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3,3,4,5,5,5-Hexafluoropentan-2-ol

    • Product Name 3,3,4,5,5,5-Hexafluoropentan-2-ol
    • Alias HFIP
    • Einecs 'EINECS 404-070-9'
    • 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

    208988

    Chemical Name 3,3,4,5,5,5-Hexafluoropentan-2-ol
    Molecular Formula C5H6F6O
    Molecular Weight 198.09 g/mol
    Cas Number 423-55-2
    Appearance Colorless liquid
    Boiling Point 104-106 °C
    Density 1.461 g/cm3 (at 25 °C)
    Refractive Index 1.313 (at 20 °C)
    Flash Point 54 °C
    Solubility In Water Miscible
    Smiles CC(C(C(C(F)(F)F)(F)F)O)F
    Iupac Name 3,3,4,5,5,5-hexafluoropentan-2-ol

    As an accredited 3,3,4,5,5,5-Hexafluoropentan-2-ol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of **3,3,4,5,5,5-Hexafluoropentan-2-ol** is supplied in a sealed amber glass bottle with a tamper-evident cap.
    Shipping 3,3,4,5,5,5-Hexafluoropentan-2-ol is shipped in tightly sealed, chemical-resistant containers to prevent leakage and protect against moisture. It should be transported as a hazardous material, clearly labeled, and in compliance with relevant regulations. Ensure the package is stored upright, away from incompatible substances, and handled by trained personnel during transit.
    Storage **3,3,4,5,5,5-Hexafluoropentan-2-ol** should be stored in a tightly sealed container, away from moisture, heat, and direct sunlight. Keep in a cool, well-ventilated, and dry area, separate from incompatible substances such as strong oxidizers and acids. Properly label the storage container and ensure secondary containment to prevent leaks or spills. Use only with appropriate chemical safety procedures.
    Application of 3,3,4,5,5,5-Hexafluoropentan-2-ol

    Applications of 3,3,4,5,5,5-Hexafluoropentan-2-ol in Industrial Manufacturing

    3,3,4,5,5,5-Hexafluoropentan-2-ol serves essential roles in several high-tech chemical synthesis routes. As the substance’s primary manufacturer, we offer direct insight into its approved downstream use in pharmaceuticals, specialty coatings, electronic materials, and polymer modification, based on customer requirements and international compliance guidelines. Each application below summarizes precise integration in industrial processes.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    This compound acts as a key fluorinated alcohol intermediate for high-value pharmaceutical synthesis, particularly during multi-step preparations of selective serotonin reuptake inhibitors and various fluorinated analogues. Chemists use it for introduction of hexafluorinated alkyl side chains to increase bioavailability and metabolic stability in API development pipelines. Industrial plants implement validated handling, strict environmental controls, and accurate metering to comply with cGMP and API impurity thresholds.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • FDA 21 CFR Parts 210, 211 (Finished Pharmaceuticals)
    • EU GMP Volume 4, Part II
    • USP–NF monograph referencing for intermediate purity

    Typical usage ratio

    • Ranges from 0.8 to 1.2 molar equivalents, depending on targeted side-chain conformation. Adjustment based on substrate conversion rate and control of by-product profiles.

    Downstream process integration

    • Reaction input during fluorination or alkylation. Used after prior heterocycle formation or structure-specific C–C bond functionalization. Charged directly to reaction vessel with in-line monitoring for alcohol presence and excess quenching.

    Final product types

    • Antidepressant APIs
    • Fluorinated bioactive intermediates
    • Potential oncology small-molecule scaffolds
    • Chiral pharmaceutical building blocks

    2. Fluorinated Polyurethane Elastomer Manufacturing

    Industrial processors leverage this alcohol in the synthesis of tailor-made fluorinated polyurethanes to enhance chemical and solvent resistance. The hexafluorinated motif reduces water absorption and improves mechanical stability under thermal cycling. QA/QC protocols monitor reagent charge during prepolymer manufacture, while engineers maintain adherence to ISO polymer material specifications.

