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

Methyl Perfluoroheptanoate

    • Product Name Methyl Perfluoroheptanoate
    • Alias Heptanoic acid, perfluoro-, methyl ester
    • Einecs 402-330-6
    • 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

    588165

    Cas Number 376-24-1
    Molecular Formula C8F15O2
    Molecular Weight 384.06 g/mol
    Iupac Name Methyl 2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-pentadecafluorooctanoate
    Appearance Colorless liquid
    Boiling Point 131 °C at 760 mmHg
    Melting Point -41 °C
    Density 1.68 g/cm³ at 25 °C
    Solubility In Water Insoluble
    Refractive Index 1.297

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

    Packing & Storage
    Packing Amber glass bottle, 100 mL, with screw cap, tamper-evident seal, hazard labeling, and chemical identification; securely boxed for shipping.
    Shipping Methyl Perfluoroheptanoate should be shipped in tightly sealed, corrosion-resistant containers, stored upright in a cool, well-ventilated area. It is classified as a hazardous material and must be handled in accordance with national and international regulations, including appropriate labeling and documentation. Ensure segregation from incompatible substances during transportation to prevent contamination or reactions.
    Storage Methyl Perfluoroheptanoate should be stored in a tightly sealed container in a cool, dry, well-ventilated area away from heat, sparks, and open flame. Store separately from incompatible substances such as strong oxidizers. Protect the container from physical damage and keep it away from direct sunlight. Ensure proper labeling and follow all relevant chemical storage regulations and guidelines.
    Application of Methyl Perfluoroheptanoate

    Applications of Methyl Perfluoroheptanoate in Industrial Manufacturing

    As the original producer of high-purity Methyl Perfluoroheptanoate, we supply the world's leading formulators and system integrators in specialized industrial sectors. Our extensive quality control and strict adherence to supply chain traceability ensure precise performance across advanced manufacturing environments. The following application segments reflect the principal real-world downstream uses of this fluorochemical raw material, addressing distinct formulation needs and operational processes.

    1. Electronic Grade Semiconductor Etching Fluids

    Semiconductor manufacturers use this perfluorinated ester as a specialty solvent modifier and non-reactive wetting agent for advanced wafer etching, particularly in high-aspect ratio and low-k dielectric processes. Engineers value its stable fluorinated structure for minimizing contamination risks and providing consistent etch profile controls in critical device fabrication. Purity requirements and trace metal content are closely regulated at each integration phase.

    Industry compliance standards

    • SEMI C93 (Specifications for Liquid Chemicals)
    • IEC 62474 Material Declaration in electronic products
    • RoHS Directive (EU Restriction of Hazardous Substances)
    • IATF 16949 (Semiconductor Quality Management Systems)

    Typical usage ratio

    • 0.5% – 3% by weight as an additive; the specific rate varies per plasma chemistry formulation and etch tool configuration

    Downstream process integration

    • Methy Perfluoroheptanoate enters the etching bath preparation stage, modifying carrier solvents and stabilizing etchant mixtures prior to photolithography and plasma exposure steps

    Final product types

    • Silicon wafers for logic and memory devices
    • Advanced CMOS photomasks
    • Compound semiconductor substrates (GaN, SiC)
    • Back-end-of-line (BEOL) chips

    2. High-Performance Fluoropolymer Synthesis

    Chemical processers employ Methyl Perfluoroheptanoate as a reactive monomer or chain transfer agent in the co-polymerization of specialty fluoropolymers, especially for tailored solvent resistance or dielectric properties. The precise integration of this perfluoroalkyl ester influences side-chain architecture, allowing for custom polymeric materials in highly demanding engineering contexts such as low-flammability cable insulating and gasketing films.

    Industry compliance standards

    • ISO 9001:2015 (Polymer Manufacturing QMS)
    • UL 94 (Flammability Testing of Plastics)
    • ASTM D3307 (Standard for Fluoropolymer Resins)
    • REACH Regulation for fluorinated monomers

    Typical usage ratio

    • 0.2% – 1.2% molar ratio as a co-monomer or end-group modifier depending on the target molecular weight and fluorine content of the final polymer

    Downstream process integration

    • The material is introduced at the pre-polymerization mixing stage, either as a direct injection into the monomer kettle or blended into the feedstock stream for copolymerization and subsequent extrusion or film casting

    Final product types

    • Heat-resistant cable jackets
    • Dielectric films for capacitors
    • Chemical process pump seals
    • Specialty O-rings for aerospace

    3. Specialty Surface Treatment Agents for Technical Textiles

    Downstream textile finishing lines benefit from the exceptional oleophobic and hydrophobic characteristics when this raw material is used as a component in advanced water and oil repellant formulations. With controlled molecular weight and dispersibility, formulators selectively employ it for treating technical fabrics required in protective apparel, high-performance filters, and medical barrier materials, achieving strict directional repellency and cleanability criteria.

