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2-Amino-4-Iminoheptafluoropent-2-Ene

    • Product Name 2-Amino-4-Iminoheptafluoropent-2-Ene
    • Alias Perfluoroglutaronitrile
    • Einecs 701-384-8
    • 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

    469347

    Chemical Name 2-Amino-4-iminoheptafluoropent-2-ene
    Molecular Formula C5H2F7N2
    Molecular Weight 222.08 g/mol
    Appearance Colorless to pale yellow liquid
    Smiles N=C(C(F)(F)C(F)=C(F)C(F)(F)F)N

    As an accredited 2-Amino-4-Iminoheptafluoropent-2-Ene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle containing 100 grams of 2-Amino-4-Iminoheptafluoropent-2-Ene, sealed, labeled with hazard warnings and handling instructions.
    Shipping 2-Amino-4-Iminoheptafluoropent-2-ene must be shipped in tightly sealed, chemically resistant containers under cool, dry conditions. Ensure compliance with all applicable chemical transport regulations. Label as a hazardous material if required, and protect from physical damage and moisture. Consult the Safety Data Sheet (SDS) for specific handling and shipping instructions.
    Storage **2-Amino-4-iminoheptafluoropent-2-ene** should be stored in a tightly sealed container, under an inert atmosphere (such as nitrogen or argon) to prevent moisture and air exposure. Keep it in a cool, dry, well-ventilated area, away from heat, ignition sources, and incompatible materials like strong oxidizers or acids. Clearly label all containers and ensure appropriate chemical-safety precautions are observed.
    Application of 2-Amino-4-Iminoheptafluoropent-2-Ene

    Applications of 2-Amino-4-Iminoheptafluoropent-2-Ene in Industrial Manufacturing

    As a specialist manufacturer of 2-Amino-4-Iminoheptafluoropent-2-Ene, we focus on its practical deployment in high-reliability industrial sectors, where fluorinated intermediates are essential for advanced performance requirements. Below is a detailed breakdown of genuine downstream adoption scenarios, specifying use environment, regulatory context, and production inclusion, to support your R&D and procurement teams in decision-making.

    1. High-Performance Fluorinated Pharmaceutical Intermediates

    This compound plays a targeted role as a fluorinated building block for synthesizing complex antiviral and oncology drug candidates. Downstream synthesis leverages its unique reactivity and fluorine content to introduce perfluorinated moieties essential for metabolic stability and membrane permeability in specialty APIs. Manufacturers must strictly manage batch traceability and control input ratios under cGMP conditions for regulatory submissions.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • US FDA 21 CFR Part 211
    • European Pharmacopoeia monographs (where applicable on final APIs)
    • Good Distribution Practice (GDP) for pharmaceutical ingredients

    Typical usage ratio

    • 0.5–3.0% w/w relative to total substrate in stepwise multi-stage synthesis, adjusted based on targeted yield and purity of pharmacophore-modified intermediates

    Downstream process integration

    • Introduced at Stage 2 or 3 of chemical synthesis, usually following salt formation, in the fluorination step utilizing nucleophilic or electrophilic substitution reactions; in-line monitoring required for impurity profiling

    Final product types

    • Specialty antiviral APIs with perfluorinated side chains
    • Oncology research actives for late-stage clinical development
    • Custom fluorinated intermediates for biologically active molecules

    2. Advanced Fluorochemical Agricultural Formulation Components

    Manufacturers of systemic agrochemicals incorporate this raw material to design active ingredients with weather resistance and targeted bioavailability. The compound enters proprietary formulation systems for herbicides, fungicides, and insecticides that demand high environmental stability and leaf-surface absorption. Downstream quality assurance often requires monitoring residue levels and compliance with multi-jurisdictional limits.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice (GLP)
    • US EPA 40 CFR Part 180 (Tolerances and exemptions for pesticide chemicals in food)
    • European Regulation (EC) No 1107/2009 on Plant Protection Products
    • ISO 17025 for analytical testing validation

    Typical usage ratio

    • 0.1–1.2% w/w in final active substance mixtures, scaling depending on field test feedback for phytotoxicity and persistence