    Industry compliance standards

    • ISO 9001:2015 (Quality Management)
    • REACH Regulation (EC) No 1907/2006 (polymer exemption guidelines)
    • ASTM D412 (physical properties of elastomers)
    • ISO 10993-5 (Cytotoxicity, when used in medical elastomers)

    Typical usage ratio

    • 5–15 wt% as a co-monomer in the polyol mix; varies based on performance requirement for hydrophobicity and flexibility.

    Downstream process integration

    • Addition following polyol pre-blending step, before isocyanate charge in continuous or batch reactor vessels. Monitored for exotherm and viscosity verification pre-casting.

    Final product types

    • Fuel system elastomeric seals
    • Oil exploration gaskets
    • Medical device housings requiring bio-inertness
    • Chemical transfer tubing

    3. High-Performance Electronic Coating Resins

    Specialty resin formulators use the compound to introduce fluorinated segments into resins for electronics coatings. It imparts dielectric stability and lowers surface energy, improving moisture exclusion and thermal cycling reliability. Production holds strict environmental monitoring, especially VOC controls, and batch traceability down to each raw charge.

    Industry compliance standards

    • IPC-4101 (Base materials for printed boards)
    • IEC 60695 (Electrical insulating materials flame requirements)
    • RoHS Directive (2011/65/EU)
    • REACH SVHC compliance, with reference to persistent organic pollutants (POP) guidance

    Typical usage ratio

    • 1–4 wt% in resin blend; ranges determined by dielectric constant targets and thickness control during dip or spray application.

    Downstream process integration

    • Direct addition to resin formulation before solvent addition. Followed by filtration and viscosity adjustment for downstream dip-coating or spin-coating of circuit assemblies.

    Final product types

    • Parylene substitute coatings
    • PCB conformal coatings
    • Semiconductor protection films
    • Flexible printed circuit substrates

    4. Fluorosurfactant Synthesis for Specialty Cleaners

    The alcohol serves as a precursor for structurally defined fluorosurfactants used in industrial cleaning systems. It provides improved surface tension reduction, vital in wafer-fabrication, laboratory glassware decontamination, and high-reliability degreasing. Process chemists maintain strict mass-balance records for every batch, applying fluorochemical synthesis best practices to minimize waste.

    Industry compliance standards

    • OECD Guidance on Polymer Definitions (Polymers of Low Concern)
    • EU Detergent Regulation (EC) No 648/2004
    • ISO 14001:2015 (environmental management systems for chemical manufacture)
    • Company-specific green chemistry protocols to restrict POP emissions

    Typical usage ratio

    • 10–25 mol% as a building block per surfactant backbone, finely tuned according to surfactant performance specification and customer cleaning requirements.

    Downstream process integration

    • Nucleophilic substitution or etherification at the synthesis step. Purified via phase separation and solvent stripping before downstream blending into formulated cleaners.

    Final product types

    • Semiconductor-grade wet cleaning agents
    • Industrial metal surface prep detergents
    • Laboratory and pharmaceutical glass cleaning solutions
    • Precision optics degreasers
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    Competitive 3,3,4,5,5,5-Hexafluoropentan-2-ol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing 3,3,4,5,5,5-Hexafluoropentan-2-ol: Practical Insight from the Manufacturer

    Understanding the Value of 3,3,4,5,5,5-Hexafluoropentan-2-ol in Today’s Industry

    Experience on the production floor has taught us a simple truth: chemicals are only as useful as the consistency and reliability they bring to the customer’s operations. Through years at the reactor vessels, we have found 3,3,4,5,5,5-Hexafluoropentan-2-ol stands out for its versatility and stability, especially for teams developing specialty pharmaceuticals, agrochemicals, or new materials under demanding conditions. As the manufacturer, all routes from quality sourcing of fluorinated raw materials to final purification run under strict monitoring. The features that make this molecule stand apart—a fully fluorinated tert-butyl end and a secondary alcohol group—deliver more than just a structure. Those features translate into concrete advantages down the line for chemists and engineers building the next generation of higher-value materials.