    Industry compliance standards

    • OEKO-TEX® Standard 100 (Textile Chemical Safety)
    • ISO 23232 (Functional Finishes for Textiles)
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals)
    • REACH Annex XVII (Perfluorinated Compounds Restriction)

    Typical usage ratio

    • Range: 0.1% – 0.8% by weight in finishing baths; adjustment depends on substrate porosity and repellency targets set for each textile grade

    Downstream process integration

    • Applied during the padding and drying stage, following dyeing and prior to final curing; added to aqueous dispersions or solvent-based formulations for targeted surface migration and binding

    Final product types

    • Protective workwear (ISO 16603-compliant materials)
    • Medical barrier textiles and drapes
    • Industrial filtration fabrics
    • Outdoor technical garments

    4. Fluorinated Performance Lubricant Manufacturing

    In lubricant blending, formulators utilize this perfluoroester as a high-purity intermediate or specialty functional additive in the synthesis of high-temperature stable, chemically inert lubricants. These fluids provide exceptional resistance to degradation in aerospace, vacuum, and electronic-grade bearing applications. Regulatory and batch traceability compliance is critical at each blending and QC validation stage.

    Industry compliance standards

    • NSF H1 (Incidental Food Contact Lubricants, where relevant)
    • ASTM D6186 (Thermal and Oxidation Stability of Lubricants)
    • SAE AMS 1478 (Aviation Grease Performance)
    • ISO 21469 (Safety of Machinery Lubricant Formulations)

    Typical usage ratio

    • 0.3% – 2.5% by weight as a functional group modifier or performance additive; ratios specified by application temperature and volatility requirements

    Downstream process integration

    • Incorporated post-esterification at the formulation and molecule tailoring phase, prior to homogenization and vacuum filtration of finished lubricating oils or greases

    Final product types

    • High-vacuum pump oils
    • Space-grade bearing greases
    • Electric motor cooling fluids
    • Aerospace actuator lubricants

    5. Analytical Reference Standard Production

    Producers of analytical calibration solutions and laboratory standards utilize this compound for its precise molecular definition and ultra-trace impurity profile. It acts as a key reference for GC-MS and LC-MS quantification of perfluorinated compounds, supporting quality control in environmental, regulatory, and material compliance laboratories. Strict traceability and lot certification ensure validity in regulated environments.

    Industry compliance standards

    • ISO 17034 (Reference Material Producers)
    • ISO/IEC 17025 (Testing and Calibration Laboratories)
    • OECD TG 307/308 (Environmental Testing Protocols)
    • EPA 537/533 (PFAS Analytical Methods)

    Typical usage ratio

    • Standard solution concentration levels: typically 1–100 ng/mL in prepared calibration vials. Exact dilution protocols determined by analytical sensitivity and matrix complexity.

    Downstream process integration

    • Accurately weighed and dissolved during primary standard or QC check standard preparation, directly aliquoted into glass ampules or volumetric flasks for packaging and shipment to end-lab customers

    Final product types

    • Certified calibration standards for PFAS analysis
    • Matrix spike controls for water and environmental samples
    • Proficiency test materials
    • Traceability reference vials
    Free Quote

    Competitive Methyl Perfluoroheptanoate 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

    Methyl Perfluoroheptanoate: Meeting Modern Industry’s Demands with Authentic Fluorochemical Manufacturing

    Understanding What Sets Methyl Perfluoroheptanoate Apart

    Producing real, traceable Methyl Perfluoroheptanoate (CAS 72098-20-1) means dealing directly with the challenges and responsibilities of fluorochemical synthesis. In our reactors, methyl perfluoroheptanoate emerges as a highly specialized building block. Each batch goes through deep scrutiny—not just for assay, but for byproducts unique to perfluorinated chemistries. This particular molecule, with a fully fluorinated heptanoic backbone and an ester group, offers a powerful combination of chemical durability and reactivity that only true manufacturers get to see first-hand.

