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

1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether

    • Product Name 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether
    • Alias HFE-7100
    • Einecs 700-483-4
    • 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

    321903

    Chemical Name 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether
    Molecular Formula C7H2F12O
    Molecular Weight 364.07 g/mol
    Cas Number 132182-92-4
    Appearance Colorless liquid
    Boiling Point 120-130°C
    Density 1.62 g/cm3 (at 25°C)
    Refractive Index 1.281 (at 20°C)
    Solubility Insoluble in water
    Vapor Pressure 41 mmHg at 25°C

    As an accredited 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 250g of 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether supplied in a sealed amber glass bottle with tamper-evident cap.
    Shipping 1H,1H,5H-Perfluoropentyl-1,1,2,2-tetrafluoroethylether is shipped in sealed, chemical-resistant containers, compliant with applicable regulations for perfluorinated ethers. The product is handled as a hazardous material, requiring proper labeling and documentation. Temperature control and secondary containment may be required to prevent leaks or environmental release during transit. Transport follows international chemical safety standards.
    Storage **1H,1H,5H-Perfluoropentyl-1,1,2,2-tetrafluoroethylether** should be stored in a cool, dry, and well-ventilated area, away from sources of heat, open flames, and incompatible materials such as strong acids or bases. Keep the container tightly closed to prevent contamination. Store in a corrosion-resistant container made of compatible materials, clearly labeled, and protected from direct sunlight and moisture.
    Application of 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether

    Applications of 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether in Industrial Manufacturing

    As the direct manufacturer, we support diverse downstream industries with high-purity 1H,1H,5H-Perfluoropentyl-1,1,2,2-tetrafluoroethylether. This advanced fluorinated ether enables performance improvements and process reliability in specialty chemical manufacturing environments where chemical resistance, selective solvency, and safety requirements drive material selection.

    1. High-Performance Electronic Cleaning Solvents

    Downstream electronic component manufacturers use the material as an active solvent in formulations for vapor phase cleaning, degreasing, and precision rinsing of printed circuit boards, microelectromechanical assemblies, and semiconductor wafers. Its high chemical stability and low residue support compliance with strict ionic cleanliness and low outgassing requirements crucial for critical electronics.

    Industry compliance standards

    • IPC-CH-65A Cleaning Handbook standards
    • International Electrotechnical Commission (IEC 61340) for electrostatic safety
    • RoHS 3 Directive (EU) 2015/863 on restricted substances
    • ANSI/ESD S20.20 for static control

    Typical usage ratio

    • 5-40% by weight in solvent blends; adjust according to required solvency and flash point limits, typically lower for fine electronics and higher when combined with co-solvents.

    Downstream process integration

    • Integrated into solvent formulations for vapor phase or immersion cleaning immediately after assembly or soldering, followed by vacuum drying or forced air drying stages.

    Final product types

    • Cleaned printed circuit boards
    • Microchip assemblies
    • Sensor housings
    • Precision electromechanical subassemblies

    2. Fluorinated Heat Transfer Fluids for Thermal Management

    OEMs of industrial cooling equipment and electronics deploy this fluorinated ether as a component of specialized heat transfer fluids used in direct-chip cooling, liquid immersion cooling, and dielectric coolant baths. The fluid's stable dielectric properties and ultra-low flammability support heat dissipation in densely packed power electronics and high-performance computing hardware.

    Industry compliance standards

    • ASTM D6064 for heat transfer fluid properties
    • UL 94 for flammability of plastic materials
    • REACH SVHC reporting for fluorinated compounds
    • IEEE 981 for qualification of dielectric liquids

    Typical usage ratio

    • 20-100% as pure fluid or main phase; concentrations chosen according to targeted dielectric constant, heat transfer coefficient, and system operating temperature.

    Downstream process integration

    • Charged directly into closed-loop cooling systems or used as a base in fluid blending tanks before filling cold plate or immersion cooling systems.

