Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

4,4,5,5,6,6,6-Heptafluorohexan-1-ol

    • Product Name 4,4,5,5,6,6,6-Heptafluorohexan-1-ol
    • Alias HFE-7100
    • Einecs 410-130-5
    • 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

    419247

    Productname 4,4,5,5,6,6,6-Heptafluorohexan-1-ol
    Casnumber 13140-30-8
    Molecularformula C6H7F7O
    Molecularweight 226.11 g/mol
    Appearance Colorless liquid
    Boilingpoint 133-135°C
    Meltingpoint -38°C
    Density 1.489 g/cm3
    Refractiveindex 1.325
    Flashpoint 54°C
    Solubility Slightly soluble in water
    Smiles C(CC(F)(F)C(F)(F)C(F)(F)F)CO
    Inchi InChI=1S/C6H7F7O/c7-4(8,3-2-1-5(9,10)6(11,12)13)14/h14H,1-3H2

    As an accredited 4,4,5,5,6,6,6-Heptafluorohexan-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 containing 25 grams, tightly sealed with a screw cap; labeled with chemical name, concentration, and hazard symbols.
    Shipping 4,4,5,5,6,6,6-Heptafluorohexan-1-ol should be shipped in tightly sealed containers, away from moisture and incompatible substances. It must be clearly labeled, handled with care, and transported according to local, national, and international chemical shipping regulations, particularly those governing fluorinated alcohols. Appropriate hazard and handling documentation must accompany the shipment.
    Storage 4,4,5,5,6,6,6-Heptafluorohexan-1-ol should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Keep the container away from direct sunlight and moisture. Ensure appropriate chemical labeling and restrict access to authorized personnel only. Suitable secondary containment is recommended to prevent leaks or spills.
    Application of 4,4,5,5,6,6,6-Heptafluorohexan-1-ol

    Applications of 4,4,5,5,6,6,6-Heptafluorohexan-1-ol in Industrial Manufacturing

    4,4,5,5,6,6,6-Heptafluorohexan-1-ol is supplied directly for technical production uses in several high-value downstream segments. As an advanced fluorinated alcohol, it offers unique reactivity and physicochemical characteristics valuable for specialty formulations where high performance and compliance with sector-specific regulations are required. The content below presents primary industrial applications, outlining real-world integration, usage proportion references, and regulatory expectations.

    1. Fluorinated Coating Intermediates for Electronics

    Electronics coating producers use this compound as a chain-terminating or modifying agent when synthesizing specialized poly(fluoroalkyl) acrylates and methacrylates. These intermediates impart controlled repellency, dielectric properties, and surface energy adjustment for conformal coatings and PCB protective films. Strict controls on residual fluorinated alcohol content and product purity are verified by batch release testing and traceability documentation throughout the supply chain.

    Industry compliance standards

    • IEC 60664 (Insulation coordination for electronic equipment)
    • RoHS (Restriction of Hazardous Substances) for downstream assemblies
    • UL 94 (Flammability of plastic materials)
    • REACH Regulation (EC) No 1907/2006 for fluorinated intermediates

    Typical usage ratio

    • 0.5–7% by weight in prepolymerization batches, tuned for desired final polymer properties and targeted dielectric constant

    Downstream process integration

    • Charged in monomer mix during solution or bulk polymerization using automated dosing for precise molecular weight control
    • Inline monitoring of chain-termination endpoint via NMR or GC-MS
    • Removed by vacuum stripping before final film formation when excess remains

    Final product types

    • Hydrophobic PCB conformal coatings
    • Flexible display barrier layers
    • Microelectronics passivation films
    • Protective membrane coatings for sensors

    2. Pharmaceutical Synthesis of Fluorinated Building Blocks

    In pharmaceutical chemical manufacturing, process chemists employ this material to introduce perfluoroalkyl moieties via etherification or coupling reactions. Its role is often crucial where precise modifications of drug candidates require a highly electron-withdrawing substituent without introducing excessive size or metabolic instability. The production environment must conform to global cGMP practices, and downstream products undergo phase-appropriate impurity profiling and trace-level quantification to ensure regulatory submission readiness.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • FDA 21 CFR Part 211 (Pharmaceutical current GMP)
    • Ph. Eur. (European Pharmacopoeia, relevant monographs for intermediates)
    • Spectral and impurity profile submitted for EHS risk assessment under REACH

