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1,2-Dichlorotetrafluorocyclobut-1-Ene

    • Product Name 1,2-Dichlorotetrafluorocyclobut-1-Ene
    • Alias FC1=C(F)C(F)(F)C1(Cl)Cl
    • Einecs 206-982-7
    • 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
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    Specifications

    HS Code

    898687

    Chemical Name 1,2-Dichlorotetrafluorocyclobut-1-ene
    Molecular Formula C4Cl2F4
    Molar Mass 213.94 g/mol
    Cas Number 79097-07-1
    Appearance Colorless liquid
    Smiles C1(C(=C(C1(F)F)Cl)Cl)(F)F
    Inchi InChI=1S/C4Cl2F4/c5-1-2(6)4(9,10)3(1,7)8
    Pubchem Cid 128818452
    Structure Type Cyclobutene derivative
    Functional Groups Chloro, Fluoro, Alkene

    As an accredited 1,2-Dichlorotetrafluorocyclobut-1-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, 100 mL, with secure PTFE-lined cap; labeled for 1,2-Dichlorotetrafluorocyclobut-1-ene, hazard, and handling instructions.
    Shipping 1,2-Dichlorotetrafluorocyclobut-1-ene should be shipped in tightly sealed containers, protected from light and moisture. It must be transported following local, national, and international hazardous materials regulations, typically as a Class 6.1 toxic substance. Proper labeling and documentation are required, and handling by trained personnel with appropriate safety measures is essential.
    Storage **1,2-Dichlorotetrafluorocyclobut-1-ene** should be stored in a tightly sealed container, away from direct sunlight, heat, and sources of ignition. Store in a cool, well-ventilated, and dry chemical storage area, separate from incompatible substances such as strong oxidizers and bases. Clearly label containers and follow local regulations for storage of hazardous chemicals. Use appropriate secondary containment to prevent leaks or spills.
    Application of 1,2-Dichlorotetrafluorocyclobut-1-Ene

    Applications of 1,2-Dichlorotetrafluorocyclobut-1-Ene in Industrial Manufacturing

    As a primary manufacturer of 1,2-Dichlorotetrafluorocyclobut-1-Ene, we focus on supporting industries that have established technical requirements and regulatory oversight. Our formulation-grade material is produced to meet the needs of advanced synthesis and downstream processing, with controlled purity and traceability frameworks suitable for demanding manufacturing environments. Below we detail practical application scenarios based on current industry practices and regulatory landscapes.

    1. Synthesis of High-Performance Fluoropolymer Elastomers

    Leading producers of specialty fluoroelastomers, such as those used for automotive and aerospace sealing systems, integrate our raw material as a functional monomer during controlled radical polymerization. The cycloaliphatic ring structure delivers improved thermal and chemical resistance in the elastomer backbone, critical for extended service in aggressive environments. Its reactive dichloro and tetrafluoro substituents allow for cross-linking with perfluorinated co-monomers, enhancing the physical properties mandated by end-users in harsh operating conditions.

    Industry compliance standards

    • ASTM D1418 (Standard Practice for Rubber and Rubber Latices—Nomenclature)
    • SAE AS568 (Aerospace Size Standard for O-Rings)
    • ISO 9001:2015 (Quality Management Systems for Manufacturing)
    • REACH Registration for Monomer Use in Polymers

    Typical usage ratio

    • Generally 2–8% by weight in the monomer mixture, with precise levels adjusted based on target fluorine content and cross-link density for each elastomer grade.

    Downstream process integration

    • Added during the initial co-polymerization stage, typically via solution polymerization or emulsion polymerization setups, ensuring homogeneous monomer distribution before initiation of chain growth.

    Final product types

    • High-temperature O-rings and gaskets for turbochargers
    • Chemical-resistant seals for fuel handling systems
    • Custom-molded fluoroelastomer components for industrial process lines

    2. Intermediate for Advanced Electronic Wet Chemical Gases

    Producers of specialty electronic gases employ our material as a building block for the formulation of cleaning and etching gases utilized in semiconductor fabrication. Its fully halogenated bicyclic structure supports downstream fluorination and chlorination steps, yielding high-purity process gases essential for microelectronics manufacturing. The stringent control of byproducts and trace metals, ensured from the source material, supports consistent batch purity and low particulate generation in cleanroom environments.

