliance standards

    • US EPA Toxic Substances Control Act (TSCA) Compliance – Section 6(h) for Long-Chain Perfluorinated Compounds
    • European Union REACH Regulation (EC No. 1907/2006) Annex XVII PFAS Restrictions
    • EN 1568-3:2018 Standard for Fire Extinguishing Media — Foam Concentrates
    • 2025 Stockholm Convention Amendments (PFAS-related updates)

    Typical usage ratio

    • 0.05–0.4% by weight in concentrated surfactant blend; dosage varies based on desired surface tension and film formation in foam; adjustments according to chain extension yield and end viscosity specification

    Downstream process integration

    • Introduced during the alkylation or etherification stage of nonionic or amphoteric surfactant backbone building; used prior to batch neutralization and final foam concentrate blending

    Final product types

    • Aqueous Film Forming Foam (AFFF) concentrates, Alcohol-Resistant AFFF, firefighting foam agents for aviation, refinery, or petrochemical hazard applications

    2. Water and Oil Repellent Textile Finishing Agents

    Downstream textile finishing plants rely on this perfluoroalkyl intermediate in formulation of durable water and oil repellent finishing agents for technical fabrics. It provides exceptional repellency to water-based and oily contaminants, critical for workwear, outdoor apparel, and upholstery textiles. Use in finishing must observe best practice limits on residual fluorine content, adhering to sector-specific environmental and consumer safety restrictions.

    Industry compliance standards

    • OEKO-TEX Standard 100 for Restricted Substance List (RSL), fluorinated compound limits in textiles
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals Manufacturing Restricted Substances List)
    • ISO 4920:2022 Water Repellency Assessment, ISO 14419:2010 Oil Repellency
    • REACH Annex XVII and ECHA PFAS guidance with sector-specific amendments

    Typical usage ratio

    • 0.2–1.5% (active solid) in formulation bath; the exact ratio depends on fabric type, application weight, and end-use regulatory needs; adjustments based on target hydrostatic head and repellency grades

    Downstream process integration

    • Dispersed in emulsifier phase during aqueous or solvent-borne finish preparation, then applied via padding or exhaustion techniques before final cure or drying on substrate

    Final product types

    • Outdoor textile coatings (jackets, backpacks), technical nonwovens, medical barrier fabrics, workwear, automotive interior materials

    3. Anti-Fingerprint and Anti-Smudge Coatings for Electronic Device Glass

    Producers of specialty coatings for touchscreen and optical glass use this material as a reactant during the synthesis of fluorinated silane precursors, delivering lasting anti-smudge and anti-fingerprint properties. The perfluorooctyl segment is covalently bonded onto glass surfaces, yielding low surface energy films. Formulators must follow electronics industry purity and Volatile Organic Compound (VOC) regulatory frameworks as well as ensure non-migration under device operating conditions.

    Industry compliance standards

    • IEC 62321-7-2:2017 for PFAS content determination in electronic components and coatings
    • RoHS Directive 2011/65/EU – Restrictions on Hazardous Substances
    • China RoHS GB/T 26572-2011
    • Sector brand RSLs and in-house zero ionic contamination requirements

    Typical usage ratio

    • 0.1–0.7% by weight in precursor blend for solvent-based silane formulations; the amount depends on coating thickness and substrate wetting requirements; recalibrated per final non-stick and clarity performance tests

    Downstream process integration

    • Dosed at the silane precursor synthesis stage, then functionalized by hydrolysis and condensation just before application to glass via spin or spray coating, followed by UV or thermal cure

    Final product types

    • Finger-print resistant covers for smartphones, tablets, touchscreens, camera lenses, display panels, automotive infotainment panels

    4. Fluorinated Intermediates in Specialty Polymer Manufacturing

    Advanced polymer compounders and resin formulators utilize this raw material to introduce perfluorinated side chains into high-performance polymers, improving chemical resistance, lowering friction, and imparting non-stick behavior in high-value thermoplastic and elastomer systems. Incorporation protocols differ based on copolymerization or grafting chemistry but always align with environmental and handling mandates for fluorine-containing raw materials and finished polymer goods.