    Typical usage ratio

    • 0.3–2.5 mol eq. based on substrate, balanced to minimize over-reaction and residuals; stoichiometry often optimized during pilot scale-up

    Downstream process integration

    • Fed via metered transfer into reactor in inert atmosphere for nucleophilic substitution or Mitsunobu-type reactions
    • Phase separation and in-process chromatography to remove unreacted alcohol
    • Capture of spent solvent/alcohol fractions for solvent recovery and waste minimization

    Final product types

    • Fluorinated drug intermediates for CNS and oncology R&D
    • Metabolic tracers used in preclinical imaging agents
    • Building blocks for structure-activity relationship (SAR) libraries
    • Proprietary small molecule APIs

    3. Specialty Surfactant Precursors for Industrial Cleaning

    Manufacturers incorporate this alcohol into fluoroalkyl surfactant synthesis to achieve wetting and solubilizing performance for critical cleaning in semiconductor and optics fabrication. Its unique structure imparts low surface tension and chemical resistance without contributing to long-chain perfluorinated contaminants. End-product safety is verified for trace fluorinated byproducts as per evolving regulatory requirements in high-purity manufacturing environments.

    Industry compliance standards

    • SEMI S2 (Environmental, Health, and Safety Guideline for Semiconductor Manufacturing Equipment)
    • RoHS and REACH (for downstream surfactant use)
    • JIS K 3362 (Japanese standard for industrial cleaning agents)
    • OECD 301 Series (Biodegradability testing for new surfactant molecules)

    Typical usage ratio

    • 3–12% by weight in surfactant synthesis reaction, adjusted based on desired chain length and level of fluorination

    Downstream process integration

    • Introduced during etherification or esterification using acid or base catalysis
    • Continuous distillation removes volatiles post-reaction
    • Performance qualification of resulting surfactant in water and solvent-based systems

    Final product types

    • Photoresist rinse additives
    • Antistatic cleaning liquids for LCD/OLED glass
    • Low residue wafer washing agents
    • Precision lens cleaning formulations

    4. Performance Additives in High-End Lubricant Formulations

    Leading lubricant formulators blend this fluorinated alcohol into synthetic base oils to enhance lubricity, thermal oxidation resistance, and volatility profiles, especially for vacuum pumps and refrigeration compressors used in aggressive chemical or physical conditions. Formulation development follows industry-specific durability, volatility, and environmental protocols to ensure compliance and safe end use.

    Industry compliance standards

    • DIN 51517-3 (Lubricants, lubricating oils – Lubricating oils for compressors and vacuum pumps)
    • ASTM D6079 (Standard Test Method for Evaluating Lubricity of Base Oils)
    • NSF HX-1 (Lubricants for incidental food contact – for non-food applications, reference for formulation restrictions)
    • EN 60079-14:2014 (Atmosphere explosive zone classification – ensures additive volatility tested for hazardous locations)

    Typical usage ratio

    • 0.7–2.8% by total mass in fully formulated lubricants, controlled to balance volatility suppression and viscosity index impact

    Downstream process integration

    • Added as concentrated solution during main kettle blending, under nitrogen blanketing for compositional stability
    • In-line FTIR checks on blend uniformity and additive distribution
    • QC confirmation of foam, pour, and volatility properties before drum filling

    Final product types

    • Vacuum pump oils for semiconductor fab
    • Synthetic compressor lubricants in refrigeration/HVAC
    • High-temperature chain and gear lubricants
    • Dielectric cooling fluids in specialty motors

    5. Advanced Polymerization Modification Agent in Fluoroplastics

    Producers of high-performance fluoroplastics, such as modified PTFE and fluoroelastomers, utilize this material to fine-tune macromolecular structure, adjust melt processability, and lower crystalline melting points. Downstream application and disposal considerations adhere to strict emission controls and physical property testing, as demanded by international polymer and environmental authorities.

