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Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene

    • Product Name Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene
    • Alias FC-132
    • Einecs 411-240-0
    • 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
    VTB
    Specifications

    HS Code

    129251

    Iupac Name trans-1,2-bis(perfluorobutyl)ethene
    Molecular Formula C10F18
    Molecular Weight 462.08 g/mol
    Cas Number 376-28-1
    Appearance Colorless liquid
    Boiling Point 140-150°C
    Density 1.8 g/cm³ at 25°C
    Melting Point -60°C (approximate)
    Solubility In Water Insoluble
    Refractive Index 1.312 (20°C)
    Vapor Pressure Low (est. <1 mmHg @ 25°C)
    Stability Stable under recommended storage conditions
    Odor Odorless
    Chemical Class Perfluoroalkene

    As an accredited Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene is supplied in a 25g amber glass bottle with a secure PTFE-lined screw cap.
    Shipping Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene is shipped in specialized, tightly sealed containers to prevent leaks and contamination. It should be stored cool and dry, away from incompatible substances. Compliant with DOT and IATA regulations, this chemical requires appropriate hazard labeling and documents, with handlers using personal protective equipment during transport to ensure safety.
    Storage Store Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene in a tightly sealed container, in a cool, dry, and well-ventilated area. Protect from heat, sparks, open flames, and moisture. Keep away from incompatible materials such as strong oxidizers and acids. Use only in a chemical fume hood and ensure proper labeling. Follow all relevant safety guidelines and local regulations for chemical storage.
    Application of Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene

    Applications of Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene in Industrial Manufacturing

    Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene offers unique chemical stability and low surface energy, enabling highly specialized roles in advanced manufacturing sectors. As an original chemical raw material producer, we support strict compliance, precise formulation, and consistent integration into downstream processing across critical industries. Below, we detail major application scenarios where this material directly contributes to end-product performance, regulatory adherence, and operational efficiency.

    1. Electronic Component Protection Coatings

    In electronics manufacturing, this fluoroalkene serves as a surface modifier and hydrophobic coating precursor for PCBs, sensor housings, and critical microcomponents. Its unique molecular structure provides chemical inertness and moisture barrier properties, supporting operational reliability in harsh or high-humidity conditions. Manufacturers value its predictable behavior during vapor deposition and plasma polymerization, facilitating consistent surface protection without performance variances.

    Industry compliance standards

    • IPC-CC-830 (Conformal Coating for Printed Boards)
    • RoHS Directive 2011/65/EU
    • IEC 60664-3 (Insulation Co-ordination for Equipment)
    • REACH Regulation (EC) No 1907/2006

    Typical usage ratio

    • 0.2% to 1.2% by weight in coating formulations; precise level optimized based on desired surface energy and thickness requirements.

    Downstream process integration

    • Introduced during the final stages of conformal coating preparation; dissolved or emulsified immediately before application by dip, spray, or chemical vapor deposition (CVD) methods.

    Final product types

    • Printed circuit boards (PCBs) with hydrophobic coatings
    • Piezoresistive and MEMS sensor modules
    • Coated microchip packages for automotive and aerospace electronics

    2. Fluorinated Lubricant Additive for Precision Machinery

    This specialty fluorinated ethylene enhances synthetic lubricant formulations aimed at reducing friction and chemical corrosion in high-value mechanical assemblies. Its low volatility and non-reactive nature minimize degradation at elevated temperatures or in aggressive chemical environments. This additive supports manufacturers focusing on extending the functional life and reliability of gears, bearings, and sliding contacts in semiconductor manufacturing, medical devices, and instrumentation.

    Industry compliance standards

    • NSF H1 (Lubricants for incidental food contact, when relevant)
    • ISO 21469 Hygiene Requirements
    • ASTM D445 (Kinematic Viscosity Testing)
    • DIN 51517 for industrial gear oils

    Typical usage ratio

    • 0.05% to 0.3% by total base oil weight, adjusted according to viscosity target and operational temperature range.

    Downstream process integration

    • Dosed into base oil during the blending phase, typically following dissolution of anti-wear agents but prior to viscosity modifier addition; thorough mixing ensures uniform dispersion.

