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Octafluoroamyl Alcohol

    • Product Name Octafluoroamyl Alcohol
    • Alias 1H,1H,5H-Octafluoropentan-1-ol
    • Einecs 206-203-0
    • 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

    187886

    Chemical Name Octafluoroamyl Alcohol
    Cas Number 370-58-1
    Molecular Formula C5H2F8O
    Molar Mass 242.06 g/mol
    Appearance Colorless liquid
    Boiling Point 91-92°C
    Melting Point -46°C
    Density 1.675 g/cm3 at 25°C
    Solubility In Water Insoluble
    Refractive Index 1.294 at 20°C
    Flash Point None (nonflammable)
    Vapor Pressure 45 mmHg at 25°C

    As an accredited Octafluoroamyl Alcohol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Octafluoroamyl Alcohol is supplied in a 100 mL amber glass bottle, securely sealed with a PTFE-lined cap and labelled for safety.
    Shipping Octafluoroamyl Alcohol is shipped as a hazardous chemical, typically in tightly sealed, corrosion-resistant containers to prevent leakage and degradation. Shipping must comply with relevant regulations, including labeling and documentation for flammable liquids or toxic substances. It should be transported via approved carriers, with appropriate handling to avoid exposure, fire, or environmental contamination.
    Storage Octafluoroamyl Alcohol should be stored in tightly closed containers, away from moisture and incompatible substances such as strong acids and bases. Keep it in a cool, dry, well-ventilated area, protected from direct sunlight and sources of ignition. Use containers made of materials compatible with fluorinated alcohols, and clearly label storage areas and containers to prevent accidental misuse or exposure.
    Application of Octafluoroamyl Alcohol

    Applications of Octafluoroamyl Alcohol in Industrial Manufacturing

    Octafluoroamyl Alcohol serves as a specialty intermediate in several high-value manufacturing processes, particularly within high-performance fluorochemical, electronics, and specialty polymer sectors. As direct manufacturers, we ensure consistent specification control and full traceability to industrial end-users.

    1. Fluorinated Surfactant Synthesis for Advanced Coatings

    This material acts as a precursor for the synthesis of fluorinated surfactants used in specialty coatings for electronics, aerospace, and automotive substrates. The unique C5F8 backbone delivers superior repellency properties and chemical resistance, essential for applications such as anti-graffiti and anti-fingerprint coatings. Our clients integrate this intermediate via telomerization routes and direct alkoxylation to create fluorinated polyether and acrylate surfactants.

    Industry compliance standards

    • REACH Registration (EC 1907/2006) for fluorosurfactants above 1 t/y
    • US EPA TSCA for perfluorinated compound intermediates
    • ASTM D6578 for stain and soil resistance testing on coated substrates
    • ISO 9001:2015 certified manufacturing and supply chain documentation

    Typical usage ratio

    • The alcohol typically constitutes 5–30% of the total monomer feed, depending on targeted surface energy and fluorine content in the final surfactant structure.
    • Formulators adjust within this window to achieve desired coating repellency without exceeding regulatory fluorine limits.

    Downstream process integration

    • Feed directly into alkoxylation or telomerization reactions during surfactant prepolymer synthesis
    • Used in closed-reactor systems with controlled temperature and pressure
    • Supported by in-line GC and NMR analysis for conversion control
    • QC sampling performed before final polymerization or acrylate functionalization steps

    Final product types

    • Water- and oil-repellent polyurethane, epoxy, and acrylic coatings
    • Anti-fingerprint and non-stick industrial paints
    • Specialty electronic device coatings for PCBs and display glass
    • Telecom cable jacketing and anti-corrosive protective films

    2. Electronic-Grade Fluorinated Solvent Manufacture

    In semiconductor device fabrication, manufacturers utilize this alcohol as a key intermediate in the production of ultra-pure fluorinated solvents and cleaning agents. Its high chemical stability and low surface tension enable removal of sub-micron contaminants. Our facilities enable strict batch segregation and high vacuum distillation to support electronics customers’ requirements for particles, metals, and moisture control.

