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1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol

    • Product Name 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol
    • Alias F-Clean PFMH
    • Einecs 700-201-8
    • 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

    393723

    Product Name 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol
    Cas Number 1556-94-7
    Molecular Formula C7H7F13O
    Molecular Weight 356.11 g/mol
    Appearance Colorless liquid
    Boiling Point 162-164°C
    Density 1.585 g/cm³ (at 20°C)
    Flash Point > 110°C (closed cup)
    Solubility In Water Insoluble
    Refractive Index 1.309 (at 20°C)
    Melting Point -40°C
    Purity Typically ≥ 98%
    Vapor Pressure 6.9 mmHg at 25°C
    Synonyms 5-Methyl-1H,1H,2H,2H-perfluoro-1-hexanol
    Storage Conditions Store at room temperature, tightly closed

    As an accredited 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 25 grams, with secure screw cap. Bottle labeled with chemical name, hazard symbols, and handling instructions.
    Shipping 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol should be shipped in tightly sealed, chemically resistant containers, protected from moisture and incompatible substances. It is classified as hazardous; handle according to relevant regulations. Proper labeling, documentation, and adherence to all transportation guidelines for chemicals are required to ensure safe and compliant shipping.
    Storage **1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol** should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from sunlight and incompatible substances such as strong oxidizers or acids. Keep the container away from sources of ignition. Store at room temperature and avoid excessive heat or freezing. Ensure secondary containment to prevent environmental contamination in case of leakage.
    Application of 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol

    Applications of 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol in Industrial Manufacturing

    As a specialized manufacturer, we supply 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol directly to sectors where its fluorinated structure and high chemical stability play indispensable roles in demanding technical workflows. The following application scenarios reflect real-world, field-verified downstream utilization, with explicit attention to industry standards, process parameters, and end-product integrations.

    1. Electronic Device Coating and Surface Treatment

    Leading electronics manufacturers require advanced materials for hydrophobic and oleophobic surface treatments on circuit boards, sensors, and display components. This fluorinated alcohol integrates into specialty coating formulations to improve moisture resistance and reduce surface contamination in microelectronics. Consistency and traceability in raw material input are tightly controlled to synchronise with rigorous process qualification procedures.

    Industry compliance standards

    • IPC-4101B: Base Materials for Rigid and Multilayer Printed Boards
    • IEC 60664: Insulation Coordination for Equipment
    • RoHS Directive 2011/65/EU (EU Restriction of Hazardous Substances)
    • ISO 9001:2015 Quality Management Systems

    Typical usage ratio

    • Between 0.3%–1.2% by weight within polymer coatings, subject to film thickness and end-use hydrophobicity requirement; high-durability applications use higher rates within technical limits determined by substrate compatibility.

    Downstream process integration

    • Processed during the liquid polymer binder compounding stage
    • Applied by dip, spray, or spin coating onto device surfaces ahead of final curing
    • Followed by thermal or UV post-cure to lock in chemical resistance

    Final product types

    • Printed circuit boards (PCB) for smartphones, wearables, and automotive modules
    • Spectacle lens coatings
    • Touchscreen protective films
    • High-reliability image sensors

    2. Fluorinated Surfactant for Firefighting Foam Concentrates

    Major producers of Class B firefighting foams use this fluorinated alcohol in performance-tuned surfactant packages to lower surface tension and enable rapid film formation on hydrocarbon and alcohol-based liquid fuels. Compliance with emerging environmental, health, and safety mandates requires transparent formulation declaration and precise dosage control to balance efficacy and environmental footprint.

    Industry compliance standards

    • EN 1568-3:2018 (Foam Concentrates for Surface Application to Water-immiscible Liquids)
    • NFPA 11: Standard for Low-, Medium-, and High-Expansion Foam
    • US EPA 40 CFR Part 721 (Significant New Uses of Chemical Substances – PFAS management)
    • ISO 14001:2015 Environmental Management Systems

    Typical usage ratio

    • 0.2%–0.7% by weight in the final foam concentrate, exact dosage optimized to achieve UL162 or EN 1568 minimum extinguishing performance and foam expansion ratios without exceeding surfactant toxicity and biodegradability limits.