    Physical Specifications That Matter in Everyday Manufacturing

    This clear, virtually colorless liquid holds a boiling point near 125°C at reduced pressure, with a density pushing toward 1.7 g/cm³. Viscosity remains low, which makes filtration, automation, and high-purity transfer straightforward even at scale. No involatile residue, no lingering yellow tints—real quality control focuses on subtleties that end-users in electronics, surfactant compounding, and specialty coatings notice immediately. Odor remains faint, typical of methyl esters, without the acrid signals found in contaminated lots.

    Reacting to Industry Evolutions: Direct Applications From the Factory Floor

    Few manufacturers appreciate the hands-on difficulty sustaining consistent supply for perfluorinated esters. Every kilogram faces rising raw material costs, regulatory pressures, and strict controls on PFAS emissions. Despite these, demand for methyl perfluoroheptanoate keeps growing. The molecule finds heavy use in fluoropolymer synthesis, electronic lubricants, and specialty surfactants. Its performance in critical environments—where most organics would break down—traces back to the strength of the C-F bonds. Our plant teams know how much that matters to R&D chemists who need predictable results in film formation or precise reactivity for further functionalization.

    Coating manufacturers using our product get not only reliable hydrophobicity but resistance against chemical etching and weathering. The methyl ester end group gives formulators access to further transformations: straightforward hydrolysis, alcoholysis, and controlled reduction. Staff in our QC lab monitor every change during purification, especially for applications involving electronics where trace contaminants create defects at the micron scale. Through repeated feedback, equipment refinements, and direct talks with downstream engineers, we’ve learned to adjust drying, filtration, and packaging methods so the final ester never picks up moisture or extraneous organic acids.

    Differences in Real-World Performance: Not All Perfluoroalkyl Esters Are Alike

    Some customers try switching between similar esters, expecting interchangeable results—reality rarely matches theory. Variants with different chain lengths or alkyl groups can slip through regulatory gaps but falter under process scrutiny. Common switches, like using ethyl or butyl perfluoroalkyl esters, can distort boiling points or reduce chemical compatibility in solvent blends and surfactant formulations. Our methyl derivative has a clean ester break, allowing easier downstream hydrolysis without large, difficult-to-remove alcohols emerging in side streams. Not every factory faces these headaches, but we’ve spent years handling the material’s quirks: trace hydrofluoric acid risks, specialized fluoroplastic-compatible gaskets, and tailored distillation routines to prevent decomposition.

    Our technical support stands rooted in solving real-world headaches, not pushing generic data. Electronics fabricators, for example, push back hard if ionic contaminants cause shorts or etch defects. Every batch targeting semiconductor plants receives expanded ion chromatography and water content checks, far exceeding what distribution companies would even consider routine. Our plant shares monthly case studies among staff to highlight root causes—how one ppm more or less can impact etching uniformity or adhesion durability.

    Sourcing Challenges Only Producers See: Logistics, Safety, and Environmental Focus

    Handling methyl perfluoroheptanoate at scale forces attention to every transfer, pump seal, and vent line. These aren’t theoretical risks: spills cross-contaminating downstream blends, trace acid corrosion eating through stainless transfer pipes, or regulatory notices stemming from poorly packed drums. The complexity compounds further if you’re exporting across continents, with varying customs scrutiny for PFAS-class chemicals and evolving local bans. Documentation, chain-of-custody, and staging for sampling all fall on the manufacturer—not intermediaries. Each of those steps costs money, skill, and real risk management, with staff safety the uncompromising baseline. Many overlook the intense training and emergency protocols in place just for moving a pallet from synthesis hall to final QA inspection.

    Then there are waste challenges that traders never glimpse. Solvent washings, failed fractions, and plant emissions require robust abatement, destruction, or recovery. Every kilogram synthesized means another stream for environmental compliance teams to track, contain, and document. As PFAS regulations tighten worldwide, our R&D group partners closely with compliance advisors, not only to ensure legal operation but also to keep innovating cleaner, safer process options for future batches.