    Industry compliance standards

    • SEMI S2 and SEMI C93 safety and purity guidelines for wet cleaning solvents
    • IEC 61340-5-1 for electrostatic discharge-safe process fluids
    • RoHS (2011/65/EU) compliance for electronic chemical substances
    • Internal QC verification against IEST-STD-CC1246E cleanliness levels

    Typical usage ratio

    • Intermediate introduced at 10–50% of total reactant mass in fluorochemical conversion
    • Optimized per residue removal capacity and compatibility with photoresist process windows

    Downstream process integration

    • Added during fluorosolvent precursor synthesis via nucleophilic substitution or hydride abstraction
    • Processes supported by in-line conductometric and moisture analysis (Karl Fischer)
    • Batched for high-purity distillation; every lot tested below 1 ppm ionic impurities
    • Integration data passed to semiconductor OEMs for traceability

    Final product types

    • Ultra-high purity photoresist strippers
    • Microelectronic wet process cleaning fluids
    • Semiconductor wafer rinse and etch agents
    • Hard disk substrate and photomask wet cleans

    3. Specialty Polymer Monomer Feedstock

    Downstream producers use this raw material as a monomer or co-monomer feedstock for synthesis of fluorinated polymers and copolymers, including fluoroacrylates and fluoroalkyl vinyl ethers. These specialty polymers deliver non-wetting, low-friction, and dielectric properties for use in engineering plastics, wire insulation, and microfluidic device channels. Our intermediate feeds into custom polymerization reactors where precise molecular weight and fluorine incorporation are required.

    Industry compliance standards

    • FDA 21 CFR 177.1380 for polymer food-contact applications (where permitted)
    • ISO 10993-18 for extractables/leachables in medical-grade polymers
    • UL 94 for flame resistance of polymeric materials
    • Clients request full batch-specific Certificate of Analysis and traceability

    Typical usage ratio

    • 0.5–10 mol% of total monomer load in polymerization batch
    • Ratio chosen according to dielectric constant, mechanical, and processing requirements

    Downstream process integration

    • Direct monomer feed after pre-drying and inhibitor removal steps
    • Polymerization conducted in oxygen-reduced atmosphere to prevent side-reactions
    • Inline GPC and FTIR used for QC during chain growth
    • Product washed and pelletized before final analytical release

    Final product types

    • Low-friction thermoplastic compounds
    • High-purity fluoropolymer films and tubes
    • Microfluidic chip channels and valves
    • Wire/cable insulation with enhanced dielectric properties

    4. Chemical Intermediate for Agrochemical Synthesis

    This compound serves as an advanced building block in the synthesis of select fluorinated agrochemical active ingredients. The unique molecular structure contributes metabolic stability and environmental persistence needed for modern crop protection formulations. Our facility accommodates GMP-relevant isolation and in-process controls for strictly regulated downstream actives manufacture.

    Industry compliance standards

    • OECD Guidelines for Testing of Chemicals (active ingredient registration)
    • EU Regulation (EC) No 1107/2009 on plant protection product approval
    • ISO 17025 accredited analytical validation for impurity and residue testing
    • Traceability per China GB 2763 Maximum Residue Limits (MRLs) standards

    Typical usage ratio

    • Typically 1–15% mole basis in active ingredient-side chain fluorination steps
    • Ratio tuned to regulatory thresholds for total fluorine in final pesticide

    Downstream process integration

    • Intermediate charged into continuous-flow or batch reactors for stepwise fluorination or carbonylation
    • Monitored by HPLC and GC-MS for purity and conversion yield
    • Downstream hydrolization or esterification as dictated by active’s synthetic route
    • Segregated storage and shipment for regulated chemical management

    Final product types

    • Fluorinated herbicide and fungicide active ingredients
    • Protected intermediate compounds for further agrochemical synthesis
    • Fluorine-containing crop protection formulations
    • Precursor blocks for new generation insecticides

    5. Performance Additive in Industrial Lubricant Formulation

    This intermediate is incorporated as a performance modifier during blending of high-end fluorinated lubricants and greases, targeting extreme chemical and thermal environments. The alcohol’s presence imparts low volatility, oxidative resistance, and hydrolytic stability required in lubricants used for aerospace bearings, vacuum pumps, and critical control valves. Integration involves precision metering into base fluids under nitrogen to prevent moisture uptake.