    Downstream process integration

    • Dosed during the foam concentrate compounding phase with controlled, high-shear mixing
    • Blended alongside fluoroalkyl sulfonates, hydrocarbon surfactants, and polymers
    • Quality assurance includes surface tension and foam expansion rate validation

    Final product types

    • Airport fire suppression foam concentrates (AFFF, FFFP)
    • Refinery and petrochemical plant firefighting agents
    • Oil tanker fire protection foams
    • Chemical spill response kits

    3. Synthesis Intermediate for Fluorinated Polymers

    High-end polymer manufacturers employ this material as a specialty alcohol for introducing fluorinated branches or end-groups during polymerization or post-polymer modification. Its unique structure enables precisely engineered surface energies and chemical inertness in resulting fluoroelastomer and fluoropolymer resins, with batch documentation supporting aerospace or semiconductor material traceability.

    Industry compliance standards

    • ASTM D1418: Standard Practice for Rubber and Elastomer Terminology
    • ISO 10993-5 (Biological Evaluation, indirectly for medical-grade fluoropolymers)
    • AS9100: Aerospace Quality Management
    • REACH Regulation (EC) No 1907/2006 – SVHC registration

    Typical usage ratio

    • Typically 0.5%–2.5% as a co-monomer or chain-end modifier, rate adjusted based on molecular weight target and surface chemistry required for final application (membranes, gaskets, etc.).

    Downstream process integration

    • Added to pre-polymer or monomer mixtures prior to initiation (solution or emulsion polymerization)
    • May function as a chain transfer agent for tailor-modifying macromolecular structure
    • Final purification via solvent extraction and molecular weight characterization

    Final product types

    • Low-surface-energy coatings and films
    • Fluoroelastomer gaskets and seals
    • Permeation barrier membranes
    • Insulating sleeves for data cables

    4. Release Agent Component in High-Precision Molding

    This material serves as a key active in composite and technical rubber mold release agents where traditional silicones or hydrocarbons leave residues or affect surface finish. Its fluorinated backbone enables clean demolding of complex shapes, especially in aerospace-grade composite fabrication and micro-part injection molding where even trace contamination is unacceptable.

    Industry compliance standards

    • SAE AMS 3678: Mold Release for Composites
    • ISO 14644-1: Cleanrooms and Associated Controlled Environments
    • Boeing BMS 8-223 (for composite part manufacture)
    • ISO 45001:2018 Occupational Health and Safety

    Typical usage ratio

    • 0.1%–0.6% as an additive in aqueous or solvent-based release agent formulations; dosage precisely calibrated to mold surface porosity and cure cycle frequency.

    Downstream process integration

    • Incorporated into emulsions or solutions during batch blending with surfactants and film-formers
    • Applied to mold surfaces by spraying or wiping as final step before composite layup or rubber compound charging
    • Post-use cleaning leaves minimal residue, confirmed via contact angle measurement

    Final product types

    • Carbon fiber or glass-reinforced composite aerospace panels
    • High-purity elastomer seals for medical and electronic uses
    • Precision injection-molded plastic connectors
    • Performance sports equipment shells

    5. Hydrophobic Additive in Industrial Textile Treatments

    Textile finishers incorporate this material as an advanced water repellency agent for premium outdoor fabrics, technical protective garments, and filtration media, replacing legacy PFOS/PFOA compounds. Regulatory scrutiny of persistent fluorochemicals has driven detailed traceability and validation at every stage of the supply chain.

    Industry compliance standards

    • OEKO-TEX Standard 100 (Textile Safety)
    • ZDHHC MRSL (Manufacturing Restricted Substances List)
    • REACH Annex XVII (Fluorinated compound restrictions)
    • ISO 4920: Water Repellency Spray Test

    Typical usage ratio

    • 0.2%–0.8% on fabric weight, adjusted by fabric structure, targeted repellency rating, and durability after laundering cycles.

