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1H,1H,13H-Perfluorotridecan-1-ol

    • Product Name 1H,1H,13H-Perfluorotridecan-1-ol
    • Alias FTDOL
    • Einecs 402-700-8
    • 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

    532686

    Chemical Name 1H,1H,13H-Perfluorotridecan-1-ol
    Molecular Formula C13H5F25O
    Molar Mass 670.13 g/mol
    Cas Number 865-86-1
    Appearance Colorless liquid
    Boiling Point 160-165 °C at 760 mmHg
    Melting Point -18 °C
    Density 1.782 g/cm3 at 25 °C
    Solubility In Water Slightly soluble
    Flash Point >110 °C
    Refractive Index n20/D 1.317
    Purity Typically ≥ 97%

    As an accredited 1H,1H,13H-Perfluorotridecan-1-ol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 1H,1H,13H-Perfluorotridecan-1-ol is supplied in a sealed amber glass bottle with a secure screw cap.
    Shipping 1H,1H,13H-Perfluorotridecan-1-ol is shipped in tightly sealed, chemical-resistant containers to prevent leaks or contamination. It should be transported under ambient temperature, away from heat or incompatible substances. Packaging complies with relevant chemical safety and regulatory guidelines, ensuring safe delivery and handling. Shipping includes appropriate hazard labeling and documentation as required.
    Storage 1H,1H,13H-Perfluorotridecan-1-ol should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers and acids. Protect from moisture and direct sunlight. Ensure storage area is equipped for containment in case of spills, and follow all applicable safety regulations for handling fluorinated compounds.
    Application of 1H,1H,13H-Perfluorotridecan-1-ol

    Applications of 1H,1H,13H-Perfluorotridecan-1-ol in Industrial Manufacturing

    1H,1H,13H-Perfluorotridecan-1-ol provides advanced performance in specialty industrial sectors due to its unique fluorinated structure. As the original manufacturer, we supply this material to clients with strict consistency and traceability for demanding downstream applications. Below, we outline key industrial application routes supported by compliance protocols, technical use levels, optimized process integration, and typical finished product types.

    1. Electronic Component Surface Treatment

    This fluorinated alcohol enables the production of hydrophobic and oleophobic surface coatings for semiconductor parts and printed wiring boards. During manufacturing, formulators incorporate the material into surface modifier blends to impart moisture resistance essential for long-term electronic reliability. High purity and batch standards support demanding electronics supply chains.

    Industry compliance standards

    • IPC-4101: Reinforced base materials specifications
    • RoHS Directive 2011/65/EU
    • IEC 60664-1 Insulation coordination for equipment
    • JIS C 5016 Printed wiring board test methods

    Typical usage ratio

    • 0.2%–2% by weight within polymer binders or sol-gel matrices, subject to total solids and target repellency profile

    Downstream process integration

    • Add as final component to liquid coating formulations before application
    • Mix with fluoropolymer systems for dip or spray application onto substrates
    • Cure at 120–150°C after coating for film formation and property development

    Final product types

    • Semiconductor wafer moisture barriers
    • PCB water-repellent coatings
    • MEMS package surface films
    • Smartphone PCB hydrophobic finishes

    2. Oil and Gas Equipment Anti-Fouling Coatings

    Drilling and extraction systems require durable coatings to resist oil fouling and deposit formation under harsh conditions. The perfluorinated alcohol acts as a specialty surface-active agent in high-performance anti-fouling coating formulations, letting manufacturers meet service lifetimes in upstream and downstream oil and gas equipment. Product purity and consistent molecular weight are critical for achieving regulatory approval.