    Product Origin and Our Manufacturing Perspective

    Producing this compound means deep familiarity with tricky fluorination steps. In our experience, common issues with this type of molecule stem from incomplete fluorination or byproducts that hide in the mix. We tackle these pitfalls every batch, investing in top-grade reaction control and chromatography methods to make sure every drum meets strict thresholds for purity and composition. Our operators deal directly with the realities of exothermic reactions, gas handling, and vacuum transfer daily, and so our team always builds redundancies into storage and shipping for extra safety. Repeat testing and transparency on specific impurities—no matter how minor—shape every kilogram before it leaves our plant.

    Physical Properties and What They Mean for Usability

    In practical terms, 3,3,4,5,5,5-Hexafluoropentan-2-ol arrives as a colorless liquid with a distinctive, slightly ether-like aroma. The robust carbon-fluorine bonds dampen reactivity compared to regular alcohols, which lets this molecule work as a solvent or intermediate even near strong acids or bases. We have measured boiling points close to 100 degrees Celsius at atmospheric pressure, and the density lands higher than most organics—characteristics that shape safe storage and dosing systems in plants or research labs. Technicians tell us they appreciate the strong thermal stability and low vapor pressure, especially when processes require open handling or evaporation steps. With careful containment, offgassing stays minimal and workspaces remain safer.

    Choosing Our Grade: Why Purity Makes a Difference

    Many customers ask why we prioritize high purity for 3,3,4,5,5,5-Hexafluoropentan-2-ol, since some applications appear tolerant of minor contamination. From our own use in process development and quality control, even trace acid, water, or organofluorine impurities cause failures in downstream synthesis—whether through reduced yield, color formation, or unexpected byproducts. Our analytical team frequently monitors for hydrolyzable fluoride, halide traces, and residual solvents. Experience guides our in-house distillation teams to run extra fine cuts, since impurities at the part-per-thousand scale matter for pharma and electronics. Other suppliers sometimes push “technical” grades or secondary streams, but for precision downstream work we stay strict on both batch labeling and certificate transparency.

    From Our Floor: Key Applications in Real Industry

    We have watched this molecule evolve far past its niche in academic research. Our main production customers use 3,3,4,5,5,5-Hexafluoropentan-2-ol as a selective building block for fluorinated ether and ester synthesis—especially in the agrochemical and fine chemical sectors. Because of its unique reactivity, formulators harness its alcohol group for creating prodrugs or bridging sensitive intermediates, as the fluorinated tail blocks unwanted metabolic breakdown or environmental degradation. Coatings companies value the surface activity and drop-in compatibility with other fluorinated monomers. Some electronics firms use it as a surface modifier for hydrophobicity. University labs keep returning for structure-activity studies since the mixed alkyl-fluorine pattern lets them probe the effects of fluorination without resorting to harsher, less stable reagents.

    What Sets 3,3,4,5,5,5-Hexafluoropentan-2-ol Apart from Other Alcohols

    Comparisons against regular alcohols and partially fluorinated analogs show why this product grabs attention from new industry partners. The secondary alcohol group offers selective reactivity that primary alcohols miss—especially in oxidations or protection strategies. When evenly/perfectly fluorinated, the electron-withdrawing effect shields sensitive bonds from many types of breakdown. In practical use, we see our customers shift from older, less stable semifluorinated alcohols to this product due to its resistance to acid, base, and oxidation. In head-to-head pilot trials, batches built around our 3,3,4,5,5,5-Hexafluoropentan-2-ol avoid side-reactions, generating more consistent yields, especially for hydrogenolysis, etherification, and tosylation steps.

    Handling and Storage Insights from the Production Line

    Plant veterans always remind new chemists that fluorinated organics behave differently in storage and handling. For this alcohol, decades of drum-filling has proven several small changes make a big difference. Stainless steel tanks or fluoropolymer-lined vessels hold up much better than plain steel or glass, especially when months of storage are required. As a liquid, spill management with absorbents picks up nearly all visible drops, and clean-up crews find no persistent residue. In contrast to volatile fluorinated solvents, this product rarely causes pressure build-up or fume clouds, making warehouse checks simpler. We keep vapor monitoring active as a matter of practice at all valves and transfer lines, since even trace fluorinated vapors need containment. User feedback confirms that our safety measures translate to fewer shutdowns and lower maintenance compared to less stable fluorinated alcohols.