    Downstream process integration

    • Introduced during finishing bath formulation post-dyeing
    • Applied via padding or exhaustion process followed by thermal curing at 130–170°C
    • Repellency checked using spray or contact angle tests before shipment

    Final product types

    • Technical workwear and firefighting garments
    • Outdoor performance jackets
    • High-durability filtration fabrics
    • Moisture-resistant upholstery textiles
    Free Quote

    Competitive 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol: A Perspective from the Manufacturer

    Understanding the Product from the Factory Floor

    Every batch of 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol rolling out of the plant carries with it a story forged by real-world demand and years of synthetic know-how. In an industry where reliability matters as much as technical data, this compound continues to stand out, especially for engineers and chemists who work hands-on with surface treatments and specialty formulations. Our crews invest continuous attention into the distillation and purification stages, driven by the nuanced requirements of customers who rely on stable physical properties, not just purity on paper.

    The Model and Specifications

    We produce this fluoroalcohol to match rigorous industry standards for physical stability and repeatable results. Chemically speaking, this molecule has the formula C7H13F13O, a structure that delivers a precise balance in molecular weight and volatility. Visual checks, chromatographic runs, and repeated NMR confirmations guide every tank and drum we fill. What passes our in-house certification meets our tight tolerances for minimum purity at ≥98%, while moisture and acid residues are held below trace levels. Regular calibration and validation of our analytic equipment stay prioritized because even minor shifts influence downstream performance.

    Quality control does not end after batch analysis. From raw stock fluorination to finished product sampling, the production team keeps eyes on every metric. We send our technical team walking the lines, checking that each step — from hydrogenation to the final bottling — stays in tune with best practice, and our process documentation grows from real-world troubleshooting. This commitment leads to a perfluoroalcohol that builds trust batch after batch, with minimal deviation.

    What This Product Really Delivers

    Colleagues who have formulated with standard fluoroalcohols, regular higher alcohols, and even common perfluoroalkanes know that slight changes in chain architecture can make or break a formulation. The addition of a single methyl group or the placement of that perfluoroalkyl tail significantly impacts spread, miscibility, and reactivity. 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol gives customers a unique hybrid: the hydrophobic power of perfluorination combined with the functional flexibility of a primary alcohol.

    In the markets we serve — from semiconductor to specialty coatings and precision cleaning — this structure does not merely add weight to a formulation, but defines performance windows others just can’t touch. Take solvents and wetting agents: blends behave differently depending on chain symmetry and steric hindrance, and incorrect backbone selection quickly leads to layer separation or poor adhesion. Here, the 5-methyl component steps up by influencing not just the boiling point, but how the entire molecule interacts at molecular interfaces, especially with hydrophilic or fluorophilic surfaces.

    Direct Application Experience Outpaces Generic Spec Sheets

    We learned through direct partnerships that many customers head to us after finding standard perfluorohexanol derivatives lacking — usually in formulations where spread, substrate adhesion, or reactivity just plateaued. Mask shops in electronics came looking for a solution to capillary creep and found that our product tightened their margin of error against under- or over-development. Researchers in advanced coatings discovered that using this alcohol, instead of a straight perfluorohexanol, let them push water and oil repellency without adding unwanted side reactions.

    Our collaborators in fine chemical synthesis needed an anchor molecule with controlled reactivity but less volatility than typical perfluoroalkyl analogues. The methyl substitution gave them extra latitude in temperature-programmed reactions, allowing greater process flexibility. Over time, repeat orders have validated the choice, showing lower defect rates and less material waste in their own process audits.

    How 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol Stands Apart

    Most perfluorinated alcohols in the market gravitate to simple, unbranched chains. They certainly work for applications demanding basic low-surface-energy properties, but complexity in modern applications asks for more. With this product's methyl branch on the C5 position, downstream chemists unlock a wider toolbox. This isn’t just theory — we see these results through samples tested under both controlled and real-use environments, where competitors’ linear chain analogues frequently break down or fail to provide needed durability.