    Industry compliance standards

    • NORSOK M-501 Surface preparation and protective coating
    • API RP 5L2 Internal coatings for line pipe
    • ISO 12944 Corrosion protection by coatings
    • REACH Regulation (EC) No 1907/2006 compliance for chemical substances

    Typical usage ratio

    • 1–5% by weight depending on target resistance level, total binder resin, and expected chemical exposure

    Downstream process integration

    • Blend into base paint or sealant formulation as additive prior to application
    • Apply via spray or dip to pipe, valve, or pump surfaces
    • Subject finished surfaces to high-temp cure or UV crosslinking, depending on coating chemistry

    Final product types

    • Anti-fouling pipeline coatings
    • Wellhead equipment surface treatments
    • Refinery tank lining coatings
    • Oil pump corrosion-resistant parts

    3. Textile and Leather Water Repellency Treatments

    The unique fluorinated tail and alcohol head group allow formulators to develop durable water-repellent (DWR) finishes for technical apparel, footwear, and leather goods. Applying these treatments during finishing creates textiles with strong water, oil, and stain resistance, supporting compliance with strict chemical safety requirements in consumer goods manufacturing. Full inventory traceability supports certification audits.

    Industry compliance standards

    • OEKO-TEX Standard 100 (Appendix 6 for chemical management)
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals Manufacturing Restricted Substances List)
    • ISO 4920 Textile spray test for water repellency
    • GB 18401 National general safety technical code for textile products

    Typical usage ratio

    • 0.5–1% by weight in finishing bath for woven and nonwoven textiles; up to 2% for high-performance applications

    Downstream process integration

    • Introduce into the final finishing stage bath or spray application for fabric/textile processing
    • Cure at 120–160°C to bond repellent treatment to fiber surfaces
    • Integrate pre- or post-dyeing depending on colorfastness protocols

    Final product types

    • Technical outerwear
    • Automotive upholstery fabrics
    • Protective industrial clothing
    • Waterproof leather shoes and bags

    4. Fluorinated Surfactants for Emulsion Polymerization

    It serves as a specialty surfactant in emulsion polymerizations where high hydrophobic-lipophobic balance is essential, such as in the manufacture of fluoropolymers, specialty rubbers, and adhesives. Proper dosing and handling ensure target latex stability, narrow particle size, and low residual surfactant levels, crucial for regulated sectors like aerospace or filtration. All lots meet declared specification ranges for surface tension and non-volatile content.

    Industry compliance standards

    • ISO 14001 Environmental Management System
    • ASTM D4000 Classification system for plastics
    • EPA TSCA Inventory Listing for commercial surfactants
    • EN 12336 Polymer dispersions storage and handling standards

    Typical usage ratio

    • 0.1–0.7 phr (parts per hundred resin) in polymerization recipes, adjusted according to target latex stability

    Downstream process integration

    • Dose into monomer or pre-emulsion phase before polymerization start
    • Ensure high-shear dispersion with other surfactant systems where required
    • Remove excess by post-polymerization stripping or washing as needed for end-use

    Final product types

    • Fluoropolymer emulsions
    • Specialty latexes for filtration membranes
    • Adhesive dispersion systems
    • Wire and cable insulation compounds

    5. Nonflammable Hydraulic Fluid Additives

    Blending carefully controlled levels of this long-chain fluorinated alcohol into hydraulic fluid formulations increases their nonflammability, dielectric strength, and chemical stability. Engineers utilize these fluids in aerospace, power plant, and high-risk industrial operations to decrease ignition hazards in confined systems. Direct batch control and purity assurance are critical for OEM approvals.

    Industry compliance standards

    • NFPA 30 Flammable and Combustible Liquids Code
    • ISO 12922 Hydraulic fluids—Fires resistance requirements
    • ASTM D4713-05 Standard for synthetic hydraulic fluids
    • Mil-PRF-83282E Military hydraulic fluids performance specification

    Typical usage ratio

    • 0.5–3.0% by volume; adjusted based on required K-factor and compatibility with base fluid chemistries

    Downstream process integration

    • Blend with base synthetic oils under controlled conditions, verifying phase compatibility
    • In-line filtration to remove entrained particles post-blending
    • Conduct pre-fill QC (viscosity, flash point, dielectric breakdown tests)

    Final product types

    • Phosphate ester fire-resistant hydraulic fluids
    • Nonflammable hydraulic oils for power plants
    • Aerospace actuator fluid systems
    • Electric transformer cooling fluids

    6. Photoresist Release and Etch-Stop Layers in Microfabrication

    In advanced photolithography and wafer etching, the material acts as a protective release and etch-stop layer in microelectronic fabrication. Its performance supports sharp pattern transfer, easy film stripping, and minimization of residue, crucial for leading-edge IC production. All deliveries include batch-specific certificates to support semiconductor traceability requirements.