    Industry compliance standards

    • SEMI C3.63 (Specifications for Electronic Grade Chemicals)
    • IEC 62474 (Material Declaration in Products of the Electrotechnical Industry)
    • ISO 14644 (Cleanrooms and Associated Controlled Environments)
    • RoHS Directive (2011/65/EU) on hazardous substances reduction

    Typical usage ratio

    • Utilized at 20–30% molar ratio as a precursor within feedstock blends, adjusted depending on the target electronic gas and downstream conversion efficiencies.

    Downstream process integration

    • Inserted into fluorination reactors where selective substitution occurs, followed by distillation and purification to electronic grade standards, prior to cylinder filling and shipment to fab facilities.

    Final product types

    • Specialty etching gases for plasma dry etch tools
    • Cleaning gases for CVD and ALD chamber maintenance
    • Halogenated carrier gases for photoresist stripping equipment

    3. Precursor for Fluorinated Specialty Intermediates in Agrochemical Synthesis

    Manufacturers of next-generation crop protection agents use this compound as a crucial ring-structured fluorinated intermediate, enabling the synthesis of active ingredients exhibiting enhanced environmental persistence and unique biological activity profiles. The four-membered cyclobutane backbone, when strategically opened or functionalized, provides opportunities for complex molecule assembly that cannot be achieved using linear or aromatic fluorocarbons. Its purity supports direct integration into intermediate synthesis stages without introducing non-fluorinated impurities.

    Industry compliance standards

    • OECD Guidelines for the Testing of Chemicals
    • FAO/WHO Specifications for Pesticide Active Ingredients
    • Good Manufacturing Practice (GMP) principles for chemical synthesis
    • EU Regulation 1107/2009 on plant protection product registration

    Typical usage ratio

    • Typically introduced at 5–12% of reaction mass for key cyclobutyl ring intermediate syntheses, modifiable by yield optimization protocols.

    Downstream process integration

    • Charged to the reactor during catalytic halogen exchange reactions or cyclobutane ring-opening transformations, immediately prior to final functional group installation or stabilization steps.

    Final product types

    • Fluorinated pesticide active complexes for field use
    • Custom agrochemical intermediates for contract development
    • Herbicide and fungicide ingredients for formulation plants

    4. Modifier for Fluorinated Optical Coating Precursors

    Producers of advanced optical films rely on precise molecular engineering of raw inputs to deliver thin films with controlled refractive indices and non-stick behavior. Our material plays a niche role as a modifier in the synthesis of oligomeric fluorinated precursors for anti-reflective and protective lens coatings. Its cyclobutane structure introduces backbone stiffness, which, when copolymerized with other tetrafluoroalkene monomers, yields coating resins with enhanced scratch and solvent resistance, crucial for demanding optical-grade coatings.

    Industry compliance standards

    • ISO 8980-5 (Ophthalmic Optics—Spectacle Lenses—Requirements for Coatings)
    • EN 166:2001 (Personal Eye Protection—Specifications)
    • ISO 9001:2015 (Quality management for coated products)
    • RoHS 2011/65/EU for absence of restricted substances

    Typical usage ratio

    • Incorporated at 1.5–6% weight fraction into fluorinated oligomer synthesis baths, depending on hardness and flexibility requirements for the final transparent coating layer.

    Downstream process integration

    • Added during the oligomerization or prepolymer resin synthesis phase; introduced to reaction vessels after base monomer charging and prior to cross-linker addition, ensuring controlled distribution for film uniformity.

    Final product types

    • Scratch-resistant anti-reflective coatings for eyewear lenses
    • Durable transparent films for electronic displays
    • Specialized optical protection layers for industrial sensors

    5. Component in Specialty Fluorinated Lubricant Additives

    Industrial lubricant formulators require fluorinated building blocks to engineer lubricant additives for extreme pressure, low volatility, and inertness at elevated temperatures. Our material enables synthesis of cycloaliphatic fluorinated additives, which introduce significant thermal stability in base oil blends for high-speed machinery and vacuum systems. Its dual chlorine and fluorine functionalities allow downstream chemists to tailor its reactivity to produce high-molecular-weight lubricant molecules that maintain hydrophobicity and resist decomposition.

    Industry compliance standards

    • ASTM D2425 (Hydrocarbon Types in Lubricating Oils)
    • ISO 6743 (Classification of Lubricants, Industrial Oils, and Related Products)
    • DIN 51502 (Lubricants—Designation)
    • Restriction of PFAS in lubricants as per latest EU regulations

    Typical usage ratio

    • Used at 0.8–3% in specialty additive packages, with adjustments for base oil compatibility and target volatility thresholds defined by lubricant performance specifications.