    What Durability Means in Customer Applications: Putting Chemistry to Work

    Industrial-scale methyl perfluoroheptanoate doesn’t only ride on its chemical stability; users demand reliable supply chains, clear certificates, and responsive help. Major coating firms and electronics manufacturers use our product where surface energy control turns into real performance—think anti-fingerprint, fog resistance in screens, or barrier coatings in automotive electronics. The molecule’s strong C-F backbone prevents breakdown under UV, acids, or organic solvents, supporting long service lives in real-world products. We’ve worked with researchers integrating these esters into next-generation circuit boards, where underfill, conformal coatings, and insulating gels rely on minute property differences to maintain signal integrity or block moisture intrusion.

    Users in the surfactant industry find the methyl ester’s short, cleanly-reactive end group helps chain into new block copolymers, boosting dispersion and stabilization without introducing heavy atom contamination or bulky alcohol byproducts. Co-polymers derived from methyl perfluoroheptanoate pass strict solubility, film formation, and environmental leaching tests. All of these tangible results stem from day-to-day process management on the production floor, not abstract R&D hypotheses. Each time we package a shipment, field calls about solvent compatibility, or catch minor filtration flaws before products head to port, these real-world lessons accumulate in better process design and ongoing product refinements.

    Traceability: The Hidden Backbone of Reliable Supply

    Talking with long-term customers reveals what sets sourcing direct from the manufacturer apart: traceability. From raw material intake to the last QC stamp, every step faces logged checkpoints. End-users in regulated industries often conduct their own audits and trace checks. We supply not just certificates of analysis but process records, third-party validations, and references covering months of prior syntheses. This means, if a problem does crop up, our team can walk a chemist or engineer through vapor-phase purity, assay curves, and even the cleaning regimen for the last holding tank run—because we controlled the full supply chain, not just part of the paperwork.

    Years of continuous feedback teach us that trust builds through transparency and quick problem-solving, not just checkboxes or registrations. International buyers looking for backup supply in regulated or defense industries push hard for chain-of-custody and total batch history. Our own audit teams train together with operations and logistics staff so everybody understands the controls in place for each drum or tanker. This isn’t theoretical: in recent years, with remote auditing rising due to travel restrictions, we’ve built secure digital platforms for real-time documentation sharing. Instead of waiting for days-long responses, partners see the evidence instantly, from reaction logs to waste manifests.

    Worker Experience: Training and Technical Depth in Practice

    Working daily with methyl perfluoroheptanoate presents training demands that run deeper than general chemistry. New operators learn to spot subtle temperature changes during vacuum distillation, interpret faint haze as an early impurity warning, and maintain inert-gas blankets during every transfer. Our veteran staff document near-misses and procedural lessons, folding these into safety briefings and operator handbooks. Over time, everyone building or packaging this ester sees how minor process deviations ripple through to end-use performance—sometimes subtle haze, sometimes whole-batch reprocessing.

    Lab analysts master not just standard fluorine NMR and FTIR spectra but also trace acid titrations and water determination in solvents the molecule barely tolerates. Ongoing technical workshops ensure the newest team members see real samples and failure patterns, not just textbook examples. As new regulations appear, compliance teams simulate plant walkthroughs, staging mock incident responses and investigator interviews. Our field engineers often visit end-user plants, reviewing deployment setups and noting what real-world conditions challenge our product most. This hands-on culture, from operator to executive, creates a baseline of understanding that permeates every customer interaction.

    Supporting Innovation and New Applications: Direct Knowledge Driving Development

    Partnership with industrial chemists often evolves into collaborative troubleshooting and even co-development. We’ve supported specialty adhesives start-ups working to bond ultra-low energy surfaces, as well as electronics groups pushing for thinner, tougher hydrophobic films for wearable devices. Frequent calls walk through composition shifts, side reaction risks, purification tweaks, and long-term material aging. Our deep manufacturing knowledge lets us advise on not just product selection but actual process modifications: timing, agitation, even sequence of addition for optimal effect.

    As new market applications emerge—battery electrolytes, anti-smudge or anti-icing coatings, and fluorinated chromatography media—our team stays active in technical societies, contributing to standards and test method development where possible. Success for these cutting-edge users often depends on reliability as much as intrinsic chemical properties. Any unexpected impurity, non-uniform lot, or shipping delay can upend multi-million dollar production lines. Plant managers revisit blending strategies or cleaning schedules based on real outcomes, not marketing spin. This close-knit, iterative support can only come from the folks actually synthesizing, purifying, and shipping every batch.