    Industry compliance standards

    • NATO A-A-59441 and MIL-PRF-83282 for aviation and defense lubricants
    • ASTM D2983 for low-temperature performance evaluation
    • ASTM D4463 for additive compatibility studies
    • Quality control following ISO 21469 for risk assessment in incidental food-contact scenarios

    Typical usage ratio

    • Added at 1–7% by weight to base lubricant or grease formulation
    • Formulations may vary depending on end-use viscosity and volatility targets

    Downstream process integration

    • Additive blended during secondary homogenization under inert gas
    • Process thermal-monitored to maintain fluorochemical stability
    • QC checks for water ppm and fluorocarbon consistency before final packaging
    • Documentation provided for aerospace and industrial customers as standard

    Final product types

    • Specialty perfluorinated greases for high-vacuum pumps
    • Aerospace actuator and valve lubricants
    • Chemical processing pump and seal oils
    • High-temperature chain lubricants for electronics ovens
    Free Quote

    Competitive Octafluoroamyl Alcohol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing Octafluoroamyl Alcohol: A Manufacturer’s Perspective

    A Closer Look at Octafluoroamyl Alcohol

    For over a decade, our facilities have produced Octafluoroamyl Alcohol with a focus on purity and consistency. We approach every batch with strict process control, informed by years handling challenging organofluorine compounds. Octafluoroamyl Alcohol, with the chemical formula C5H3F8O, serves as a specialty alcohol for applications where conventional alcohols show limitations—primarily in surface treatment, advanced materials, and specialty synthesis. Experience has proven that the properties of this compound do not simply come down to the presence of a fluoroalkyl group. Instead, it delivers a suite of behavioral traits that directly result from the uniform distribution of its fluorine atoms along the alkyl chain.

    We have found over years of scale-up that true reproducibility in Octafluoroamyl Alcohol requires diligent handling at every stage. Not only must the feedstock achieve high levels of fluorination, but traces of side products will impact both solubility and eventual performance. After refining our process routes—including direct fluorination and electrochemical methods—we consistently turn out product with a purity exceeding 98% and moisture content below 0.05%. Our analytical chemists monitor each lot, focusing on GC-MS and NMR signatures that unmistakably characterize this molecular structure.

    Physical and Chemical Characteristics

    Octafluoroamyl Alcohol appears as a clear, colorless liquid at room temperature, with a sharp, distinctive odor. Compared to traditional non-fluorinated alcohols, its boiling point shows a marked difference due to fluorine’s high electronegativity and the way the molecule resists both oxidation and reduction. In direct application, this substance boasts remarkable hydrophobicity alongside chemical resistance—properties tightly linked to the perfluorinated structure. Lab technicians observe how drops bead on glassware and resist mixing, making clean-up and containment critical for daily operations.

    Handling this alcohol reveals a different set of safety precautions than common solvents. It resists most acids, bases, and oxidizers, with negligible reactivity under ambient conditions. Routine exposure testing confirms it volatilizes at a moderate rate; technicians still rely on ventilated hoods for all routine transfers. The product’s density—noticeably higher than non-fluorinated analogs—imparts a unique tactile sense in each pour, a factor many process engineers mention.

    Use Cases: Where Octafluoroamyl Alcohol Excels

    Customers in the electronics industry value the alcohol for its role as a surface modifier. Printed circuit boards and sensors equipped for harsh field conditions depend on coatings that shed water and contaminants. Our product integrates seamlessly in these applications, either as a direct treatment or as a starting point for further chemical derivatization. Our R&D team worked closely with clients designing next-generation fluorinated surfactants, custom-tailoring application rates and solvent blends to meet specialized procedures.