    Downstream process integration

    • Dosed during formulation blending phase after synthesis of the core bioactive, followed by microencapsulation or emulsion preparation in accordance with GLP

    Final product types

    • Weather-resistant fluorine-containing herbicides
    • Systemic fungicides with slow-release profiles
    • Specialty insecticidal concentrates for high-value crops

    3. Electronics-Grade Fluoropolymer Synthesis

    Producers of advanced electronic components use this compound as a reactive intermediate to introduce fluorinated segments into high thermal stability fluoropolymers. These specialty polymers support wafer-level packaging, flexible printed circuits, and insulation materials. Input ratios and conversion rates directly affect dielectric properties and breakdown voltage, monitored under rigorous material control systems.

    Industry compliance standards

    • IPC-4101 (Specification for Base Materials for Rigid and Multilayer Printed Boards)
    • RoHS (Restriction of Hazardous Substances Directive 2011/65/EU)
    • ISO 9001:2015 for quality management systems in materials production
    • IEC 61249-2-21 for fluoropolyimide base films

    Typical usage ratio

    • 1.5–6% by weight during co-polymerization, selected per polymer chain design and target dielectric constant

    Downstream process integration

    • Added to pre-polymer solution reactors before initiation catalyst; subsequent post-reaction purification and property validation using GPC and DSC

    Final product types

    • Thin-film fluoropolymer coatings for microelectronics
    • Flexible printed circuit substrate materials
    • Low-loss dielectric films for high-frequency devices

    4. Surface Modifier for Corrosion-Resistant Coatings

    In industrial coatings, formulators utilize this compound to impart fluorinated functionality to resin systems, improving chemical resistance and water repellency on metal, glass, and advanced composite surfaces. Quality assurance protocols focus on ensuring process compatibility and validating that modified coatings meet end-use corrosion and environmental cycling requirements.

    Industry compliance standards

    • ISO 12944 (Paints and varnishes — Corrosion protection of steel structures by protective paint systems)
    • ASTM D6109 for coating resistance assessment
    • REACH (Regulation (EC) No 1907/2006) chemical registration where applicable
    • ISO 9001 for coating manufacturing QC

    Typical usage ratio

    • 0.2–0.8% w/w added to base resin, with exact levels determined by salt spray test cycles and desired hydrophobicity ratings

    Downstream process integration

    • Introduced during resin modification prior to pigment and additive blending; post-curing surface treatment may be employed for additional repellency

    Final product types

    • Industrial anti-corrosion coatings for offshore and chemical plant components
    • Glass protection films
    • Composite panel surface treatments for architectural applications

    5. Fluorinated Specialty Lubricant Additive Manufacturing

    This raw material serves as a structural modifier for synthesizing high-performance fluorinated lubricant additives used in aerospace, semiconductor, and vacuum applications. The controlled inclusion of fluoroalkene units enhances molecular stability under thermal and oxidative stress. Downstream blending requires precise adjustment to maintain viscosity index and compatibility with synthetic base stocks.

    Industry compliance standards

    • ASTM D7042 (Viscosity of Lubricants)
    • ISO 6743 (Classification of Lubricants for Industry and Machinery)
    • SAE AMS 3217 for aerospace lubricants
    • REACH registration if marketed in EU

    Typical usage ratio

    • 0.05–0.7% w/w in finished lubricant formulation, optimized through life-cycle and compatibility testing

    Downstream process integration

    • Reacted into additive packages during batch synthesis; blended into base oil at final step prior to packaging, with continuous pilot-scale QA

    Final product types

    • High-purity vacuum pump oils for semiconductor fabs
    • Sealing and barrier lubricants for aerospace actuators
    • Long-life specialty greases for cleanroom robotics
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    Certification & Compliance
    More Introduction

    2-Amino-4-Iminoheptafluoropent-2-Ene: A Closer Look from the Manufacturer’s Bench

    Your Introduction to 2-Amino-4-Iminoheptafluoropent-2-Ene

    Our daily work in synthesis labs gives us an up-close view of the changes in fluorinated intermediates—how subtle adjustments in a compound’s structure can open up promising new uses. Among candidates that recently caught the eye of both research and production teams, 2-Amino-4-Iminoheptafluoropent-2-Ene stands out. Its unusually high fluorine content paired with a reactive imino functionality places this molecule on a short list for several demanding contemporary applications. Years of scaling up similar compounds have taught us the knock-on effects structural tweaks have on both the chemistry and logistics of handling—and how real-life process experience shapes a molecule’s practical value.

