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1,1-Bis(Diethylamino)Tetrafluoro-1-Propene

    • Product Name 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene
    • Alias HFO-1233zd(E)
    • Einecs 695-642-7
    • 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

    183085

    Chemicalname 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene
    Casnumber 132182-92-4
    Molecularformula C11H20F4N2
    Molarmass 256.29 g/mol
    Appearance Colorless liquid
    Density 1.11 g/cm3 (approximate)
    Solubilityinwater Insoluble
    Structure Propene with CF2=CF- core and two diethylamino groups at C1
    Smiles CCN(CC)C(C(F)(F)C(F)=C(F))N(CC)CC
    Uses Specialty chemical intermediate or research chemical

    As an accredited 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is packaged in a 100-gram amber glass bottle with a secure screw cap, labeled for laboratory use and safety.
    Shipping 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene should be shipped in tightly sealed, corrosion-resistant containers under an inert atmosphere, such as nitrogen. Transport in compliance with all applicable regulations for hazardous chemicals. Avoid heat, moisture, and incompatible materials. Ensure clear labeling, secure packaging, and provide appropriate documentation, including safety data sheets (SDS), during shipment.
    Storage **1,1-Bis(Diethylamino)tetrafluoro-1-propene** should be stored in a cool, dry, well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. The container should be tightly closed and made of material compatible with fluorinated compounds. Ensure storage under inert atmosphere (e.g., nitrogen or argon) to prevent hydrolysis or degradation, and clearly label all storage containers.
    Application of 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene

    Applications of 1,1-Bis(Diethylamino)Tetrafluoro-1-Propene in Industrial Manufacturing

    1,1-Bis(Diethylamino)Tetrafluoro-1-Propene serves as a specialist fluorinated intermediate for advanced synthesis in several industrial manufacturing settings. Our facility supplies this material to high-performance, quality-driven downstream users in core technology sectors. Below, we outline key industrial application areas, highlighting specific compliance requirements, dosage guidelines, integration into manufacturing workflows, and representative product types produced by major end users.

    1. Synthesis of Next-Generation Semiconductor Etching Gases

    This compound performs as a vital starting reactant for proprietary etching gas formulations within advanced semiconductor manufacturing. Fabricators use it to prepare new fluorinated etchants for silicon wafer patterning in high-resolution device processing lines, supporting 5nm and below technology nodes.

    Industry compliance standards

    • SEMI S2/S8 Environmental, Health, and Safety Guideline
    • IATF 16949 Quality Management for Automotive Semiconductors
    • IEC 61340-5-1 ESD Control for Cleanroom Gases
    • RoHS 3 Directive 2015/863 (for workplace chemicals)

    Typical usage ratio

    • Formulators typically charge 5–25% of the raw material into synthesis reactors, depending on the design of the desired etching molecule. Precise ratios adjust based on target microstructural selectivity and compatibility with complementary process gases.

    Downstream process integration

    • The material enters the specialty gas production step after pre-conditioning and purification. Facilities react it with other halogenated agents under continuous flow or batch synthesis. Gases undergo distillation and quality certification prior to cylinder filling for end user deployment.

    Final product types

    • Cleanroom-grade etching gases for semiconductor foundries
    • Specialty plasma process fluids for integrated circuit fabrication
    • Gas blends for selective silicon oxide and nitride removal
    • Microelectronics-grade fluorinated intermediates

    2. Advanced Fluoropolymer Coating Monomer Production

    1,1-Bis(Diethylamino)Tetrafluoro-1-Propene functions as an intermediate for synthesizing high-purity monomers used in next-generation fluoropolymer coatings. Resin manufacturers incorporate the material into proprietary copolymerization steps, enabling the production of highly fluorinated surface coatings for electronics, aerospace, and specialized medical devices.

    Industry compliance standards

    • ISO 9001:2015 for Quality Management in Polymer Production
    • REACH Regulation (EC) No 1907/2006 (EU chemical registration)
    • ASTM D5229/D5229M for Polymer Film Thermal Stability
    • OSHA 29 CFR 1910.1200 Hazard Communication

    Typical usage ratio

    • Used at 10–35 mol% in the monomer feed, with precise levels tailored to targeted fluoropolymer chain structures, functional group content, and downstream viscosity requirements.

    Downstream process integration

    • The compound is dosed directly into monomer synthesis reactors, participating in controlled polymerization or copolymerization reactions with other fluoroalkenes or unsaturated amines. The resulting monomer mix feeds directly to resin chain extension or curing stages before final application processing.

    Final product types

    • Ultra-hydrophobic fluoropolymer topcoats for display glass
    • Dielectric coatings for microelectronic components
    • Corrosion-resistant lining materials for chemical processing tanks
    • Fluorinated anti-fouling films for medical devices

    3. Specialty Photoresist Additive Synthesis for Lithography

    Photoresist manufacturers utilize this fluorinated amine derivative in the synthesis of proprietary additives designed for next-generation deep-UV and EUV (extreme ultraviolet) lithography. These tailored additives enhance the solubility and process window of advanced resists, ensuring precise feature definition in chip manufacturing.

    Industry compliance standards

    • SEMI C3.60-1115 Specifications for Photoresist Materials
    • ISO 14644 Cleanroom and Associated Controlled Environments
    • JEITA-EM-3701/3702 for Semiconductor Materials Assessment
    • UL 94 Flammability Standard (for downstream polymers)

    Typical usage ratio

    • R&D and manufacturing processes incorporate 2–7 wt% of the intermediate into additive precursor syntheses. The exact charge depends on the compatibility with chosen photoresist resins and targeted process latitude.

    Downstream process integration

    • The compound reacts with other active species and protecting groups in multi-step synthesis. The final additive is purified and formulated into commercial photoresist systems, then supplied in drums or sealed containers for lithography use by major microfabrication sites.

    Final product types

    • Photoresist primer blends for sub-10 nm lithography
    • Pattern fidelity-enhancing positive/negative tone resists
    • Photoactive compound solutions for advanced node production
    • Developer-resistant photoresist formulations

    4. Fluorinated Ion-Exchange Resin Intermediate Manufacturing

    This material supports advanced synthesis pathways for fluorinated ion-exchange resins used in high-purity water systems, membrane separations, and fuel cell fabrication. Chemical engineers integrate the raw material to control polymer microstructure and membrane porosity for improved ionic conductivity and chemical resistance.

    Industry compliance standards

    • NSF/ANSI 61 Certification for Drinking Water System Components
    • IEC 62282-3-100 Performance Test for PEM Fuel Cells
    • ISO 14001:2015 (for Embedded Environmental Management)
    • ASTM D3860 for Ion Exchange Resin Purity

    Typical usage ratio

    • Downstream resin plants apply 12–30 mol% in copolymer feed streams. Adjustments depend on the engineered pore size, required proton conductivity, and cross-linking density for the intended membrane application.

    Downstream process integration

    • Plant operators introduce the compound during copolymerization with vinyl or fluorinated monomers. The reaction mass then proceeds to granulation, washing, and sulfonation steps before conversion into films, beads, or complex membrane structures.

    Final product types

    • High-permeability ion exchange membranes for water purification
    • Proton-exchange membranes for hydrogen fuel cells
    • Commercial ion-exchange beads for industrial water softening
    • Perfluorinated membrane separators for electrolysis stacks
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