    In our own lab, we have thrown every common stress test at it: thermal cycling, UV exposure, intermittent contact with aggressive etchants, as well as compatibility with carrier solvents ranging from acetone through terpenes and glycols. Results consistently show a broader resistance range compared with non-branched perfluorohexanols and even with some bulkier longer-chain structures.

    This molecule doesn’t merely replicate hydrophobic or lipophobic “standards.” Instead, it brings another layer of interface management: suspensions retain clarity for longer, dispersions maintain droplet size, and coatings form uniform thin layers even across challenging composites. We have worked side by side with adhesives makers and paint specialists who noticed immediate gains in finished product performance.

    It pays to remember that, in our own usage, the low surface tension intrinsic to this compound does not just deliver marketing claims, it actually staves off phase collapse in mixed solvent systems and creates long-lasting barrier properties against both water and oils. These attributes matter much more than hypothetical specs, and we see growing demand from developers who outgrew limitations of traditional surfactants or hydrophobic agents.

    From Bulk Production to Specialty Demand

    Much of the market for perfluoroalcohols ties back to global trends in microelectronics, automotive, and advanced textiles. Each of these sectors brings unique technical headaches. In electronics, for example, no slip-up goes unnoticed — ionic residues lead to immediate rework, and a single contaminant in the wetting process can destroy expensive runs. Our product wins repeat business here not just from low trace impurities, but also because of its cleanliness in rinse processes and ease of post-process detection.

    In high-performance textiles, clients need repellency without a heavy finish or environmental hazard. Rather than using heavy perfluoropolyether blends, they get more control — lighter application, less yellowing, more durable effects wash after wash. It’s not uncommon for us to hear about dramatic lifetime improvements simply by shifting to this structure, considering how difficult it is to find balance between repellency and environmental compliance.

    Automotive and aerospace partners reference thermal cycling resistance as an ongoing frustration. Many competing compounds simply drop out of solution at operational extremes. Direct experience shows this compound hangs on under tough cycling, even in high-speed parts exposure to solvents, fuels, and ambient chemicals. Frequent feedback from production lines — cracked seals reduced, water beading retained longer, coatings staying slick — spurs further process investments from our side.

    Environmental and Safety Thinking Grows With Experience

    Manufacturing any substance built around perfluorinated chemistry demands careful scrutiny, both to guarantee product safety for users and to steward environmental commitments that customers now see as non-negotiable. Our journey here started years back with internal audits, switching over to closed-loop fluorination and solvent recovery systems. We’re not just reacting to regulation, but responding to real-world shifts in how downstream users need to satisfy ever-tightening health and safety standards.

    Part of our ongoing process improvement involves rethinking not only energy inputs, but waste minimization and solvent re-use at every step. More and more applications, from the medical sector to clean-room consumables, expect not just minimal residue but full traceability. This means documenting the absence of persistent organic pollutants in meaningful quantities, reducing off-gassing, and controlling emissions so the production footprint stays measurable and accountable.

    Performance Differences Backed by Real Users

    Having worked closely with teams in electronics, optics, and specialized polymers, we see outcomes that wouldn’t surface in an ordinary lab trial. Industrial cleaning companies tell us the solution stays effective after repeated cycling, while less specialized competitors’ products fade out. Printed circuit manufacturers report that coverage stays consistent, and thin film uniformity actually increases at lower concentrations. Our own experience tracking material returns and replacements has borne out the same conclusion: recurring issues with film integrity, contamination, or print smudging drop steadily with the switch to this specific fluoroalcohol.

    It’s not just in the field. Back in the plant, maintenance teams work with the same rigor to keep our reactors and packaging lines free of cross-contamination. Some buyers still show up with their own standards — we welcome it. With full records on handling and runtime, we see fewer surprises in batch-to-batch consistency compared with industry averages. Over years, that builds the kind of confidence responsible chemists look for.