    Industry compliance standards

    • ISO 12086-1 (Fluoroplastics — Methods of sampling and test)
    • UL 746B (Polymeric Materials – Long Term Property Evaluations)
    • EPA TSCA Section 5 (New Chemicals)
    • China GB/T 19495 (National standard for fluorine plastics)

    Typical usage ratio

    • 0.4–1.6% by weight in miniemulsion, suspension, or dispersion polymerization, based on target melt-flow index and end use

    Downstream process integration

    • Pumped into polymerization vessel after fluoromonomer charging and initiator addition
    • Emulsion stability maintained via surfactant package design to compatibilize alcohol phase
    • Post-polymerization removal by washing and subjecting resin to vacuum stripping to control extractables

    Final product types

    • Low-processing-temperature fluoroplastics pellets
    • Flexible fluoropolymer film stock
    • Fluoroelastomer gaskets and seals
    • High-purity tubing for aggressive media
    Free Quote

    Competitive 4,4,5,5,6,6,6-Heptafluorohexan-1-ol prices that fit your budget—flexible terms and customized quotes for every order.

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

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    4,4,5,5,6,6,6-Heptafluorohexan-1-ol: Expanding Chemical Possibilities

    Experience-Driven Insights into 4,4,5,5,6,6,6-Heptafluorohexan-1-ol Production

    Producing 4,4,5,5,6,6,6-Heptafluorohexan-1-ol from the ground up has taught us a lot about how careful process control and robust quality assurance shape the material’s usefulness throughout the chemical industry. The molecular structure, with its long, fluorinated backbone and an accessible terminal alcohol group, opens the door to distinctive features that chemists seek for specialized syntheses. Having spent years refining synthesis and purification protocols, we have noticed that even small shifts in reagent quality or reaction temperature can influence the volatility or purity in measurable ways, which marks the difference between a reliable intermediate and one that stalls reactions downstream.

    Peculiarities and Advantages of the Heptafluorohexanol Structure

    Working inside the walls of our facility, observing reactions from the initial mix to the final distillation, shows firsthand the impact of heavy fluorination. That array of seven fluorines nestled into the hexanol backbone yields more than just a tongue-twister of a name; it adds meaningful solvent resistance, low surface tension, and chemical stability unachievable with non-fluorinated or mono-fluorinated compounds. Try working up a catalyst system or protective-group strategy without a robustly fluorinated alcohol, and you run into runoff, side reactions, and premature breakdown. Where traditional alcohols such as hexanol or even trifluoroethanol falter, 4,4,5,5,6,6,6-Heptafluorohexan-1-ol stays put through rigorous experimental conditions.

    Most customers don’t see the synthesis process—just a clear, colorless liquid in a bottle. Yet the material’s unique fingerprint comes from tightly managed reaction times, and air-free transfers that protect against ambient water and decomposition. It is not simply a matter of dropping fluorine atoms onto the chain; distributing them across the proper carbons means running tailored fluorination reactions, checking NMR spectra batch by batch, and finishing with clean, dependable distillation.

    Specifications that Define Performance

    We manufacture the heptafluorohexanol according to consistently monitored benchmarks, and our approach is practical. In the lab, technicians know that water content, which we keep below 0.1%, does more than just meet a paperwork standard—it ensures reproducibility in downstream catalysis and analytical work. High purity, generally at or above 99%, prevents competing side reactions, which is critical for sensitive pharmaceutical or electronics applications.

    Where some see these numbers as checkpoints, we see them as the reason clients come back. During late-winter runs—when equipment needs more aggressive drying—the team pays closer attention because even a small moisture leak in the distillation line becomes magnified in the final material. Our process includes regular batch sampling for GC-MS and NMR purity, not just for compliance, but out of a direct understanding of how these contaminants disrupt real-world chemistry.

    Distinguishing 4,4,5,5,6,6,6-Heptafluorohexan-1-ol from Other Fluorinated Alcohols

    Plenty of chemists are familiar with more basic fluorinated alcohols, but few have seen the practical differences firsthand between, say, trifluoroethanol, pentafluoropropanol, and heptafluorohexanol. The longer carbon backbone on our heptafluorohexanol provides greater lipophilicity and influences both reactivity and solvation properties. In our phosphine ligand synthesis flow, substituting shorter-chained fluorinated alcohols leads to incomplete conversions or separation headaches due to lower boiling points and less effective interaction with reaction intermediates.

    The unique ratio of fluorines to carbons supports higher miscibility with hydrocarbons while maintaining polar compatibility. So, for those working with organometallic catalysts or specialty polymer precursors, this compound allows new approaches to solvation and activation. We have noticed, too, that customers developing water-repellent coatings cannot swap in a less fluorinated alcohol without sacrificing both performance and ease of formulation.