    Understanding Its Structure and Why it Matters

    Chemists at the bench notice quickly how the arrangement of seven fluorine atoms on a five-carbon backbone alters the landscape of interactions. Unlike partially fluorinated analogs, this structure brings a pronounced electronic impact: nucleophilic sites become tamer, electrophilic centers sharpen. The imino group sticking off the fourth carbon doesn’t just sit there—it creates unique entry points for crafting heterocycles or introducing further functional groups. Technologies that rely on high fluorine density, especially advanced agrochemical actives or building blocks for specialty pharmaceuticals, benefit directly from this layout. Several clients in the research and pilot production stages have flagged the compound’s resistance to hydrolysis and exceptional thermal stability as significant operational bonuses.

    Model and Specifications: Practical Production Point of View

    Our model for 2-Amino-4-Iminoheptafluoropent-2-Ene grew out of direct experience with scalable fluorination, not lab-scale experiments. Every batch we deliver comes out of a reactor setup that focuses on tight control over exotherms, gas management, and cleanliness—because cross-contamination with haloalkane intermediates can ruin a week’s work. We maintain a purity profile above 98% for most applications, confirmed not just with NMR and HPLC, but also FTIR checks for trace by-products: knowing these small impurities can derail downstream reactivity. Near-anhydrous forms ensure a consistent shelf life, and the molecule’s volatility sits low enough for practical storage under nitrogen. Isolated as a pale, free-flowing powder, it ships stably at room temperature, saving considerable logistics hassle compared to more volatile homologs.

    Comparing with Other Products in the Lineup

    Years of producing both mono- and polyfluorinated amines have made differences between 2-Amino-4-Iminoheptafluoropent-2-Ene and its less-fluorinated relatives clear. In reactions needing a sustained C–F bond effect—for example, generating stable intermediates in medical imaging probes or perfluoroalkylated drug candidates—heavier fluorination extends reactivity windows and increases yield cleanliness. Colleagues running side-by-side tests with trifluorinated or pentafluorinated analogs notice more robust conversion rates and fewer side products when switching to the heptafluorinated version. For customers in crop science, the unique combination of an imino group with this level of fluorination deters enzymatic breakdown longer in field conditions, buying more control in experimental formulations.

    Handling and Process Adjustments in the Factory and Lab

    Unlike simpler fluorinated amines, this molecule demands respect at every production step. The high electronegativity of the seven fluorines pulls at everything: stainless-steel lines, PTFE seals, and even the operator’s gloves. Early production runs underscored the importance of vent design and real-time leak detection—two unexpected pressure spikes in the scale-up reactor taught us that fluorinated intermediates require fail-safes not seen with non-halogenated products. All packaging uses tested, multi-layered containers lined with fluoropolymer bags. Storage on-site avoids stacking with oxidizing agents, and all unloading protocols rely on forced ventilation. In R&D, researchers prefer handling it in glove boxes or with positive-pressure air hoods, a routine based less on theory than on practical experience with spills during late-night extractions.

    Applicability in Research and Industry

    Clients investigating new agrochemicals, fluorinated biomaterials, and pharmaceuticals consistently ask about this compound’s behavior in real-world conditions. The strong C–F bonds translate to chemical resistance—extended field trials in agricultural R&D indicate much lower leaching rates into groundwater than with less-fluorinated samples. In pharmaceutical development, medicinal chemists discovered that the compound’s backbone resists metabolic degradation, permitting longer biological activity in vivo and sparing valuable time in the preclinical evaluation cycle. For companies interested in performance materials, requests focus on this molecule’s ability to serve as a persisting backbone for surface modification or as a precursor to perfluorinated block copolymers. In all these cases, having direct manufacturer feedback on shelf life, batch-to-batch consistency, and impurity fingerprints has helped researchers tweak their protocols and reduce waste.