    Final product types

    • Data center immersion cooling baths
    • Power electronics cooling modules
    • Server rack heat exchangers
    • Dielectric coolant filled UPS systems

    3. Hydrophobic Surface Treatment Agents

    Producers of anti-stain and anti-fingerprint coatings for glass, ceramics, or polymer substrates integrate this raw material for its highly fluorinated chain structure, imparting durable liquid repellency. This enables functional surface modification in architectural glass and specialty display panels through wet deposition and curing processes.

    Industry compliance standards

    • ISO 20502 for determination of adhesion of coatings
    • EN 1096-2 for coated glass durability
    • REACH Annex XVII for restriction of perfluorinated alkyl substances
    • GB/T 31433 for weathering of glass coatings

    Typical usage ratio

    • 2-10% by weight in coating formulations; adjusted for degree of repellency, substrate porosity, and crosslinker dosage.

    Downstream process integration

    • Added during final coating blend preparation then applied by dip, spray, or curtain coating. Cured at 80-200°C depending on resin blend before final QC testing.

    Final product types

    • Anti-fingerprint smartphone cover glass
    • Stain-resistant bathroom ceramic tiles
    • Water-repellent architectural window panes
    • Specialty display panel glass

    4. Component in Specialty Grease and Lubricant Bases

    Manufacturers of greases for aerospace, food processing, and pharmaceutical equipment use the material as a functional base fluid or co-base in formulating lubricants with outstanding oxidative stability, chemical inertness, and extreme pressure resistance. Its non-reactive nature extends lubricant service intervals and minimizes chemical breakdown under harsh thermal or reactive process conditions.

    Industry compliance standards

    • NSF H1 and FDA 21 CFR 178.3570 for incidental food contact lubricants
    • ISO 21469 for safety of lubricants with incidental product contact
    • AMS 5634 for aerospace lubricant performance
    • ASTM D1264 for water washout properties

    Typical usage ratio

    • 10-60% by weight as base fluid in lubricant blend; higher proportion for food-grade and cleanroom applications, lower for multi-base systems.

    Downstream process integration

    • Blended in grease kettles with thickeners and additives, or pre-mixed as finished base fluid before final grease compounding, then subjected to homogenization and vacuum de-aeration.

    Final product types

    • Cleanroom-compatible greases
    • Food processing conveyor lubricants
    • Aerospace actuator bearing greases
    • Pharmaceutical tablet compression lubricants

    5. Intermediate for Functional Fluorinated Polymer Synthesis

    Our raw material serves as a reactive intermediate in the synthesis of specialty fluorinated polymers and copolymers where controlled introduction of perfluoroalkyl chains imparts targeted hydrophobic, dielectric, or low surface energy properties. Polymer manufacturers use it in fine chemical processes such as etherification or nucleophilic substitution under tightly controlled conditions to maintain regulatory traceability.

    Industry compliance standards

    • ISO 9001:2015 certified batch traceability
    • REACH registration as polymer intermediate
    • US EPA TSCA Section 5 for new chemical notification
    • EN 14041 for flooring polymer coatings

    Typical usage ratio

    • 1-8 mol% as functional group donor in polymerization feed. Proportion based on required pendant chain density and molecular weight targets for the final polymer.

    Downstream process integration

    • Added as a reactant in batch or semi-continuous reactor systems, often with alkoxide or halide-activated comonomers, prior to polymerization or post-polymer modification and purification.

    Final product types

    • Anti-soiling industrial flooring resins
    • Low surface energy fluoropolymer coatings
    • Membrane separation materials
    • High-durability electrical cable sheathing
    Free Quote

    Competitive 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether 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

    1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether: From Our Reactor to Your Application

    Our journey with 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether began at the intersection of need and persistent research. In the daily work of specialty chemical manufacturing, we meet countless industries searching for reliable, high-performance materials to improve the performance, durability, and safety margins of their finished products. Fluorinated ethers like this one have a reputation grounded in rigorous field testing and a deep, practical knowledge of their behavior under harsh conditions, and we have watched their popularity increase across electronics, semiconductor, and high-value polymer sectors over the last decade.