    Downstream process integration

    • Introduced during additive pre-mix compounding, often post-reacted with fluorinated epoxides or polyethers to generate target functional groups, then blended with synthetic or mineral base stocks.

    Final product types

    • High vacuum pump oils for semiconductor manufacturing
    • Specialty greases for aerospace valve mechanisms
    • Sealed bearing greases for cryogenic environments
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    Certification & Compliance
    More Introduction

    Introducing 1,2-Dichlorotetrafluorocyclobut-1-ene: Experience from the Manufacturer

    Our Approach to Specialty Fluorinated Cyclobutene Manufacturing

    In the specialty chemicals world, precision and quality define trustworthy relationships. Working every day with fluoro-organic syntheses and niche cyclic compounds, our team dedicates years of hands-on experience to making substances like 1,2-Dichlorotetrafluorocyclobut-1-ene. This material appears in select applications where unique molecular design translates into performance beyond standard fluorochemistries. Our manufacturing process leans heavily on repeatable, high-purity output, because minor process deviations can cascade into real-world problems for our customers working with advanced polymers, specialty coatings, or fine-tuned chemical intermediates.

    1,2-Dichlorotetrafluorocyclobut-1-ene is not an everyday staple in the world of chemistry; its niche structure—two chloro and four fluoro substituents packed into the cyclobutene ring—offers a profile that supports innovation in several demanding industries. Creating compounds like this, our technical team has built processes that resist hydrolysis, avoid cross-contamination, and maintain consistent halogen balance even when scaling up batch volumes. Nothing replaces running purification columns in person, analyzing every fraction, and watching for signs of degradation or unwanted byproducts. These hands-on steps build experience, and the lessons translate into every drum that leaves our production rooms.

    Molecular Character and Why it Matters

    Anyone reading chemical catalogs can find cyclobutene derivatives with various halogenations, but not all are made clean, nor do they all retain the integrity required for downstream use. The configuration of 1,2-Dichlorotetrafluorocyclobut-1-ene, particularly its cis/trans isomerism and the location of both chlorine and fluorine atoms, has implications for everything from dielectric properties to resistance against aggressive solvents. Our shop floor is familiar with the ways trace impurities can compromise polymer cross-linking, catalysis yield, or the physical behavior of specialty coatings.

    Molecular purity is a direct measure of process discipline. After working extensively on fractional distillation and vacuum drying protocols, our team mitigates contaminant risk during every step, from feedstock selection to final filtration. This direct control means finished product maintains its defined melting point and avoids the slow decomposition seen with hastily-made analogs. Our customers tell us failures in purity or unpredictable behavior have cost them far more in lost research time or failed batches than any raw material savings. We take those lessons into each run.

    Application Realities and Industry Expectations

    Work with high-value organofluorines starts with a clear end-use in mind. 1,2-Dichlorotetrafluorocyclobut-1-ene plays a role in synthesizing films or elastomers with improved resistance to thermal or chemical stress. In semiconductor or display industries, the bar for cleanness sits higher than ever, and our clients bring rigorous analytical demands with their orders. For us, putting technical effort into sealed-system reactions, as well as regular reactor auditing, pays off in consistent product batches and high customer retention.

    When researchers specify this molecule, they're often aiming for improved dielectric constants, sharper thermal transition points, or halogen compatibility that's otherwise hard to achieve with more common cyclics. People on our technical team use real-world metrics—such as NMR spectral baselines or residual solvent analysis—to back up every certificate of analysis. In our experience, anyone looking to integrate this compound into a highly sensitive reaction won't accept guesswork or vendor hedging.

    The reality of scale-up brings its own lessons. Even for a compound used in relatively modest quantities, the leap from laboratory scale to a handful of kilograms uncovers weak spots. We spend as much time planning our batch routes and tracking raw material variability as we do troubleshooting new syntheses. That attention shows up in fewer batch failures, tight product specifications, and open dialog with every customer about their unique handling or formulation concerns.

    Specifications Rooted in Practice, Not Theory

    Current batches of 1,2-Dichlorotetrafluorocyclobut-1-ene match the kind of analytical scrutiny one expects from pharmaceutical feedstocks. Reproducible properties, controlled moisture content, trace metal screening, and minimized byproduct residues set a foundation on which R&D teams can confidently build. During our QC sessions, we regularly see how even seemingly trivial differences—minor IR peaks outside normal ranges, traces of partially-fluorinated relatives—can derail downstream project work.