    The Perspective from Synthesis and Scale-Up

    Having transitioned this compound from trial flask to 50-liter reactors, our chemists spotted several pain points only visible above the lab scale. Exothermicity rises sharply during certain additions—a point lost at small scale but dramatic on the plant floor. Control of trace moisture becomes critical, both for yield and for protecting downstream equipment. Highly fluorinated products often trigger unwanted corrosion; our facilities retrofit all lines with fluoropolymer or specialty alloys, and the few times these standards slipped, costly downtime resulted. We have seen firsthand how a mistake in monitoring reaction temperature can lead to decomposition, contaminating the product with reactive, volatile fragments. Beyond simple cost calculations, these manufacturing pressures shape the real availability of the molecule and inform every discussion with buyers.

    Environment, Safety, and Quality Insights Only a Producer Sees

    Stories fly around the plant about early attempts at open-kettle handling or quick-and-dirty workarounds. Teams learned fast: this kind of compound punishes shortcuts. During bench development, solvent selection impacts not just reaction success but waste treatment costs—halogenated solvent streams require specialty incineration, and a few liters of misplaced wash can set back disposal schedules. The compound’s persistence means mistakes last a long time; rare spills during storage have shown us the need for regular audits and training, not just relying on written protocols. We run closed containment systems, with batch records audited for trace fluorinated by-products that might create surprises during regulatory review. These layers of hands-on controls and historical lessons build reliability, translating to confidence on the part of downstream chemists relying on our batches.

    Collaborative Progress with Downstream Partners

    Having repeated conversations with formulating chemists and application engineers, we know that consistent quality prompts repeat orders more than slick marketing. Some end-users came in asking for lower-cost, partially fluorinated analogs; trials proved the heptafluorinated compound—while pricier per kilo—reduced total workup time and avoided unplanned process interventions. Sharing solid impurity analyses and long-term stability data—rather than glossy spec sheets—drove real, practical changes in partner labs. This feedback loop shapes our own process improvements; batch failures or off-spec shipments feed directly into our plant’s review cycle, leading to regular upgrades in filtration, drying, and analytical controls.

    Field Notes from Chemical Manufacturing

    The daily business of making highly fluorinated amines means solving real-world puzzles: how to move liquids that eat through traditional pipework, how to vent off trace gases that wreck expensive detectors, how to handle kilo-scale batches without risking accidental releases. We deployed a tailored suite of process controls, pressure reliefs, and emergency protocols—a response to near-misses rather than external recommendations. Every operator trains on full mock emergencies, and except for two rare instances, these dry runs matched up with live incidents. These rigorous measures not only avoid costly disruptions but also build the backbone of production credibility, both internally and for outside auditors.

    Market Drivers and Research Demands

    Trends in global chemical R&D now push further toward specialized intermediates that offer performance leaps rather than marginal cost reductions. 2-Amino-4-Iminoheptafluoropent-2-Ene’s structure opens doors not available to less fully fluorinated varieties. Feedback from pharmaceutical clients indicates greater success integrating this backbone into emerging drug scaffolds resistant to metabolic attack. Materials chemistry teams report smoother integration with perfluorinated polymers—leading to coatings or membranes with higher fouling resistance, a core requirement for new battery seals or microelectronics. Past attempts with lighter fluorinated versions lacked this combination of reactivity and stability, a distinction made obvious only after running costly side-by-side pilot studies.

    Unique Properties Only Direct Experience Reveals

    Brochures often claim stability or reactivity, but these words gain real meaning after months of production and deployment. In high-throughput screening, the compound’s unique electrophilicity sidesteps blockages seen with less substituted intermediates—a finding that came out of a failed attempt in one of our own high-yielding syntheses, later repeated by customers. Researchers on both sides of the Atlantic confirmed that, under carefully dried and deoxygenated conditions, the molecule persists longer and with greater consistency than similar amines or imines. Direct feedback from partners working in field-based trials pointed to a seasonal edge: lower photodegradation rates, with visible differences in recovery profiles after months in real sunlight.