    Customers often ask about the difference between this ether and other, more common, perfluorinated fluids or standard solvents. The answer is rooted in chemistry. When our teams scale up synthesis, we start with high-purity reactants and apply steps developed in our own pilot labs. The resulting product, which often appears as a clear, colorless liquid, boasts a high degree of chemical and thermal stability thanks to the strong carbon-fluorine bonds throughout its unique structure. The perfluoropentyl group, long recognised for its hydrophobic and oleophobic behavior, combines with the tetrafluoroethylether backbone to resist most acids, bases, and oxidants. Unlike shorter-chained perfluorinated ethers, this molecule shrugs off both caustics and acids with equal ease and barely interacts with water or alcohols. This all matters because many users find themselves wrestling with unpredictable results when lesser ethers break down, yellow, or react with their feedstocks.

    We have watched customers recycle this ether through multiple runs without loss of function or increase in undesirable byproducts. The same process reliability that makes it popular in process engineering also keeps performance steady over months of continuous use. Laboratory analysis, using both gas chromatography and specialized NMR methods, shows trace impurities measuring well below key application thresholds. Our team takes pride in producing lots where every molecule matches intended structure, with batch records showing near-complete reaction efficiency and careful verification before packaging. Unlike commodity suppliers taking a hands-off approach, we constantly refine purification methods to remove oligomer, water, and halide traces, since even a few parts-per-million can disrupt ion-exchange polymer synthesis or sensitive fluoropolymer lattices.

    Commitment to Quality and Reliable Supply Chain

    Supply reliability depends as much on in-plant vigilance as it does on raw material sourcing. We recognize how downstream users place trust on flexible, on-time deliveries for their production schedules. If we weren’t manufacturers ourselves, it would be easy to minimize the headaches caused by batch variability or last-minute out-of-stock situations. Over the years, we’ve responded to global disruptions by expanding redundant synthesis lines, improving storage protocols, and qualifying dual sources for critical precursors. This allows us to fill both short and long contracts, with every shipment accompanied by full certificates of analysis and stability data sets that reflect real-world aging, not just accelerated-lab testing.

    Shipping perfluorinated molecules requires more than ticking regulatory boxes. Each drum or canister leaving our plant bears verification seals and labels showing traceability back to production. Our technical support team trains staff at customer sites on best transferring practices — not out of obligation, but because we know firsthand the toll that a minor handling mistake or vent failure can take on an entire reactor’s output. Regular feedback from the field shapes how we package and label, a process of incremental improvements born from years of practical collaboration.

    Functional Advantages Over Conventional Solvents and Ethers

    Many customers reach out with specific pain points. They may struggle with residue build-up in wafer fabrication baths or see unexpected corrosion in regular polyether environments. In these cases, 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether provides a way to sidestep traditional problems. Its boiling point and vapor pressure allow it to remain stable under normal process conditions, yet volatilize cleanly in vacuum-driven steps. The result is a solvent that leaves surfaces free of ionic contamination, persistent residues, or problematic stains.

    Unlike standard glycol or hydrocarbon ethers, perfluorinated ethers are not subject to oxidation or breakdown from UV exposure. Over repeated trials, users confirm negligible weight loss or compositional change after cycles extended far past the lifetime of competing fluids. In all those cases where process specification calls for zero extractables and minimal contribution to background conductivity, this ether remains reliably low in ionic and organic extractables.

    Its low surface energy, a product of complete fluorination, works to the advantage of developers seeking to minimize fouling, wetting, or ghosting. Several generations of fluoropolymer research have leveraged these properties to create non-stick coatings, high-voltage insulators, and surface treatments that remain responsive in both hostile chemical environments and clean-room assembly. Our plant’s quality system centers on these traits by using closed-loop filling, nitrogen blanketing, and continuous monitoring for airborne contaminants during packaging to ensure no foreign substances can compromise the intended performance.