    Environmental Stewardship: Facing Up to the Challenges

    Handling perfluorinated esters means grappling every day with questions about persistence, bioaccumulation, and emissions. Our experience as direct manufacturers gives us both the responsibility and unique position to address these concerns head-on. In-plant abatement systems catch residual vapors and incinerate waste streams where possible. We work in tandem with regulatory agencies mapping out new thresholds for discharge and storage. Waste minimization efforts matter as much as throughput or profit: even minor improvements in solvent recovery or byproduct recycling can mean hundreds of kilograms less persistent waste leaving the facility each year.

    On the research front, our team regularly partners with academic groups to prototype greener synthetic approaches—using less energy, alternative feedstocks, and cleaner catalysts. We participate in international working groups focused on PFAS alternatives, striving to stay ahead of anticipated regulatory shifts and invest in responsible, long-view solutions. Not every innovation works out, but every effort leads to a safer, tighter, more responsive operation—so end users trust not just the molecules but the ethics and traceability behind the supply.

    Market Realities: Direct Manufacturer Versus Intermediary Hype

    Years in the fluorochemical sector reveal the difference between trading-house claims and full-process accountability. The so-called “perfluoroheptanoate” listings from global traders can hide broad assay windows, sketchy documentation, and unreliable lot consistency. Consistent manufacturing means each batch truly meets the measured purity it claims, with side-assays for critical ions and boiling range data, not just generic rebranded paperwork. Users shopping for “methyl perfluoroheptanoate” who cut corners on origin often face pre- and post-processing headaches: off-odors, poor mixing, reactivity losses, or worse—regulatory fines for undeclared contaminants.

    Given the rise in counterfeit and gray-market chemicals, manufacturer-to-user pathways reduce risk and give access to real technical support. Recent trends show growing customer preference for suppliers who control not just what’s on the drum, but the process, packaging, and post-sale assistance. We invest in direct communications—whether it’s teleconferences with new users, data packs for regulatory filings, or expedited replacement shipments in the rare case of transit issues. Long-term partnerships replace the churn of spot-buy trades, building reliability, responsiveness, and cumulative technical know-how that benefits both sides.

    Challenges and Solutions: Pushing Toward Safer, Smarter Production

    No manufacturing run goes perfectly; handling perfluorinated esters under tight emission standards and practical cost constraints stays demanding. We continually evaluate new technology: solventless syntheses, energy-saving fractionation, advanced catalyst recovery, and in-line analytical methods for rapid QC. Sometimes operators make small process changes based on observed bottlenecks, only to see unexpected side reactions or impurity trends crop up. At those moments, having chemistry, engineering, QC, and logistics teams on site leads to fast root cause analysis and practical fixes. Over time, iterative improvements—sometimes as simple as a gasket upgrade or a pressure setpoint tweak—transform both efficiency and reliability.

    Our plant shares learning outcomes in regular feedback loops: near-miss reviews, incident debriefs, and operator-led improvement projects. Environmental compliance drives much of the modernization, as every facility aims to both reduce waste and minimize releases from legacy equipment. By reinvesting in closed-loop systems and high-quality raw materials, we reduce risk both to personnel and to the communities near our plant. Open dialogue with local stakeholders keeps us on our toes—real accountability, not just numbers in a report.

    Vision for Industrial Fluorochemicals: Quality Through Proven Experience

    After years producing methyl perfluoroheptanoate, our team understands that quality stems from thoughtful process ownership, honest documentation, and technical engagement. Every end-user cares about purity, reactivity, and long-term supply chain stability. We field questions about batch-to-batch differences, alternate sourcing strategies, new regulatory demands, or specialized end uses. Our answer always flows from real-world practice: we own the process, we build the expertise, and we share the responsibility for supply every step of the way.

    Those buying direct from a true manufacturer inherit both the technical confidence and the continuous support that comes from people who see, handle, and improve every drop themselves. Our work producing this specialized chemical reflects the reality of today’s advanced materials industry: suppliers who stand behind their chemistry, invest in solutions, and own the long-term effects of their operations. This builds trust, safety, and progress, molecule by molecule, batch by batch.