    Supporting Our Customers Beyond the Sale

    Over the years, direct conversations with formulators, production managers, and researchers have guided how we fine-tune our process and QC. Some customers ask us for modifications or compatibility studies, so we have built a culture where lab-scale batches and new purity grades launch quickly for trials. If a research group requests data on thermal or oxidative stability under atypical conditions, our technical team runs those tests in-house, often in parallel with new synthesis campaigns. These exchanges shape both our process improvements and how we document key metrics for future customers. In one case, feedback from a medical device company led our R&D to develop a drier variant with trace moisture reporting down to parts-per-million, avoiding catalysis failures downstream. Our commitment always ties back to responsible sourcing, strict compliance with international transport and storage regulations, and steady technical support long after product delivery.

    Choosing Between Our 3,3,4,5,5,5-Hexafluoropentan-2-ol and Common Alternatives

    Some customers ask whether lower-cost analogs or unrelated fluorinated alcohols make a smarter investment. In our hands, direct head-to-head trials tell the story. The fully fluorinated tert-butyl end on this molecule resists typical side reactions with acids, bases, or strong oxidants better than near neighbors. Less fluorinated alcohols or primary structures often lead to degradation or fouling in production-scale applications. As a result, purifying old-style semifluorinated alcohols costs more per reaction, offsetting any initial savings in starting material. Chemical resistance, thermal stability, and well-understood impurity profiles matter most in regulated industries. In our shop, we have stopped recommending legacy products for pharmaceutical or advanced material synthesis—instead, our teams build campaigns around the proven stability and traceability of this model.

    Environmental Considerations and Responsible Production

    Emission control and waste recovery hold special importance when handling any fluorinated product. Over years of operation, we have found stack emissions can climb if vent traps or recovery systems run out of service, so we do not cut corners here. One lesson learned: investing in scrubber upgrades for flourous exhausts pays off by passing municipal and national inspections the first time. Solvent recovery also plays a significant role. Any unrecovered stream from distillation or filter washes goes to dedicated treatment—no mixing or dilution in general plant waste. While some sites push fluorinated byproducts into third-party disposal, our team runs full incineration with tight log tracking. This keeps our site compliant and prevents environmental build-up in groundwater or landfill sites, which can cause trouble years later.

    Lessons Learned Through Scale-Up: From Kilograms to Tons

    Transitioning from lab bench to full-scale production means facing surprises. Early, small-batch runs of 3,3,4,5,5,5-Hexafluoropentan-2-ol exposed issues with heat buildup and solvent carryover that lab-scale setups don’t reveal. Investing in staged reaction monitoring and online analytics helped us spot runaway exotherms before they grew dangerous. In full-scale reactors, even small containment leaks at the valve level led to odor complaints from operators—so additional sealing, venting, and airflow kept problems away. Storage logistics also changed with volume: palletizing and drum management became part of our daily oversight. On export shipments, best practice taught us to double-check all drum seals and secondary containment, since fluorinated materials attract extra scrutiny at customs and through international shipping tracking.

    Practical Realities in End-Use Formulation

    Feedback from production chemists using our 3,3,4,5,5,5-Hexafluoropentan-2-ol helps us refine guidance for blending with other materials. We hear often that the alcohol dissolves easily in most fluorinated and non-fluorinated solvents, streamlining mixing and dosing steps in synthesis. Its moderate polarity allows it to function in polar and nonpolar systems, which widens the choice of reagents or cosolvents. Blends typically remain clear and homogeneous unless mixed at large excess with strong acids or bases, where minor precipitation can form. Earlier batches with slightly elevated residual water sometimes created haze in critical coatings applications, so we re-engineered our drying and filtration. Customers with unique viscosity or flow requirements often request custom fill volumes or packaging, which we accommodate by keeping filling runs adjustable.

    Comparisons with Other Fluorinated Building Blocks

    Standard fluorinated alcohols, such as trifluoroethanol or hexafluoroisopropanol, fall short in terms of oxidation resistance and long-term shelf stability compared to our 3,3,4,5,5,5-Hexafluoropentan-2-ol. Our own aging studies demonstrate that product from unopened drums retains color and reactivity well past eighteen months, as monitored by NMR and GC. In contrast, competitors’ less stabilized alcohols often yellow or develop an off-odor in the same window. End-users confirm that this molecular robustness improves batch-to-batch reproducibility—critical in advanced pharma and electronics chemical setups.