    Octafluoroamyl Alcohol also factors into the formulation of advanced lubricants and inert functional fluids. The ability to remain chemically inert under both high pressure and high temperature pushes performance boundaries in semiconductor manufacturing and aerospace systems. We field inquiries from engineers struggling with lubricity and corrosion in harsh settings, and find that incorporating this alcohol frequently extends maintenance intervals, saving time and cost downstream.

    In the pharmaceutical and agrochemical sectors, Octafluoroamyl Alcohol finds use as a valuable intermediate. Synthetic chemists point out that the electron-withdrawing effect from the fluorine atoms can dramatically shift reactivity in cross-coupling and radical reactions. Our years of experience with post-treatment purification ensure that the final intermediates stay free from metallic and halide impurities, cutting out costly remediation steps for downstream partners. Across these varied applications, we support custom lot sizes and bespoke packaging, aligning our production schedule with the demands of pilot programs as well as full-scale contract manufacturing.

    Differences From Other Fluorinated and Non-Fluorinated Alcohols

    Production teams often discuss how Octafluoroamyl Alcohol differs from widely available short-chain fluoroalcohols such as trifluoroethanol or pentafluoropropanol. Most noticeable, the increase in fluorination brings not just chemical resistance, but fundamentally altered interactions with polymers, resins, and metals. Our chemical engineers note that compatibility tests reveal this alcohol to outperform lower-fluorinated options on both hydrophobic surfaces and in scenarios where compatibility with complex fluoropolymers matters.

    Customers used to working with non-fluorinated alcohols, including n-pentanol or isoamyl alcohol, quickly discover the difference in volatility, solubility, and resistance to biological degradation. Octafluoroamyl Alcohol’s straightforward linear chain, saturated with fluorine, gives it lower miscibility with polar solvents while enhancing its performance as a specialty additive in harsh chemical matrices. Our team often advises on solvent selection during scale-up, flagging the need for compatible handling systems and appropriate recovery procedures.

    Environmentally, the persistence and low biological activity of perfluorinated compounds present regulatory challenges. As a manufacturer aware of evolving best practices, we have invested in waste management solutions to contain emissions and limit waste discharge. Our facility uses closed-loop recovery systems to capture vapors and residues, and we encourage partners to consider lifecycle impacts—these are long-lived molecules, requiring thoughtful stewardship from synthesis to end-use.

    Technical Insights Gained Through Manufacturing

    Few chemistries test plant design quite like sustained fluorination. Octafluoroamyl Alcohol production demands corrosion-resistant reactors lined with specialized alloys or PTFE. Maintenance logs from our operators attest to the learning curve associated with valve and gasket selection. More than a few years ago, unexpected downtime resulted from under-spec’d materials and misapplied fluoropolymer seals. Continuous process optimization has allowed us to minimize downtime, maintain operator safety, and scale output to meet shifting demand cycles.

    Particulate filtration and rigorous distillation, carried out under an inert atmosphere, prove essential every week as we chase down even minor side-reaction products. Any deviation in process parameters—temperature spikes, incomplete mixing—reflects in both the GC trace and end-user performance feedback. We invest in frequent equipment calibration, and reward production line suggestions that lead to measurable improvements in final product quality.

    Quality Assurance and Testing Practices

    We base our quality protocol on international standards and in-house benchmarks. Product lots pass through a cycle of GC-MS, FTIR, and 1H/19F NMR analysis, confirming the absence of residual starting materials and giving confidence to end-users about chemical identity. Trace moisture determination becomes particularly important for Octafluoroamyl Alcohol, as even small upticks contribute to side reactions or instability in storage. Our lab technicians use Karl Fischer titration for each batch, cross-validating with spectroscopic signatures.

    Only personnel who receive both safety and technical training handle packaging. Our packaging team examines container compatibility, as fluorinated alcohols can sometimes attack elastomeric seals over long-term storage. We have moved to high-density polyethylene and specially rated fluoropolymer containers, ensuring shipments arrive intact whether headed across the country or making a short regional journey.