    Application Insights From Direct User Experience

    As manufacturers, we spend time alongside technical staff and production engineers in fields where this ether’s impact is most evident. In semiconductor processing, for instance, the compound serves as a carrier or rinse fluid where trace ionic contamination would render entire photolithography batches unusable. Its compatibility with a wide range of construction materials — from stainless steels to high-purity elastomers — stems directly from our care in ensuring no hidden reactivity or side product generation.

    Users involved in the assembly of medical devices appreciate its absence of extractables and nonreactivity with common elastomers, avoiding the leaching and swelling issues that plague lower-fluorine or hydrocarbon solvents. For workers in the optical fiber sector, consistent purity means each reel of fiber can be coated, rinsed, and cured without haze or microcracking. In high-end lubrication, the combination of thermal inertia and nonflammability allows critical bearings and drives to survive demanding operation without pitting, oozing, or varnish accumulation. We have watched lubricant formulators test and validate candidate fluids for hundreds of hours, only to find lesser molecules suffer from volatility creep, deposit formation, or incipient compatibility problems.

    Technical support spans more than material datasheets and shipping logistics. Field visits to OEM partners and production floors let us track how process adjustments affect solvent yields, tension control, and bath life. Such feedback cycles steer our own process refinements, such as refining gas-sparging steps to strip volatiles, learning from premature filter clogging, and upgrading container lining materials to avoid off-flavor or discoloration during year-long storage. Real change arises not from one-off lab trials, but from engaged customers willing to test, critique, and partner in improving every aspect of product quality.

    Safety and Regulatory Considerations In Production

    Manufacturing perfluoroethers of this complexity involves harnessing reactive fluoride sources and carefully managing waste streams. All personnel in the production areas receive up-to-date training on fluoride exposure limits, protective equipment, and emergency protocols. Each batch run follows documented process hazard analyses and live monitoring. This focus on worker safety aligns directly with downstream concerns from our customers in electronics, aerospace, and life sciences sectors, who cannot afford to introduce any substances with regulatory red flags or unknown liabilities.

    Early engagement with environmental authorities allowed our company to design emission control systems featuring point-of-generation scrubbing and liquid phase adsorbers capable of handling trace fluorinated byproducts. Internal thresholds for discharge and emissions remain consistently below both local and international benchmarks, not just as a compliance requirement, but as a commitment to responsible stewardship. We share result summaries with major end-users, because transparency in supply chain risks and mitigation builds trust far more than claims of “best practice” divorced from field evidence.

    Comparing 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether With Related Materials

    Some buyers initially ask for direct comparisons with perfluoropolyethers, common perfluoroalkyl ethers, or even non-fluorinated analogues. Drawing on our own synthesis and purification setups, we see firsthand that differences arise not just from molecular structure, but also from side-chain lengths, functional group composition, and degrees of fluorination.

    Compared to offline-imported perfluoropolyethers, this ether offers lower viscosity and improved miscibility with both nonpolar and select polar fluorous additives. This agility helps process engineers dial in targets for bath turnover rates, layer thicknesses, or wetting profiles with fewer combinations. Its vapor pressure and low freezing point, built into the molecule through structural design, give it functional advantages where narrow process windows leave no room for unreliable performance. Low toxicity and absence of hydrolyzable bonds also sidestep many chronic health or degradation issues linked to older polyether technologies.

    Operational reality often reveals other differences. Applications where vapor pressure aligns with process energy savings prefer this molecule to high-mass, slow-evaporating perfluoropolyethers. Process designers in microelectronics, where particle cleanliness and throughput matter, benefit from rapid bath refresh and clean burn-off without clogging exhaust scrubbers. Where conventional alkyl ethers crack or degrade under strong fields or prolonged contact with oxidants, our perfluorinated ether maintains mass, optical clarity, and reactivity limits over dozens of cycles.