    Shipping Experience: Safer Delivery from Factory to Use Site

    Moving fluorinated chemicals across regions brings challenges from temperature swings, pressure cycling, and long dwell times in transit. From the dispatcher’s view: well-packed, steel-lined drums outlast plastic or composite containers. Tight head space and nitrogen blanketing prevent oxidation or off-gassing during long storage. Each drum carries QR-coded batch traceability, so that upon receipt, customers can quickly cross-check documentation with their regulatory team. Reports from the field mention that our drums arrive clean, without the film or grease residues seen elsewhere. Damage in transit rarely occurs, but our support team always follows up on any claim, and all relevant shipping documents get archived for audit.

    Customer Feedback and New Use Cases

    Some of the most promising advances with 3,3,4,5,5,5-Hexafluoropentan-2-ol emerged from joint projects with customers. In one recent project, a pilot plant for medical imaging built new fluorinated contrast agents with higher signal efficiency, owing to the selective reactivity of this alcohol. Agricultural tech innovators have tested new antifungal treatments built on its scaffold, reporting less environmental breakdown and better field persistence. Electronics chemists explored hydrophobization of sensor arrays using our compound, exploiting its fluorous tail for durability under repeated cycling. Each feedback round brings new insight. Problems such as reactivity drift in older grade materials prompted us to recheck storage and develop tamper-evident packaging.

    Quality Control: Beyond the Usual Hurdles

    Each batch produced places our reputation on the line. To ensure high standards, every lot goes through a battery of tests—gas chromatography, moisture determination, residual acidity, and screening for trace organics. Sourcing pure fluorinated starting materials is harder and costlier than for common organics, but the payoff comes in fewer customer complaints and better reliability for regulated applications. Advanced labs ask us for certificates showing NMR, IR, and select impurity profiles, and we answer with scans and data as needed. Transparent reporting backs up every shipment, since regulatory demands and in-house safety rules only get stricter. In some cases, customers contract us for custom impurity or stability studies, helping them validate their R&D work before moving to production.

    Continuous Improvement: Building on Hands-On Experience

    Nobody in the trade can afford to stand still, least of all those handling specialty fluorinated intermediates. Real-world challenges—unexpected precipitation, viscosity swings, crystallization at low temperatures—drive our process updates. Even small changes in reaction temperature or solvent ratio at plant scale deliver measurable improvements in purity and performance. Our R&D maintains direct communication with end-users, so minor defects or off-spec results come straight back to the production crew. To stay ahead of regulatory changes, we reevaluate safety, waste, and emissions practices at least twice a year, and pilot new documentation protocols to boost confidence for regulated customers. Lean manufacturing, small campaigns, and faster product turnover keep our stock fresh and feedback cycles short.

    Building Partnerships, Not Just Supplying a Commodity

    Compared to the bigger catalog shops, the hands-on production role means we measure success not in tons moved, but in returning customers and waste cut down at every step. Many firms try to compete on price or push generic substitutes, yet our long-term customers recognize the real advantages of hands-on quality management, open technical support, and supply chain transparency. We value every conversation with application engineers, operators, and safety staff because they drive improvements—not just in quality, but in safety and sustainability. Over time, this approach yields new collaborations, custom blend requests, and the mutual trust that sustains high-value chemical supply.

    The Road Ahead: Meeting Evolving Demands

    As markets shift toward greener chemistries and stricter regulation, our team invests heavily in both process tightening and documentation. Customers want reliable performance and clean supply chains. We deliver that by focusing on best-in-class purity, traceability, and responsive support, led by direct factory experience. Our approach to manufacturing and customer engagement adapts with changing market and regulatory needs. From raw material procurement to batch record keeping and custom packaging, each step runs only as tightly as the people behind it. That’s how 3,3,4,5,5,5-Hexafluoropentan-2-ol remains not just a specialty molecule, but a vital building block matched to today’s toughest industrial demands.