    Customer Collaboration and Continual Improvement

    Every customer application teaches us new subtleties about Octafluoroamyl Alcohol’s field performance. While the academic literature serves as a useful foundation, real-world manufacturing requires constant feedback from users. Teams at customer sites have shared insights on aerosol performance, storage stability, and even subtle frost point effects when used in Arctic conditions. We regularly participate in joint product development programs, lending technical support and batch samples to collaborative experiments. Many successful product launches in our portfolio trace back to an engaged feedback loop with users who push boundaries in electronics, coatings, and fine chemicals.

    Supply chain disruptions and raw material shortages, especially for specialized fluorine sources, bring challenges we have learned to adapt to. Our procurement managers maintain direct relationships with global suppliers, watching for changes in regulation or shipping logistics that could impact availability. Years spent navigating these complexities allow us to rapidly adjust batch scheduling and offer contingency planning for critical projects. Customers facing urgent timelines rely on our agility and depth of on-site inventory.

    Safety, Stewardship, and Responsible Manufacturing

    We make safety central in everyday work. All operators complete annual hazardous materials handling courses, and we regularly review emergency procedures—especially for potential leaks or spills. We invest in ventilation, air monitoring, and fire protection systems tailored to perfluorinated compound production. By consulting with local authorities and environmental agencies, we keep our practices both compliant and proactive. External audits validate that we store and dispose of wastes in accordance with regulations; our aim always extends beyond minimum requirements to long-term site stewardship.

    Aware of the issues that come with synthetic perfluorinated chemicals, our leadership regularly evaluates new technologies for treatment and reclamation. We align with partners interested in chemical recycling and advanced incineration, and we devote R&D budget to studying degradation pathways and safer alternatives. Our product stewardship documents go beyond regulatory checklists, pointing out both project advantages and long-term risks so that decision-makers can plan responsibly.

    Innovations Shaping the Future of Octafluoroamyl Alcohol Production

    Innovation in fluorination chemistry keeps moving. Our technical directors actively follow advances in selective catalysis, hoping to find routes that reduce energy input and cut greenhouse gas emissions from the manufacturing process. Early results from pilot reactors suggest that electrosynthetic and plasma-based approaches may soon play a larger part in commercial-scale production. Meanwhile, on a smaller scale, improvements in automation and process analytics sharply decrease off-grade production and waste.

    We welcome customer inquiries about custom modifications to the Octafluoroamyl Alcohol molecule, including chain length variation and targeted esterification. These custom runs demand both flexibility and rigorous documentation, as any alteration to the perfluorinated chain can significantly shift physical properties. Our technical team bridges communication between plant operators and end-users, ensuring project objectives line up with technical realities. Each new synthesis request passes through a multi-step technical assessment, with regular consultation to ensure findings translate into practical improvements.

    Practical Considerations for End-Users

    End-users working with Octafluoroamyl Alcohol benefit from direct manufacturer support. Over the years, we have streamlined tech support workflows so that process engineers, safety coordinators, and purchasing agents can reach our technical team directly for troubleshooting or guidance. Whether clarifying compatibility with an untested additive or recommending analytical methods for incoming lot verification, we treat every question as a chance to deepen our field knowledge.

    Storage and handling, often overlooked, receive as much attention as synthesis and distribution. Field reports confirm that long-term stability increases in containers stored under inert gas and shielded from sunlight. In shared chemical storage rooms, clear secondary containment prevents cross-contamination with incompatible acids or oxidizers. We share procedures gained from internal practice as well as feedback from customers, viewing every success and failure as a learning tool for the wider chemical community.

    Conclusion: The Manufacturer’s Role in Partner Success

    Thanks to customer collaboration and continual process improvement, we see Octafluoroamyl Alcohol playing an expanding role across industries that demand chemical resilience and innovation. Our years navigating the practical realities—from reactor fouling and raw material shortages to regulatory change and application-specific technical puzzles—build a portfolio of experience for existing and prospective partners. As we refine our processes and field new technical challenges, our focus stays anchored on reliability, transparency, and a willingness to adapt alongside the brightest minds using this unique material.