    Industry compliance standards

    • IATF 16949 Automotive quality management for electronics
    • SEMI C41 Standard for Chemicals used in Semiconductor Processing
    • JEITA ED-7303 for semiconductor manufacturing processes
    • ISO 14644 Cleanroom classification

    Typical usage ratio

    • 0.1–0.8% by weight in release layer formulations, optimized for process line specifics and target residue profile

    Downstream process integration

    • Deposit as surface film before photoresist application
    • Spin- or dip-coat onto silicon wafer substrates
    • Remove by wet chemical strip after etch or lithography sequence

    Final product types

    • Deep-UV photoresist release films
    • Etch-stop barrier layers for wafer dicing
    • Ultra-clean tape lift-off systems
    • MEMS device substrate coatings
    Free Quote

    Competitive 1H,1H,13H-Perfluorotridecan-1-ol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1H,1H,13H-Perfluorotridecan-1-ol: Our Direct Perspective from the Manufacturer

    An Introduction Grown from Experience

    Years of hands-on research and customer feedback have sharpened our understanding of specialty fluorinated alcohols. Among these, 1H,1H,13H-Perfluorotridecan-1-ol stands apart in our portfolio and the broader chemical marketplace. Direct engagement with chemists and process engineers in our facility reveals a clear pattern—engineers don’t just want a high-performance surfactant or co-reactant; they expect reliability and transparency from their sources.

    This compound, with the molecular structure C13H5F27O, catches interest not simply for its chemical novelty but because it solves tangible problems in practical settings—addressing everything from surface tension issues in coatings to selectivity in pharmaceutical synthesis. Our investment extends beyond tailored synthesis. We study how end-users handle impurities, volatility, shelf stability, and process integration. The goal is to produce batches that work the same way every time and remove the blind spots that often stall downstream processing.

    Model Consistency and Real-Life Performance

    Laboratory purity and stability benchmarks are only worthwhile if repeatable on a production line. We manufacture several lots of 1H,1H,13H-Perfluorotridecan-1-ol every quarter, and each time, our focus tracks back to reaction yields, easy purification, and contamination control. This is not just check-box QA—teams analyze the material using high-performance liquid chromatography and FTIR equipment in real time, and every notable deviation triggers a rapid root-cause session.

    One persistent lesson: downstream polymer chemists and electronics firms scrutinize trace ionic residues and by-products more closely than almost any other customer. Rather than treat this as a compliance nuisance, we adapt upstream chemistry to emphasize cleaner side reactions, and test intermediate fractions periodically. This leads to a product that not only meets stated purity of over 98% but also reflects the cumulative adjustments arising from many batches behind it. Over the last fiscal year, our post-filtration samples consistently showed less than 300 ppm total non-fluorinated organic residues, and fluorine balance above 99% of theoretical. These numbers matter to researchers chasing reproducibility in demanding applications.

    Specifications that Reflect Field Demands

    1H,1H,13H-Perfluorotridecan-1-ol comes as a colorless, mobile liquid under ambient conditions, and we bottle it in HDPE and fluoropolymer-lined containers designed to avoid contamination during storage and transit. Water absorption presents real challenges in humid environments, especially for labs in the Pacific Rim, so our packaging line tightly controls headspace and seals each batch under dry nitrogen. This is not a marketing flourish—failures in packaging mean significant costs in reprocessing and disposal, lessons we have absorbed over time.