    Final product types

    • High-performance synthetic lubricants for vacuum pumps
    • Medical instrument lubricating fluids
    • Precision gear greases for cleanroom robotics

    3. Chemical-Resistant Fluoropolymer Synthesis

    The material acts as a crosslinkable monomer for manufacturing fluoropolymers and copolymers intended for applications requiring resistance to solvents, acids, and aggressive cleaning agents. During controlled radical polymerization, its perfluorinated structure imparts exceptional nonstick and degradation-resistant properties to the final polymer, allowing downstream customers to produce films, membranes, and linings that endure continuous chemical exposure.

    Industry compliance standards

    • FDA 21 CFR 177.1550 for perfluorocarbon resins (when used in food contact scenarios)
    • USP Class VI Biological Reactivity Standards (for medical and biotech processing equipment)
    • ISO 10993-5 Cytotoxicity (where biocompatibility is critical)
    • EU Regulation (EC) No 1935/2004 (Materials in contact with food)

    Typical usage ratio

    • 1.5% to 5% by total monomer content in copolymer synthesis; percentage tailored to desired fluoropolymer surface characteristics and mechanical strength.

    Downstream process integration

    • Fed as a comonomer directly into the batch or continuous reactor before polymerization initiation; dosage monitored by automated feed control to ensure molecular weight consistency; post-polymerization purification follows.

    Final product types

    • Chemically inert membranes for industrial filtration
    • Heat- and chemical-resistant film used in semiconductor wafer processing
    • Flexible fluoropolymer linings for chemical storage tanks

    4. Surface Modifier in High-End Optical Device Assembly

    The unique surface activity of this fluorinated ethylene enables glass and lens manufacturers to fabricate optical components with reduced fingerprinting, enhanced dirt repellence, and improved durability. During AR (anti-reflective) and hydrophobic coating production, this additive supports uniform film deposition on precision optics without impacting transparency or light transmission consistency, meeting the demanding criteria for imaging, metrology, and display applications.

    Industry compliance standards

    • ISO 9211-4 (Optics and photonics — Optical coatings — Environmental durability)
    • IEC 60068-2-1 (Environmental testing — Cold, for optics storage conditions)
    • RoHS Directive 2011/65/EU (Optical device component compliance)
    • Quality systems: ISO 13485 (when used in medical optics)

    Typical usage ratio

    • 0.15% to 0.6% by solids content in AR/hydrophobic formulations; fine adjustment possible for substrate geometry and optical performance targets.

    Downstream process integration

    • Added to the solution phase during preparation of the coating bath, just prior to application on cleaned, pre-treated optical glass via spin-coating, dipping, or plasma-assisted deposition.

    Final product types

    • Anti-smudge lenses for augmented and virtual reality headsets
    • Fingerprint-resistant optical windows for medical diagnostic devices
    • Hydrophobic-coated imaging sensors and camera modules

    5. Microfluidic Device Non-Wetting Channel Construction

    The excellent non-wettability and anti-adsorption properties of this fluorinated material are crucial for microchannel surface treatment in microfluidic and lab-on-chip devices. When applied to internal microchannel walls, it substantially decreases cross-contamination risk and sample carryover, helping analytical and diagnostic end-users achieve higher reproducibility and lower detection thresholds during rigorous fluid manipulation.

    Industry compliance standards

    • ISO 13485:2016 (Medical devices — Quality management systems)
    • USP <661.1>, <661.2> (Plastic materials of construction in medical devices)
    • ISO 10993-18 (Chemical characterization of medical device materials)
    • FDA Guidance for Industry on Microfluidic Devices (when required for US market entry)

    Typical usage ratio

    • 0.1% to 0.4% by total volume in coating baths or grafting reagents, chosen based on microchannel geometry and target surface roughness.

    Downstream process integration

    • Treatment occurs as a post-fabrication step, where devices pass through or are flushed with a solution containing the fluorinated additive, followed by curing under controlled temperature and humidity to anchor the layer to the channel walls.

    Final product types

    • Disposable lab-on-chip diagnostic cartridges
    • Point-of-care analysis microfluidic cassettes
    • High-sensitivity nucleic acid quantification devices

    6. Fuel Cell and Electrochemical Membrane Enhancement

    This advanced fluorinated ethylene contributes to the extended operational stability of proton exchange membranes (PEMs) and other electrochemical separation films. Through controlled copolymerization, it improves chemical resistance to oxidative radicals and high-voltage degradation while maintaining mechanical flexibility, key for durable stack performance in fuel cell and electrolyzer production environments.