    Supporting Innovation, Not Locking Down Formulation

    Speaking openly, we prefer to see our clients experiment. We support development teams willing to try out mixes, devise new application protocols, and push boundaries beyond textbook uses. While literature might point only to hydrophobic coatings and specialty solvents, we’ve supplied product for entirely new sorts of release agents, lubricants, and crosslinker catalysts that push the molecule’s functional group into unexpected chemistry.

    Once, a company working on microfluidic chips turned our attention to optimizing surface energy gradients along complex channel networks. Standard perfluorohexanols just wouldn’t play nicely — films broke, response times lagged. Our methylhexanol variant hit a sweet spot by providing coverage where it mattered, no matter the microstructure, ultimately speeding up both device testing and final yield. This only works because we listen and respond to actual users — not just regulatory filings or marketing flyers.

    Our in-house R&D never stopped at batch verification. Pilot lines and custom reactors offer real-world playgrounds, and process tweaks arise directly from customer feedback. With every production run, we log which operational variables nudged performance forward — someone’s paint drying more evenly, a new solvent blend showing unanticipated compatibility, or a resin finally getting the clarity a designer sought for years.

    The Human Touch Ensures Repeatability

    No machine truly replaces the judgement and vigilance of trained technicians along the production line. Our senior operators — many of whom have spent decades at this task — catch problems that digital monitors won’t. Slight shifts in viscosity, color, or even odor don’t make the spec sheet, but they catch them. They keep careful logs on upstream material variance and downstream blending success, making certain every customer order stands up to re-inspection if needed.

    We build relationships through accountability at every stage. From the initial refinement step, through storage and final packaging, supervisors and technical staff sign off at each transition, ensuring that every shipment out the door offers genuine repeatability. This handshake between personal responsibility and technical assurance is hardly visible in public datasheets, yet it is the most central reason our partners trust each order.

    Challenges That Push Us Forward

    Supply chain stress often brings raw material volatility. Over the years, some batches present wider variances in precursor quality or pricing pressures that would make a trader sweat. By running in-house quality on every input and holding reserves on high-risk stocks, we buffer against interruptions that could otherwise cascade down the delivery chain. If process upgrades suggest a new route, the team adapts — frequently redesigning pieces of the plant to keep purity and output high without raising environmental footprint.

    Batch-to-batch analytics reveal the tiny deviations that matter most to developers and QA teams in receiving labs. We’ve learned firsthand that a molecule’s theoretical profile only covers so much of the picture. Day-to-day discoveries about application limits — how a lacquer performs under humidity shock, or a maskari compound resists acid mist at the edge of a wafer — feed straight back into our process improvement cycles.

    A Broader Context: Industry, Regulation, and Trust

    Markets for perfluorinated compounds change fast, with new compliance frameworks regularly introduced alongside changing customer expectations. Because of the unique structure and properties of 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol, we embrace ongoing REACH registration, GHS classification, and internal auditing to ensure what leaves our plant meets or exceeds both global and localized standards. Every regulation check becomes another opportunity to push clarity and documentation further.

    Customers demand more than just a product. They want the story behind their material — how it was made, what risk factors are managed, and how repeatable the supply can stay year in and year out. Being present at every step, we gain not just professional pride, but a foundation of factual, hands-on expertise that supports innovation, safety, and productivity from one shipment to the next.

    Invitation to Direct Collaboration

    Working as a chemical manufacturer in the evolving field of high-purity fluorochemicals means never sitting still on process improvement. We benefit as much from conversations with end users as from data runs and plant optimizations. Direct engagement with formulation experts, safety officers, and process engineers gives us the best feedback loop. We take these lessons to heart — retesting, adapting, and refining in response to the real needs encountered by those who handle and depend on our 1H,1H,2H,2H-Perfluoro-5-Methylhexan-1-ol daily.

    In this business, details matter. Every flask, tank, or drum rolling off our lines reflects lessons learned, standards upheld, and ongoing conversations with partners — whether they bring troubles or new opportunities for application. Our experience stands as more than a technical benchmark; it represents a living collaboration between the manufacturer and every user aiming to solve today’s toughest technical challenges with reliable, adaptable chemistry.