    The product’s boiling point hovers near 217°C at atmospheric pressure, and the unique combination of perfluorinated backbone and terminal alcohol group opens up performance in multiple sectors. You rarely see effective replacements among hydrocarbon alcohols or shorter perfluorinated chains, given the balance our product strikes between hydrophobic-lipophobic behavior and limited reactivity at the hydroxyl. Unlike shorter-chain homologues, 1H,1H,13H-Perfluorotridecan-1-ol brings true utility for thin-film deposition, where the nonpolar backbone resists unwanted interactions but the alcohol moiety provides precise anchoring.

    Hands-on Uses Across Sectors

    We often field calls from R&D chemists and production managers who face issues with inconsistent wetting, lack of thermal endurance, or chemical incompatibility when using standard surfactants and modifiers. They look to us not for a generic description but for solutions. In once case, an advanced optics manufacturer found that older C8 and C10 fluorinated alcohols led to process drift because of volatility losses and insufficient lower-surface tension; by switching to 1H,1H,13H-Perfluorotridecan-1-ol, they achieved stable films over weeks, not mere days, and production rejects dropped below 2%.

    In specialty coatings, our partners note reductions in pinholes and faster leveling rates when switching from conventional silicone-based additives to our material. That’s largely because of the rare combination of chemical inertness and persistent surface activity offered by the longer perfluoroalkyl chain in this compound. It’s not uncommon for us to discuss directly with formulation chemists tweaking concentrations for anti-smudge layers or solvent-borne resists, often collaborating on small-batch customizations if off-the-shelf formulations falter.

    Pharmaceutical intermediates represent another arena where experience pays dividends. The alcohol functionality of 1H,1H,13H-Perfluorotridecan-1-ol takes part in protection/deprotection chemistry, especially in specialized silylation steps. Our process control—not simply raw purity stats, but knowledge of subtle side-product profiles—gives customers the confidence that their yields won’t drop when scaling up. Several times, clients have reported process upsets from non-manufacturer-sourced fluorinated alcohols where off-odor and tint revealed trace amounts of non-volatile acids—a headache avoided through our end-to-end traceability and technical engagement.

    Differences Rooted in Manufacturing, Not Brochure Claims

    Lab-scale variants of perfluoroalkyl alcohols, including C10, C12, and C13 chains, initially seem similar on paper. We often explain that longer chains, such as in 1H,1H,13H-Perfluorotridecan-1-ol, impart not only higher hydrophobicity but also greater persistence in demanding conditions, like plasma etching lines or continuous spray operations. Field techs have returned with stories of chain breakdown and contamination from competitors’ analogues after a few weeks of use, forcing costly maintenance.

    From our vantage point, the differences start at raw material sourcing. We dedicate time to verifying upstream suppliers of fluorinated intermediates—a misstep in sorting perfluoroalkyl iodides or base stock purity can lead to a cascade of sub-par batches. Our on-site reactors run with continuous feedback loops and tight temperature control, translating industry experience into new runs that consistently match the best historical lots. Each batch leaves the plant not just as a bottled liquid but as a summary of months of incremental improvements, from reactor upgrades to technician retraining.

    Some distributors pass along claims about “drop-in” replacement with C8 or C12 homologues. But side-by-side in user field trials—like anti-fouling marine paint panels exposed to real harbors—the C13 chain outperforms for water repellency and biofilm resistance by a wide margin. The difference lies not in surface-level stats, but in the microstructure formed with substrate interfaces, which we document by microanalysis in our plant lab.

    Reliability That Goes Beyond Purity Certificates

    We think about batch-to-batch consistency as a dynamic metric, not a static promise. Because some applications, particularly medical device assembly and semiconductor processing, react instantly to even sub-ppm levels of contamination, we sample and analyze mid-batch pulls as often as finished lots. Our own R&D group studies degradation pathways under UV and heat, feeding this information back into synthesis protocols.