    Industry compliance standards

    • ASTM D5947 Polymer Volatiles and Residual Fluorine Monomers Test Methods
    • UL 94 Flammability Standards for Plastics
    • ISO 9001:2015 Quality Management for Polymer Production
    • Applicable REACH registration for "substance used as monomer” in polymer manufacture

    Typical usage ratio

    • 0.1–3% by weight as polymer chain modifier; dosage set by target surface energy and target migration test results; lower range in basic copolymers, higher loads for enhanced release properties

    Downstream process integration

    • Fed during copolymerization or post-polymerization grafting reactions, using controlled addition protocols to maximize chain incorporation without uncontrolled crosslinking

    Final product types

    • Non-stick mold release coatings, anti-corrosive linings for chemical reactors, low-critical surface energy membranes, engineered specialty films and fibers

    5. Surface Treatment Agent Precursor for Microfluidic Devices

    Producers of microfluidic chip systems and diagnostic cartridges employ this fluorinated intermediate in creating ultra-low absorption and anti-fouling surface treatments. It is functionalized into siloxane or acrylic networks used to pattern device microchannels, significantly reducing sample carry-over and non-specific protein binding. All integrations observe biocompatibility and analytical cleanliness criteria in accordance with in vitro diagnostic and laboratory equipment standards.

    Industry compliance standards

    • ISO 10993-5:2009 Biological Evaluation of Medical Devices, Part 5: Tests for In Vitro Cytotoxicity
    • ISO 13485:2016 Quality Management Systems for Medical Devices
    • ASTM F2554 Standard Guide for Writing Microfluidics Standards
    • 21 CFR 820 FDA Quality System Regulation (where applicable to component supply)

    Typical usage ratio

    • 0.05–0.6% (by weight) in functional monomer composition for microfluidic coating solution; concentration refined to match required microchannel hydrophobicity/anti-fouling performance without cytotoxic risk

    Downstream process integration

    • Introduced prior to polymerization of coating solution and applied to device surface by micro-dispensing, followed by in situ curing or post-application plasma treatment

    Final product types

    • Disposable microfluidic biochips, diagnostic cartridges, point-of-care testing consumables, lab-on-chip flow cells
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    Certification & Compliance
    More Introduction

    Working With 3-Perfluorooctyl-2-Iodopropanol: What Sets It Apart in Performance Chemistry

    Why Our Manufacturing Perspective Matters

    Producing specialty chemicals like 3-Perfluorooctyl-2-Iodopropanol comes with unique insights. Every gram in a batch stands as proof of careful control, patience, and practical know-how. As manufacturers, we see requests often go far beyond catalog answers. People need facts on consistency, handling, real-world results, and how one compound stands out from the alternatives. What follows isn’t distant marketing; it’s drawn straight from the floor of our facility and the years of questions we answer for partners who live and breathe innovation.

    What is 3-Perfluorooctyl-2-Iodopropanol?

    This compound plays an important part in the world of performance chemistry. Structurally, 3-Perfluorooctyl-2-Iodopropanol brings together the exceptional surface activity of an eight-carbon fully fluorinated chain and a reactive iodo-propanol group. People in the field might recognize it by its model number or synonymous names, but the heart of its unique appeal lies in its ability to impart both fluorinated surface properties and reactivity to a growing variety of applications.

    The symbol C11H6F17IO speaks to its chemical complexity. In everyday use, you’ll find it as a colorless to slightly yellow liquid, holding up to the scrutiny of professionals looking for purity and clear specification. Every container that leaves our facility meets rigorous internal protocols developed by our own chemists who have watched market standards evolve over decades.

    Key Physical and Chemical Properties

    Experience tells us that no matter how many times someone reads a material property chart, real value lies in how those numbers translate to daily work. We produce 3-Perfluorooctyl-2-Iodopropanol with attention to moisture tolerance and batch stability, limiting impurities that can foul subsequent synthetic steps. Reference testing keeps the iodine functional group available for further conversions or surface grafting. Purity standards come backed by nuclear magnetic resonance and iodine-specific titrations, providing confidence to end users scaling from grams to bulk production.