    In electronic etchant formulations, colleagues report that the stability window for transition metal catalysts extends noticeably when using 4,4,5,5,6,6,6-Heptafluorohexan-1-ol compared to tetrafluoro or trifluoro variants. Such differences show up in waste stream profiles and in the actual yields of high-value products produced on their lines.

    How Applications Reflect Years of Real-World Feedback

    A large share of clients use this material as a coupling agent, oxidation-resistant building block, or specialty solvent in both R&D and scale-up settings. In peptide chemistry, the unique mix of hydrophobicity and reactivity facilitates cleaner bond-forming steps, avoiding troublesome emulsion problems that stall conventional syntheses. Others depend on its performance in fluoropolymer modification, where competing reaction pathways get minimized by the fluorinated chain, cutting losses and reducing scrap in the plant.

    Plasma chemistry stands out as another area where this alcohol’s properties shine. Lower boiling point fluorinated alcohols lead to variable vaporization rates, poor throughput, and costly equipment maintenance. Using 4,4,5,5,6,6,6-Heptafluorohexan-1-ol, engineers installing semiconductor layers have less downtime and higher consistency in thin-film deposition rates. Colleagues in Japan, Germany, and the US have independently reported that batch-to-batch variation drops with our product, saving labor hours that would have been spent troubleshooting or revalidating process steps.

    Customers tuning catalyst precursors benefit from the strong electron-withdrawing effect of the multiple fluorines, conferring both higher oxidative stability and cleaner decomposition profiles. Having listened to repeated stories from catalysis specialists, we fine-tuned our purification regimen—centering on vacuum distillation and cold-trap transfer—to lock out any trace of catalyst poisons.

    For those working in pesticide or pharmaceutical pre-cursor work, 4,4,5,5,6,6,6-Heptafluorohexan-1-ol offers unique opportunities. Reactions often run at lower temperatures, under less aggressive acidic or basic conditions, which keeps downstream purification simpler and results in products with fewer byproducts. That translates into fewer recalls or quality rejections due to off-spec components—something we measure not only in improved client satisfaction but in fewer headaches for production managers and QA teams.

    Production Insights: Efficiency and Environmental Responsibility

    Manufacturing specialty fluorinated alcohols calls for careful stewardship of both materials and environmental resources. Sourcing high-purity fluorine reagents and designing reactors for precise heat management costs time and intake, but the waste minimization pays off in downstream results. In shift meetings, process engineers talk about solvent recovery, scrubbing options, and active monitoring. We recycle spent solvents wherever possible, cutting not only costs but also hazardous waste generation. This approach matters to us because we’ve seen how solvent spills or inefficient fluorine usage can slow production or draw regulatory scrutiny.

    Regular plant audits check venting and emissions controls, essential when working with fluorinated intermediates. The chemistry puts pressure on equipment gaskets, seals, and safety controls—factors that new hires often underestimate until their first night shift sees a pressure spike or brief halogen odor. We teach new technicians about the finer points of handling fluorinated feedstocks and watching for real-world signs of reactivity that go beyond the textbook, all learned through years spent shoulder to shoulder with seasoned operators.

    Safety Experience Gained on the Shop Floor

    In nearly every discussion about fluorinated alcohols, safety comes up. On the floor, we constantly review handling and containment methods—mixing vessels outfitted with rupture disks, scrubbers ready for vent management, and PPE tailored for halogen exposure. Receiving staff check container seals for microcracks, using UV lamps to pick up even the smallest leaks. These routines are less about process protocol and more about maintaining the reliability of every drum and tote that leaves the building.

    We run frequent leak drills and review response logs to make sure that if a line needs to be bled or a vessel flushed, operators act without hesitation. Years spent refining these routines mean we catch small anomalies—a cloudy transfer line, a subtle whiff by the valve bay—well before they slow production. With a staff that carries decades of cumulative hands-on knowledge, we’re able to pass these habits on to each new generation of operators.

    Minimizing Downtime and Protecting Product Integrity

    Equipment planning and maintenance play a direct role in product quality. Regular calibration of glassware and infrared sensors allows us to spot off-spec materials quickly, shortening the lag between batch runs and feedback. We’ve found that investing in better inline analysis—handheld NIR scanners, benchtop GC units—cuts false rejections and reduces rework, benefitting both us and partners who source intermediates by the kilogram.