    Industry compliance standards

    • ISO 14687:2019 (Hydrogen fuel — Product specification)
    • SAE J2719 (Hydrogen fuel quality for fuel cell vehicles)
    • IEC 62282-2 (Fuel cell modules)
    • ASTM D5229 (Standard Test Method for Moisture Absorption Properties of Polymer Matrix Composites)

    Typical usage ratio

    • 2% to 8% by monomer mass in membrane precursor formulations, optimized in accordance with required ionic conductivity and thickness.

    Downstream process integration

    • Introduced during the primary monomer mixing step prior to membrane casting or extrusion, followed by crosslinking and solvent removal to achieve the required final membrane architecture.

    Final product types

    • Proton exchange membranes (PEMs) for hydrogen fuel cells
    • Electrolyzer separator membranes for green hydrogen production
    • Durable ion-exchange membranes for energy storage batteries
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene: A Perspective From the Manufacturer

    The chemical industry keeps moving forward to embrace materials that deliver pure performance, reliability, and long-term value. Over the years, our team has built extensive experience taking compounds from raw foundation to finished specialty chemical, watching the journey up-close every day. We manufacture Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene with attention to each step: from purifying feedstocks and optimizing the reaction pathway, to ensuring storage maintains the pristine properties clients expect. As those in high-end applications know, details make all the difference in performance.

    What Drives the Choice for This Chemical

    Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene often draws attention in environments requiring both stability and unique molecular behavior. Our engineers and chemists work closely with partners in electronics, specialty coatings, and advanced materials to ensure material quality aligns with their end use demands. In places where neither ordinary fluorocarbons nor lower-performance hydrocarbons deliver, this compound steps in and often solves the puzzle. Dedicated research and consistent lab-scale production allow us to keep refining our process, driving purity levels that meet the strictest application protocols.

    Inside the Molecular Structure: What Sets It Apart

    The difference starts at the molecular level. The trans configuration of the ethylene backbone changes how the molecule packs itself and behaves under stress. Our process preserves the unique configuration, avoiding formation of the cis isomer that could compromise target properties. Each batch gets validated by spectral data to ensure the correct structure dominates, as even minor deviations can impact everything from thermal resistance to chemical compatibility in downstream use.

    Long perfluoro-n-butyl chains on both sides of the ethylene bring marked improvement over shorter chains or less saturated systems. The length suppresses surface energy, pushing water and oil repellency to an order that stands up under laboratory scrutiny. This perfluorination also stabilizes the molecule thermally and chemically, making it a serious candidate for demanding uses such as barrier coatings and dielectric matrices. Many clients have asked about the significance of the trans isomer and extended fluorinated chains; based on both lab and field feedback, these structural elements allow for applications that falter with other molecules. We hear that users who’ve tried comparable materials always notice the difference in how ours performs under harsh test conditions.

    Specification Quality: Going Beyond “Good Enough”

    Our chemists keep a close eye on every batch. Impurities, even on the scale of parts per million, can mean the difference between a customer meeting their own performance benchmarks or falling short. Neither we nor our specialized clients want surprises, so specification testing runs steady throughout production. For Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene, purity often reaches levels above 99.9%, and we use both NMR and mass spectrometry to confirm that non-target isomers and side products remain controlled. Frequent audits of our QC protocols and in-house analytical upgrades help us hold the line as scale increases. It’s easy to make broad claims about “high purity,” but we see how even subtle contamination gums up semiconductor patterning or disrupts delicate coating films.

    Typical Usage: Feedback From Real-World Clients

    Years of experience show a clear pattern: clients using this compound push for better outcomes in electronics, photonics, and materials engineering. In the world of dielectric materials, where both low loss and inertness stand at a premium, the compound’s perfluorinated chains block unwanted electron flow and resist degradation from field exposure. Technicians at large foundries often mention reliability at elevated temperatures, and our test data matches these observations. This has led to its use as a specialty component in areas like advanced printed circuit fabrication, optical fiber claddings, and microfluidic device coatings.