    Practical storage asks only for a tightly sealed container and cool, dry conditions. Real-world shipments see our drums and bottles sealed under inert gas for longer shelf life. Over the years, customers have come to us with questions about volatility and storage outside specialized facilities. Our formulation meets their needs by balancing reactivity with manageable vapor pressure, reducing loss and degradation in the hands of downstream manufacturers.

    How the Product Shapes Modern Applications

    People in the know turn to perfluorooctyl groups for unmatched water and oil repellency. By tethering that chain to a reactive iodo-propanol, new chemistries become possible. In practice, surface modification leads the list. Coating specialists often blend it into polymers and textiles, chasing not only repellency but longevity and environmental persistence. Some clients in microelectronics use our product to engineer layers that resist fingerprints and improve durability, particularly where hydrocarbons fall short.

    We see uptake as a reactive intermediate in research around fluorous synthesis. Scientists leverage the iodine position, creating new bond connections not possible with other termination groups. Our work with academic labs has shown that starting with a clean, well-characterized 3-Perfluorooctyl-2-Iodopropanol makes a difference at every point—reproducibility improves, and downstream purification gets easier. Students and senior scientists return to us when they need reliability, especially during high-value projects or time-sensitive research.

    Some product designers have pushed into the world of anti-fouling surfaces, hydrophobic coatings, and even friction-reducing modifiers for precision devices. What links these fields isn’t only the desire for fluorinated performance, but a requirement for tight functionalization and the ability to attach the modifier in ways standard fluorosurfactants do not allow. By building off the iodo-propanol group, our customers get a stronger handle for subsequent reactions. That means coatings become more robust—less likely to wash off or degrade under repeated use.

    Practical Differences From Other Fluorinated Alcohols

    Many inquiries start with a comparison to perfluorooctanol or its acrylate and methacrylate cousins. Those materials offer simple alcohol or ester functions. Our iodo-propanol derivative stands apart because that iodine atom opens doors in organic synthesis not possible with classic perfluorinated alcohols. For chemistry teams, this difference means new reaction pathways—carbon-iodine bonds serve as launching points for couplings and substitutions that plain alcohols cannot match.

    The backbone itself deserves attention. Some alternatives cut the fluorinated chain shorter to cut cost. In use, the perfluorooctyl chain (C8F17–) remains the benchmark for achieving low surface energy and sustained repellency. We stick by this structure for that reason. The chemistry comes with expense, but performance delivers. There’s also a difference in volatility; by anchoring the fluorinated tail to the propanol, the volatility drops, making it safer and more practical for scale-up and storage compared to raw perfluorooctyl iodide or alcohol.

    Addressing Environmental and Safety Questions Openly

    Conversations about perfluorinated chemistry often circle back to safety and environment. As manufacturers, we engage these questions directly. Our formulation and process seek the least waste and tight material controls. Purification happens under closed conditions, using specialized fluoropolymer systems developed in-house over many years. Waste streams see immediate treatment. Every new batch draws from lessons we learned in closed-loop operations, limiting hazards for both workers and the outside world.

    Our partners sometimes need support for compliance work—quantitative purity statements, chemical traceability, SDS support, or customer-driven third-party audits. We supply what’s required, understanding that documentation is more than paperwork; it’s a shield for downstream users. When companies reach out to us about REACH, TSCA, or local regulations, our technical team stands ready with honest assessments rather than empty assurances.

    Our Manufacturing Challenges and Lessons Learned

    Scaling from bench reactions to industrial-scale synthesis rarely moves in a straight line. Making 3-Perfluorooctyl-2-Iodopropanol without introducing hydrolysis, side coupling, or oxidative loss calls for unique equipment and operator skill. Small impurities ignored in research settings can derail full-scale operations—a lesson we’ve learned after troubleshooting everything from minor coloration to off-odor batches.

    We invested years building up a clean production loop. Fluorinated chemistry does not tolerate shortcuts. Conventional metallurgy, common seals, and stock glassware degrade or shed contaminants when exposed to potent perfluoroalkyl structures. We redesigned reactors with fluoropolymer linings, selected seals from specialty elastomers, and partner with analytical chemists tracking each impurity threshold. Downstream effects surprise even long-time professionals; we’ve seen end-use coatings that failed because a single batch fell below specified I-content or contained traces of the wrong halide. That drives us to test, test, and test again.