    Customer Case Examples and Adaptations

    Several industrial partners came to us with aims to push into new agrochemical blends that demand active persistence without excessive environmental buildup. Teams paired this heptafluorinated backbone with different carbamates and sulfonamides; while their initial focus was traditional options, their shift to our product dramatically reduced breakdown rates in loam-heavy soils. Medicinal chemistry teams targeting fluorinated drugs for CNS penetration used our sample lots to confirm blood-brain barrier resistance and longer plasma half-lives, which conventional tetrafluoro analogs just couldn’t match. In specialty materials, innovators repurposed this compound as a linker in developing ultra-high stability elastomers, a use case fed by dozens of late-night troubleshooting calls and real process feedback loops.

    Supply Chain, Logistical Experience, and Real-World Lessons

    We have watched shipping regulations for heavily fluorinated compounds tighten over the years. Direct shipping experience points to the importance of accurate documentation and ready-to-deploy containment during customs checks, especially in jurisdictions with strict environmental controls. Our in-house logistics worked through unplanned delays: only packaging formats tested against actual transit conditions avoid unnecessary losses to friction or accidental venting. Working with supply partners upstream meant constant quality checks—using batches of base fluorinated feedstocks verified by every lot, not just randomly. Transport planning takes into account specific load sequencing, climate factors, and end-use storage requirements unique to this class of compound. Mishaps elsewhere in the industry—entire pallets returned because of failed vapor containment—reminded us to build every shipment on field-tested procedures, not generic packout rules.

    Issues, Challenges, and Solutions from Direct Operations

    Process bottlenecks pop up in the middle of every scale-up phase for novel fluorinated compounds. An early problem with pump rotor sticking—unique to this molecule’s slight tackiness and chemical compatibility—forced a broader switch to ceramic-based moving components. Trace contamination from lubricants led to a costly disposal event until we overhauled our fluid separation lines, moving to fully halogen-compatible coatings and seals. Sometimes steps forward come from failed runs: thermal runaway in a trial batch’s first stage taught us to reengineer our temperature control algorithms and to build out more granular sensor grids. More recently, repeated batch-to-batch purity swings led us to invest in on-the-fly chromatographic monitoring rather than end-point only checks, cutting waste and keeping quality consistent.

    Perspectives on Regulatory and Sustainability Trends

    Tapped in to both production realities and regulatory developments, we've worked to stay well ahead of changing expectations around persistence, toxicity, and traceability in the fluorinated chemicals space. Regulatory queries no longer just look for broad compliance but demand evidence of destruction pathways, residue management, and quantifiable release prevention. We invested early in closed-system waste capture, employee exposure logging, and multi-stage solvent recovery, upgrades prompted by feedback from both in-field audits and internal production surveys. Over time, the commitment to these standards hasn’t just kept us in the market; it has improved morale and sped up audit clearance. Triple-layer documentation and ready-to-hand operator testimony helped clear up several import/export stops where lesser-documented batches would have stalled for weeks.

    Feedback from the Lab Floor and Lessons Forward

    No technology march happens without setbacks or learning curves. Our shop floor teams remember every hiccup in previous generations of partially fluorinated intermediates: unexpected vapor formation, mysterious yield drops, and complicated post-processing. With 2-Amino-4-Iminoheptafluoropent-2-Ene, direct engagement with R&D partners, regular project reviews, and real-time data sharing kept issues from snowballing. Instead of hiding failures, the culture of honest post-mortems let us rework production lines, improve staff training, and fine-tune shipping routines to preserve quality and safety even under tight timelines.

    Looking into the Future

    Projects coming down the line will demand more from each intermediate—not just a reliable supply, but built-in performance and readiness for new regulatory standards. 2-Amino-4-Iminoheptafluoropent-2-Ene’s record in real-world processing, field deployment, and regulatory navigation positions it as a keystone for the next generation of high-performance, fluorinated materials and pharmaceuticals. The lessons drawn from everyday manufacturing challenges—process, quality, logistics, and safety—shape ongoing improvements, giving our partners the clear, reliable foundation they need to innovate at the bench and on the line.