    Over years, we have found that customers prize not just the numbers on a CoA but the accountability of real-world technical feedback. Instead of relying on claims, we maintain systems that retain full traceability records on every batch, with synthesis logs, intermediate sample chromatograms, and container histories kept for over five years. This isn’t about regulatory compliance—many small and mid-scale users reach out long after delivery for troubleshooting or documentation support, and find clear, comprehensive answers.

    Safety and Environmental Responsibility from the Source

    Regulatory scrutiny around perfluorinated compounds gets tighter every year, and end-users increasingly ask about not only performance but also environmental fate and safe handling. We address this bluntly—unlike third-party sellers, we build safety into every step of our process. Vent gas treatment systems, closed-loop waste collection, and solvent recovery form standard protocols in our plants. We test every waste stream to stay ahead of emission and effluent standards set by authorities in North America, Europe, and Asia.

    On the client side, we don’t gloss over disposal considerations or long-term persistence in the environment. Processing plants using our 1H,1H,13H-Perfluorotridecan-1-ol receive straightforward guidance, direct from our technical teams, to minimize losses and direct any unavoidable discharge into approved destruction routes. We prioritize long-chain perfluoroalcohols that meet a high bar both for performance and management of end-of-life impacts, because sustained relationships with customers depend on addressing the full lifecycle, not just the sale.

    Collaboration and Support Beyond the Sale

    Many users first encounter our product when they hit a wall with standard surfactants or additives. We encourage discussion before and after delivery. Even seasoned chemical engineers occasionally misjudge loading levels or storage requirements with perfluorinated alcohols, so our support line fields frequent queries, ranging from solubility troubleshooting to process optimization tips. People appreciate talking directly with manufacturing chemists—not just sales reps—who understand not only the textbook properties but the specific quirks of each lot.

    Occasionally, university research groups and startups come to us for custom synthesis based on 1H,1H,13H-Perfluorotridecan-1-ol, seeking unusual isotopic markers, chain extensions, or modified functional groups. Our pilot reactors and analytical chemists stay flexible for these requests—much of our know-how in fractionating, purifying, and analyzing derivative structures spins off from supporting these new ideas. This open-door attitude doesn’t just serve the academic or R&D crowd—industrial users also push us for product variants as regulations shift, or when new substrates displace legacy materials.

    The Real Gold Standard: Accountability and Results

    Our reputation isn’t built on polished brochures or generic data sheets—it grows from responding directly to user concerns, learning onsite at customer plants, and adapting production to reflect real-world needs. Users tend to return to us because they see how attention to detail at the manufacturing site translates to fewer headaches in their own operations. Long fluorinated chain alcohols, such as 1H,1H,13H-Perfluorotridecan-1-ol, don’t just win in the abstractness of lab values; they show their true value after months of service in coatings, electronics, and advanced materials work.

    Reliability counts most. After years working with leading players in diverse industries, we’ve learned that no two application environments look the same. We focus not on the next big marketing slogan, but on understanding, batch by batch, what it takes for a specialty chemical to unlock value in the hands of the people who matter most—the users at the point of production. In the end, 1H,1H,13H-Perfluorotridecan-1-ol represents more than its molecular formula; it stands for years of adaptation, listening, and practical partnership between manufacturing chemists and the industries we support.

    Looking Ahead with Open Eyes

    We watch regulation, supply chain shifts, and end-use demands closely, rather than treating production as a static snapshot. As new environmental standards emerge and markets shift to higher-purity requirements, we keep refining process chemistry and analytical rigor, making it a living process—not just a paperwork exercise. The future for 1H,1H,13H-Perfluorotridecan-1-ol won’t be shaped by marketing alone, but by the actual outcomes delivered in the field. We welcome technical challenges, process feedback, and opportunities to collaborate with users who want more from their chemical partners. As a manufacturer, our job is to listen, adapt, and build reliability batch over batch—and that’s the story behind our work with 1H,1H,13H-Perfluorotridecan-1-ol.