    Most of our output arrives to customers as a stabilized, high-purity liquid or low-melting solid, housed in containers compatible with aggressive halogen handling. Over the years, we've worked out transfer and storage systems that preserve product integrity during transit, align with regulatory best practices, and avoid unnecessary plasticizers or secondary packaging materials. Shelf-life data emerges from real storage trials, not from optimistic projections. For those running continuous processes, every batch history is traceable right back to its first synthetic stage.

    Specifications reveal a product's journey. With this compound, customer-facing data come from detailed instrumental runs—proton and fluorine NMR, GC-MS profiles, water quantification by Karl Fischer titration—not from theoretical calculations or legacy paperwork. People interested in real-world outcomes want documents and vials that match the conversation, not surprises that slow progress on the lab bench or production line.

    Direct Experience Sets Us Apart from Distributors

    Manufacturers like us differ from distributors in more than just scale or facility ownership. Making this compound from base chemicals gives us in-house data on shelf stability, handling risks, and compatibility with storage infrastructure. Our systems can adjust to customer requests for tighter or looser spec windows, based on real outcomes rather than brokerage hedges.

    We've spent time troubleshooting liquid and solid handling, working closely with users to prevent glass etching, minimize vapor losses, and limit the electrostatic hazards familiar to anyone moving halogenated fluids. Because we're directly involved in the chemical routes, we see the benefit of strict raw material vetting and respond quickly to shifts in regulatory oversight, whether locally or globally. This isn’t possible for third-party resellers, who must forward concerns through opaque chains that slow down improvement or increase the risk of miscommunication.

    Our plant engineers and lab analysts gather feedback from end-users, plant supervisors, and regulatory inspectors. Adjustments go back to the process teams so that the next batch meets raised expectations without adding hidden costs or disruption. That cycle supports innovation not just on the large scale but in every small-order drum or kilogram shipped for custom synthesis, pilot projects, or scale-up trials.

    Key Differences from Other Cyclobutene Compounds

    Direct comparison between 1,2-Dichlorotetrafluorocyclobut-1-ene and common fluorocyclobutenes illustrates several unique features. Structural differences matter—the dual chlorine atoms influence molecular polarity, electronic structure, and reactivity in subsequent transformations. Our technical staff has seen how this molecule outperforms simple tetrafluorocyclobutenes in select applications, often where bond strength or halogen exchange come into play.

    Selectivity during downstream synthesis shapes everything. The position and type of halogen on the cyclobutene core affect not only physical properties but catalytic response, resistance to unwanted nucleophilic attack, and photochemical stability. Because our lab has direct access to a wide range of analogs, we’ve seen the subtle shifts in reactivity that emerge from chlorine placement or the total number of fluorines. These structural changes produce real-world results in polymer elasticity, flame resistance, and compatibility with other fluorinated building blocks.

    Industrial safety profiles vary between halogenated cyclobutenes. We've measured and documented vapor pressures, threshold limit values, and hydrolysis rates for each analog. Direct process knowledge means we provide handling and storage recommendations based on actual monitored incidents rather than theoretical hazard sheets.

    Not every project calls for our dichloro-tetrafluorinated cyclobutene. Some customers need single-chloro or hexafluoro rings. Over many years, we've cataloged which end-use environments—thermal, oxidative, or acidic—benefit most from the structural and electronic features found in this compound. Rather than pushing a universal solution, we work through options, sharing our operational knowledge, and letting data and experience guide decision-making.

    Troubleshooting and Process Guidance

    One of the benefits of dealing with the manufacturer comes during problem-solving. Laboratory researchers and process engineers regularly call us at the first sign of inconsistent yield, side reactions, or handling concerns. With full access to process parameters, feedstock logs, and real-time analytical data, our technical support comes from direct experience, not literature search alone. This close communication often prevents waste, shortens downtime, and sometimes even drives changes in our own production batch timing and packaging.

    Unexpected crystallization during winter shipments once triggered a redesign of our insulation and temperature-stabilized storage. After a customer reported trace byproduct in their final material, we returned to our oldest NMR files, traced the impurity to a change in cleaning protocols, and updated internal procedures. In another case, feedback on viscosity changes led to a tweak in pressure compensation valves on our transfer systems. Years of hands-on refining, testing, and customer cooperation build a dynamic production cycle—not a static list of specs and certificates.

    Response to Changing Regulatory and Market Demands

    Manufacturers occupy a front-row seat as regulations evolve around the world. New guidelines on halogenated compounds, shipment labeling, and occupational limits generate immediate requirements for infrastructure and paperwork. Our compliance officers work with every regional coordinator to keep shipments legal and safe, while our production planners build in lead time for destination-specific documentation and inspection. Since we handle the physical product, changes to labeling, MSDS data, or environmental reporting flow directly into our processes, not as an afterthought forced by distributors.