    Even the small, persistent nuances like differences in odor, tendency to “creep” along surfaces, or ease of transfer through automated lines come to light after months of customer trials. Our development group routinely reviews field notes from users running hundreds of kilograms per shift and actively adapts downstream filtration methods, container choices, and process recommendations. The cumulative effect reveals itself in fewer stopgap workarounds, reduced downtime, and better final product yield.

    Real-World Challenges and Long-Term Outcomes

    Scaling any specialty fluorinated chemical brings practical hurdles. Price volatility in fluorine derivates, shifts in environmental regulations, and the persistent glare of public attention on persistent pollutants mean every decision — from feedstock choice to end-of-life disposal — carries real impacts. Having operated both small and multi-ton reactors, we understand cost pressures and the complexity of balancing performance, regulatory acceptance, and sustainability. Supply chain relationships forged over many years help us forecast demand swings and ensure consistent feedstock quality, which in turn allows us to guarantee product fit for some of the world’s most sensitive and mission-critical processes.

    We encounter regular questions about the environmental impact of fluorinated ethers. Regulatory fields are shifting fast, especially with PFAS-related guidance emerging globally. To address user expectations and future compliance, our R&D and environmental teams work side-by-side, exploring advanced capture and reuse strategies for solvent residues, and evaluating options for catalyst recovery and waste valorization. Real commitments to circularity only emerge once a company takes full responsibility for each step of molecule life cycle — from plant exhaust to spent fluid disposal. We monitor national and international databases on emerging contaminants, and proactively adapt our synthetic routes to minimize precursors under regulatory review or decrease total fluorine content whenever compatible with customer technical demands.

    Making Connections Rooted in Practice, Not Just Theory

    We draw on lived experience with both large-scale and precision applications. Each tonne of product delivers not just a chemical, but accumulated lessons — how to manage shifting regulations, protect line workers, and help engineers hit process spec without late-stage surprises. Our own lessons didn’t spring from lab books, but from troubleshooting stuck reactors, reworking batches, and watching how real-world process constraints force changes in theoretical “optimal” conditions.

    Many customers belong to small teams forced to solve highly specific technical puzzles with minimal backup. Our company’s role grows from these relationships — sharing what we’ve seen over years of hands-on production, and adapting advice as use cases evolve faster than the literature. Whether adjusting microelectronics cleaning baths for ion-trap stability or optimizing medical coating reactors for consistent surface coverage, we invest the time to respond. These on-the-ground experiences, both wins and mistakes, steer our technical guidance, drive the steady improvement of our product, and build long-term trust with new generations of process managers and product designers.

    For those just beginning to incorporate 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether, detailed support matters. We offer analytical assistance in validating purity, help set up reclaimed solvent streams, and educate staff on safe product handling and storage so site-specific challenges can be tackled confidently. Unlike traders or distributors, our ongoing relationship with production and R&D labs informs our direct recommendations on process modification, troubleshooting, and cost optimization.

    Looking Forward: Responsible Development and Industry Leadership

    Every batch we produce sharpens our understanding of customer needs and supply chain realities. Specialty fluorinated chemicals, especially those of such molecular complexity, invite continuous scrutiny and adjustment. We remain committed to transparency with customers and regulators alike, sharing test results, process improvements, and what we’ve learned from deployment in ever-widening applications.

    Technical advancement never stands still. Teams working in microelectronics today will be tomorrow’s experts in new fields such as energy storage, environmental remediation, or functional textiles. By treating customer collaboration as an ongoing effort — not a one-time sale — we ensure 1H,1H,5H-Perfluoropentyl-1,1,2,2-Tetrafluoroethylether stands the test of both time and technological change. Our strength lies in our ability to deliver consistent quality, anticipate regulatory expectations, and maintain an open line of technical support based on hands-on expertise. From pilot project to mass-market rollout, we engage at every step, guided by the recognition that success comes from sustained teamwork and mutual trust.