    Other users, especially those in coatings and surface engineering, choose this molecule for its surface properties. The extensive perfluorination reduces the sticking of polar and non-polar contaminants, enabling coatings that maintain clarity and function across repeated cleaning or exposure cycles. Thin films created with Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene often carry a unique low reflectivity and anti-fog performance not seen with generic fluorocarbons. It’s not uncommon to receive feedback from teams working on next-generation touch displays or specialty optics that this one molecule solved adhesion and contamination hurdles where standard options failed.

    Differences From Other Fluorocarbon Chemicals

    At trade shows, clients and competitors often ask us what makes this chemical worth the investment versus more familiar perfluorinated olefins or shorter chain analogs. From manufacturing experience, the trans configuration means the molecules align in films with less internal stress, improving both barrier and dielectric stability. Where shorter perfluoroalkyl chains cap performance in water repellency or chemical resistance, this compound’s longer chains deliver a measurable difference. Our in-house testing lines up with external reports demonstrating lower water contact angles and better solvent resistance, even in aggressive environments.

    Unlike mixed-isomer blends marketed by some suppliers, our tightly controlled process yields a highly consistent product—so formulating and downstream processing become more predictable. Clients working in environments with exacting reaction pathways or precise coating deposition requirements depend on this reproducibility. Reducing the risk of lot-to-lot variability has become a pillar of our manufacturing philosophy, informed by decades of troubleshooting joint projects with customers on tight schedules. Experienced users in fields like microelectronics or optical engineering notice fewer batch failures and improved process control when switching to this compound compared with non-purified alternatives.

    Environmental Considerations and Responsible Handling

    Manufacturing perfluorinated compounds comes with responsibility. Our production adheres to strict controls aimed at minimizing fugitive emissions and responsibly managing all by-products. Colleagues from regulatory and safety teams work side by side with process engineers to meet external requirements and internal sustainability goals. We subscribe to full transparency—sharing details about waste handling, capture technologies, and periodic audits adds confidence for clients under increasing regulatory scrutiny.

    Over the years, we’ve invested in closed-loop systems and advanced abatement methods, recognizing the need to minimize ecological footprint. We work with partners in waste management and environmental science to stay ahead of changing standards and develop technical solutions for advanced containment. Our experience shows that by tracing each ton of material to its destination, and applying best practices at each step, we deliver both quality and environmental accountability—a combination our largest clients insist on as a baseline for doing business.

    Supply Chain Reliability and Technical Support

    Supplying a specialty chemical like Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene isn’t just about moving drums and containers. The process relies on tight scheduling, clean packaging, and clear technical data so downstream teams receive material ready for direct use. Our background in logistics and technical support has taught us the value of responding promptly to customers’ questions—not just about specifications, but with real-world troubleshooting and optimization suggestions gleaned from hands-on trials in our own pilot labs.

    Problems can arise at many points: crystallization during transfer, static buildup in handling, or interaction with other packaging materials. Through iterative feedback and engagement with customers at the plant floor level, we keep improving how the finished material is stored and shipped. Experienced supply chain teams ensure that deliveries run on time; regular training and performance reviews keep the system resilient even during sudden shifts in global logistics. Ultimately, our reputation depends not just on chemical quality, but also on ensuring every user—from bench scientist to production engineer—feels they can count on timely support and reliable supply.

    Continuous Innovation: Meeting New Technical Demands

    Our technical teams stay in close contact with users testing this compound under new conditions: higher voltages, thinner film deposition, or exposure to challenging chemical agents. Each time a partner poses a new challenge, such as increasing resistance to aggressive plasma treatments or pushing the boundaries of miniaturized electronics, we run new trials, seek new analytical insight, and look for process improvements to adapt.

    One notable recent focus involves photolithography and extreme ultraviolet (EUV) processes. Engineers from advanced chip foundries have looked to perfluorinated compounds as trench-fill materials or anti-reflective coatings. Our lab teams are supporting prototype runs using the compound under real process conditions—reporting film stability, uniform etch resistance, and no detectable contamination migration against background layers. We also supply researchers exploring stretchable electronics, thanks to the low modulus of the perfluorinated architecture. These feedback loops between users and our technical group drive ongoing optimization, whether that means further purifying input materials, introducing new handling formats, or supporting regulatory documentation for specialized sectors like aerospace or medical devices.