    Some of the most valuable technical partnerships have started when regulatory clampdowns forced large-scale users to look for new supply partners—ones who could pivot on short notice and validate compliance based on documented analytical histories and process transparency. Our recordkeeping, internal audits, and facility investments keep us in position to respond quickly to short-term disruptions or shifts in supply availability. During the past decade, repeated waves of new bans and restrictions have proven that direct control over synthesis keeps both product quality and user trust intact.

    Long-Term Investment in Capability and Knowledge

    The learning curve for manufacturing specialized cyclobutenes doesn’t end. Our crew invests in long-term skill building through regular lab upskilling, shared failure analyses, and process improvement workshops. Every technician and engineer learns from both successes and the occasional costly error, and the cycle of continuous improvement turns into operational reality. Practical expertise matters because daily plant experience sees the limitations of theoretical protocols when scaling up or sustaining output season after season.

    We've built up a resource library and hands-on mentorship programs so newer operators learn the significance of each process checkpoint, why analytical confirmation beats assumption, and how to document deviation so improvement never stalls. This investment reflects in reliable product performance, regular customer repeat business, and the ability to troubleshoot at any point in the customer's application window—from pilot plant through to full production.

    We also collaborate with external R&D partners and university labs to validate process changes, share toxicity findings, and expand the knowledge base around this and related compounds. Our approach aligns with the most current expectations for environmental stewardship, safe plant operation, and professional integrity across national borders.

    Technical Support for Users in the Field

    People choosing 1,2-Dichlorotetrafluorocyclobut-1-ene from a manufacturer expect support that goes beyond documentation. Our technical line opens directly to chemists and engineers who can answer questions about real-world reactivity, mixture stability, and the practical limits of different handling or processing approaches. For specialized projects, we work together to profile the best storage conditions, build use-by schedules matched to customer workflows, and guide recovery or disposal steps.

    We've spent time on customer sites, troubleshooting persistent ghost peaks in GC traces, helping validate vacuum transfer protocols, and occasionally lending glassware or gaskets for a critical batch run. This kind of involvement is a matter of professional pride. No spreadsheet or catalog ever outperforms a technician who understands the compound both chemically and operationally. Our responsibility as a manufacturer extends beyond simply shipping a drum. It involves building trust, sharing science, and fixing problems in real time.

    Feedback loops drive practical improvement. User observations about pour points, material compatibility, or reactivity empower us to fine-tune batch schedules, update packaging configurations, and adapt internal SOPs. Maintaining this level of responsiveness means clear allocation of technical resources and a culture that values each end-user’s input as a source of actionable information and future reliability.

    Outlook for Collaboration and Future Development

    As specialty chemicals continue to play a larger role in technology, energy, and advanced manufacturing, compounds like 1,2-Dichlorotetrafluorocyclobut-1-ene exemplify the intersection between molecular innovation and execution excellence. Our focus has shifted steadily from batch scale perfection to greater flexibility in lot sizes, logistical planning, and regulatory compliance. The upshot is a responsive manufacturing environment where modifications can be vetted, piloted, and delivered in a time frame that keeps projects moving—not delayed or held up by supply chain runarounds.

    New market demand brings requests for custom derivatives, alternative packaging, and even regulatory documentation for new geographies. We've set up project teams able to launch pilot programs and redirect resources based on shifts in demand or urgent user needs. By keeping conversations open with developers and technical specifiers, we continue to learn where new functionalities—from altered halogen ratios to isotopically labeled variants—might help next-generation materials and processes.

    Every facility tour, customer audit, or post-shipment technical call brings opportunities to see how our materials perform in real-world settings. This feedback not only refines our manufacturing, but also serves as inspiration for next-generation fluorinated cyclobutene compounds. Collaboration fuels incremental improvements, and moving forward, each batch of 1,2-Dichlorotetrafluorocyclobut-1-ene carries both the knowledge of experience and the energy of ongoing discovery.

    Closing Statement on Experience and Reliability

    As a direct manufacturer, we stake our reputation on the reliability, performance, and safety of every shipment. For organizations seeking true partnership in the field of specialty fluorinated cyclobutenes, our doors remain open to questions, detailed technical support, and collaborative R&D. Years of refining the process, working to real end-user requirements, and investing in people and technology have made all the difference. Those looking beyond simple commodity supply find the most value in a relationship based on transparency, backed up by experience at every step of the synthesis, analysis, and delivery cycle.