    Delivery schedules matter, but not at the expense of these controls. We made decisions some competitors won’t—pausing deliveries, recalling lots, explicitly rejecting shortcuts—in order to protect every customer and our own reputation. The market may come to us with pressure for faster lead times and lower cost, but reliability takes top billing. Our clients remember those moments long after they forget the price point.

    Supporting R&D and Open Dialogue

    We pay close attention to the ways researchers and industrial partners push our product’s boundaries. Several years ago, a customer came to us aiming to link the perfluorooctyl group to a complex organic framework for medical device coatings. Their reactions demanded trace-level analytical documentation and rigorous moisture control. Working side by side, we tweaked our drying and packaging systems until their process succeeded. Feedback doesn’t disappear into a suggestion box; it influences our batches, our analytical routines, and our willingness to stand behind custom runs.

    Repeat customers have their own stories. In one case, a customer struggled to achieve bond conversion after introducing our product for surface modification of a composite. We dispatched technical staff to their site, tracing the difficulty back to storage transferred from the shipping drum into a non-inert, open-head pail. Oxidative loss, invisible to the eye, lowered the yield below viability. We refined our labeling and documentation for critical storage recommendations, preventing future waste. Details like these do not appear in advertising copy. They get hammered out between our teams and every customer attentive to their own results.

    3-Perfluorooctyl-2-Iodopropanol rarely stands alone in a process; it links to other ingredients, additives, and surface treatments. Sometimes outcomes depend on seemingly trivial details—solvent grade, mixing order, temperature control. We’ve collaborated with partners to validate procedures before full roll-out, sharing bench-scale samples and laboratory space to make sure their process translates to plant floors. Success in advanced materials always requires moving beyond the page and into the lab.

    Ongoing Advances and What We Watch Closely

    Demand patterns shift as technology progresses. We track interest from sectors exploring non-traditional uses—in lubrication, electronic ink stabilization, or new families of low-energy adhesives. Our team spends as much time learning from our customers as we do in our own lab. Innovations stem from this combined expertise, not only our own formulation.

    Requests rise for tailored formulations—particular chain lengths, custom functionalization, advanced purity. Meeting these isn’t always straightforward. Even as automation rises in specialty chemical production, a human eye and direct experience remain irreplaceable. Our production chemists show same pride in a 500-mL pilot sample as in a full metric ton destined for multilayer technical films. That attention explains why people return, year after year, with specialized requests built on trust in our approach.

    Ethical Choices and Clear Communication

    We owe honest answers to every partner along the chain, from procurement teams to researchers to manufacturing line staff who use our product daily. Some customers ask challenging ethical questions about the sustainability of fluorinated chemistry. We answer these thoughtfully, recognizing the real benefits provided in safety gear, medical coatings, and advanced devices, but also facing the legacy and end-of-life concerns such materials raise.

    Our facility continually invests to reduce potential emissions, maximize recovery, and transition older processes with more modern, contained operations. Each new batch reflects not just a technical procedure but hundreds of small improvements earned through repeated use and critical analysis. We do not shy away from scrutiny; instead, we welcome dialogue and correction, using it to maintain not just regulatory compliance but long-term relationships.

    Questions You Should Ask (and We’re Ready to Answer)

    Researchers, engineers, and procurement officers come with detailed lists and unexpected scenarios. We believe those questions deserve real answers:

    Tough questions make an operation stronger. Difficult conversations—about environmental track records, possible alternatives, and all the lessons hidden in test failures—set the real manufacturers apart from the rest of the field.

    Why We Stand Behind Our Approach

    After years working in this space, every shipment out the door stands not only for chemical purity, but ongoing relationships. Consistency, clarity, and trust make the greatest difference when scaling new applications. People return because they value a steady partner, someone who can adjust when process conditions change, and who backs their product with focused experience and dedication.

    As the field advances, new questions always arise. Regulations shift, formulations evolve, and new standard testing appears. Through all this, the commitment remains: give every customer the same direct access to specialists, answer authentic questions without delay, and provide a product that meets real-world needs in practical and measurable ways. That’s where long-term value emerges—not from abstract claims, but from the kind of knowledge and care that build real confidence, one batch at a time.