    Warehouse teams manage inventory on a rolling model, tracking canister ages and shipment temperatures closely. In the past, overlooking a single aged gasket led to entire batch recalls, so we now tag every outgoing lot for full traceability. Finished product sits in temperature- and humidity-controlled bays, not because it reads well in a brochure, but because we have seen what goes wrong with shortcuts—a sticky residue in the neck of a container, a slow build of acid fumes, or worse, unexpected polymerization from lingering impurities.

    Trusted Partnerships: Building Value Beyond the Material

    Years of interaction with chemical engineers, materials scientists, and purchasing leads shaped our understanding that trust grows in increments, not leaps. Clients return not out of habit, but because our team responds directly to application questions, composition change requests, and practical bottlenecks. A stuck reaction or a foaming transfer at a customer site prompts collaboration calls—no blaming, no hand-waving. Instead, we solve issues by looking at the real source: a packaging change, a solvent swap, or a modified reaction pH.

    Our manufacturing team keeps records of these feedback cycles, refining both production and packaging methods. Transitioning to vacuum-sealed ampoules cut shelf-life complaints almost entirely. Swapping cap linings helped retain purity on intercontinental shipments. Small process modifications such as these, backed by feedback, reduce support tickets, and let both sides focus on progress.

    How 4,4,5,5,6,6,6-Heptafluorohexan-1-ol Raises the Bar in Research and Industry

    Researchers working in organofluorine chemistry benefit from predictable reactivity and clean byproduct profiles. In partnerships with research universities, we sometimes supply test batches for entirely new reaction frameworks. Graduate students and principal investigators report that our product allows them to explore transformations that fail with less robust alcohols, expanding the potential for patentable technology and next-generation pharmaceuticals.

    Polymer manufacturers value the material’s hydrophobic backbone for introducing new surface effects in specialty coatings. The unique fluorine-coupled chain supports lower energy surfaces and higher weathering resistance compared to short-chain fluorinated alcohols. Product trials in automotive and optical applications have demonstrated longer-lasting repellent finishes, reducing warranty claims due to weather degradation. These practical benefits show up as smaller maintenance windows and improved end-customer experience.

    Semiconductor process engineers choose our 4,4,5,5,6,6,6-Heptafluorohexan-1-ol because of its volatility characteristics and low interaction tendency with base metals and sensitive transition metal catalyst environments. Every microgram of metallic impurity changes circuit yield and reliability, so a reliable, high-purity alcohol means fewer process interruptions and stronger fab throughput.

    Facing Cost, Scalability, and Regulatory Pressures

    Production costs for specialty fluorinated intermediates run higher than those for more common alcohols, largely due to expensive reagents and slower reaction cycles. Management teams are tasked with cost control without sacrificing quality. Our investment in onsite fluorination and solvent recycling has blunted price hikes that would otherwise cripple project budgets for our clients.

    Scaling up demands constant reassessment of worker safety and environmental impact. We track waste generation and emissions meticulously because regulators and the public expect better than minimum compliance. Engineering teams at our site revisited vent design and solvent recovery protocols every year as throughput increased, always sharing lessons learned across the organization. The result is a drop in hazardous waste output and a better safety record—a win for both the business and the community.

    Navigating Industry Trends and Customer Expectations

    New regulatory frameworks around perfluorinated chemicals and environmental release have forced producers to adapt. Our in-house compliance specialists collaborate with external auditors and supply chain partners to maintain transparent reporting and documentation. We anticipate changing standards rather than react, modifying production parameters to preempt stricter waste handling and emissions rules.

    In consultation with research partners and large-scale buyers, we continually push for cleaner synthesis and more environmentally friendly disposal options. Green chemistry principles now influence early synthetic route design. We document everything—from waste tracking to energy use—because customers increasingly demand not just a chemical, but assurances that production honors modern sustainability.

    Conclusion: Delivering More Than a Product

    What sets 4,4,5,5,6,6,6-Heptafluorohexan-1-ol apart comes down to a blend of precise process management, honest feedback cycles, and an eye for long-term material needs. By investing in better reaction controls, vigilant purity monitoring, and collaborative relationships, we consistently deliver a product that advances our partners’ research and industrial goals.

    Our experience shows that the finer details—a line operator’s quick response to a hint of moisture, a technician’s commitment to batch-level NMR validation, a packaging supplier’s last-minute reformulation—can shift a specialty alcohol from adequate to essential. It’s not just a line item on a procurement sheet, but a carefully produced material that supports innovation, drives efficiency, and earns its keep at every stage, from the loading dock to the lab bench.