    Challenges and Solutions in Production Scale-Up

    Scaling up production of Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene presents technical hurdles not often discussed outside the manufacturing floor. Simple batch reactions might work for small runs, but bulk production requires a robust process: few side reactions, efficient separation, and absolute control over temperature and pressure. Our experience highlights the need for constant surveillance at every stage, paired with reliable instrument calibration and swift intervention when process drift occurs. On top of that, periodic investments in reactor upgrades and purification units allow us to keep ahead of rising demand and tightening purity requirements.

    Maintaining the right trans/cis ratio at scale depends on continuous feedback from analytical teams: as throughput increases, small process irregularities amplify rapidly. Having in-house capability to run NMR and GC-MS means valuable hours aren’t lost waiting for external results. These investments pay dividends every time a client’s device line passes reliability trials without failures traceable to input materials. We listen to feedback—whether it points out improvements for reactor liners or requests for new packaging formats that streamline user workflows at scale.

    Safeguarding Worker Health and Process Integrity

    Focus on worker health starts at the factory entrance. Handling fluorinated intermediates, solvents, and finished materials safely requires protocols honed over hundreds of production campaigns. Operators and technicians receive comprehensive training on ventilation, personal protective equipment, and incident management. We maintain a transparent reporting system so small issues are solved before they grow. Our occupational health team works with line managers to spot risks early, using both formal workplace monitoring and direct employee feedback. Best practices evolve as regulations shift, but consistent investment in safety infrastructure and culture never falls off our priority list.

    As equipment and protocols improve, so does process cleanliness. Simple steps like regular changeover routines, instrument calibration, and maintaining a controlled environment prevent contamination and protect the compound from exposure to water, acids, or other process hazards. Over time, our record shows that careful investment in people and processes results in long-term reliability for everyone down the value chain.

    Supporting R&D and Flexible Customization

    Many clients first encounter Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene in R&D settings. Whether engineering a coating for flexible electronics, testing barrier layers against broad-spectrum solvents, or optimizing dielectric formulations, quick feedback and tailored solutions carry real weight. We offer support beyond standard samples: discussing alternate formulations, helping design processing experiments, and providing detailed technical guides based on our own laboratory experience.

    Collaboration with researchers means frequent requests for alternative packaging, custom lot sizes, and additional analytical data. We regularly provide in-depth data packets with spectra, chromatograms, and trace impurity profiles to help users design more predictable test runs. Our in-house R&D team also undertakes feasibility studies based on client feedback. By integrating knowledge from diverse technical backgrounds—materials science, electronics, surface chemistry—we create new opportunities for customers to bring products to market using our materials at the core.

    Market Trends and the Road Ahead

    As industries move toward smaller, faster, and more durable devices—whether for green energy technology, consumer electronics, or aerospace—materials have to keep pace. Our experience shows that users who demand the best signal fidelity, lowest contamination levels, or most resilient surface protection increasingly favor compounds like Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene over generic options. Both regulatory tailwinds and the desire to build greener, longer-lasting products drive the need for reliable, high-performance base materials.

    Requests for bulk shipments to growing Asian and North American production hotspots have increased markedly in recent years, especially where semiconductor and advanced display manufacturing are expanding. Our logistics and supply teams scale up, always backed by real-time communication streams from the plant floor to customer operations to make sure demand never outpaces capacity. Ongoing investment in production and a commitment to deep technical expertise let us meet new challenges—without sacrificing the quality and reliability we’ve built up project by project, relationship by relationship.

    Conclusion: Why Working With the Manufacturer Matters

    With longstanding roots in chemical production, we treat every project as a collaboration—not just a transaction. Decades of hands-on experience form the backbone of our guidance, technical implementation, and dedication to quality. Trans-1,2-Bis(Perfluoro-N-Butyl)Ethylene stands out as a material that brings something special to demanding applications, both because of its inherent molecular characteristics and the careful way it moves from conception to delivery. By refining each step—processing, validation, sustainability, and strong support for everyone handling the product—we keep advancing in step with the industries we serve. Whether your project is already in commercial production or just entering the design stage, we value the chance to solve problems together, delivering materials that open new technical horizons while never losing sight of real-world needs.