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1,2,4,5-Tetrafluorobenzene

    • Product Name 1,2,4,5-Tetrafluorobenzene
    • Alias 1,2,4,5-Tetrafluorobenzene
    • Einecs 206-402-9
    • 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

    392846

    Name 1,2,4,5-Tetrafluorobenzene
    Cas Number 327-54-8
    Molecular Formula C6H2F4
    Molecular Weight 150.08
    Appearance Colorless liquid
    Boiling Point Celsius 84-85
    Melting Point Celsius -46
    Density G Per Cm3 1.444
    Refractive Index N20 1.410
    Flash Point Celsius 18
    Pubchem Cid 12033
    Smiles C1=C(C=C(C=C1F)F)F
    Inchi InChI=1S/C6H2F4/c7-3-1-5(9)6(10)2-4(3)8
    Solubility Insoluble in water
    Synonyms 1,2,4,5-Tetrafluorobenzol

    As an accredited 1,2,4,5-Tetrafluorobenzene 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 1,2,4,5-tetrafluorobenzene, sealed with a screw cap, labeled with hazard warnings.
    Shipping 1,2,4,5-Tetrafluorobenzene should be shipped in tightly sealed containers, protected from moisture and incompatible substances. It is typically classified as a hazardous material and should be transported according to relevant regulations (such as DOT, IATA, IMDG). Use appropriate hazard labels and ensure documentation includes chemical identification and emergency procedures.
    Storage 1,2,4,5-Tetrafluorobenzene should be stored in a cool, dry, well-ventilated area away from sources of ignition and incompatible substances such as strong oxidizers. Keep container tightly closed and properly labeled. Store away from direct sunlight and moisture. Use appropriate materials for storage, such as glass or fluoropolymer containers, to prevent degradation or reactions. Follow all relevant safety regulations and guidelines.
    Application of 1,2,4,5-Tetrafluorobenzene

    Applications of 1,2,4,5-Tetrafluorobenzene in Industrial Manufacturing

    1,2,4,5-Tetrafluorobenzene serves as a highly functionalized intermediate in the synthesis of advanced industrial chemicals. Our direct supply from manufacturing ensures consistent quality and traceability. Below, we outline key industrial segments utilizing this material, focusing on compliance, formulation, integration points, and downstream product profiles specific to each sector.

    1. High-Performance Fluorinated Polymer Synthesis

    Manufacturers use 1,2,4,5-tetrafluorobenzene as a monomer building block in the production of specialty fluoropolymers for harsh operating environments. The material introduces targeted fluorine atoms into polymer backbones, providing chemical resistance and thermal stability required for critical components in semiconductor and chemical processing equipment. Processing requires precise stoichiometry control during co-polymerization to ensure desired molecular architecture.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for polymer production
    • REACH Annex XVII regulation on fluorinated substances in the EU
    • RoHS Directive for electrical and electronic applications
    • SEMATECH guidelines for semiconductor-grade materials

    Typical usage ratio

    • 5–20 mole% as a comonomer with tetrafluoroethylene or perfluoroalkoxy precursors, adjusted based on target polymer properties

    Downstream process integration

    • Introduced in the monomer feed stage to proprietary fluoro-monomer co-polymerization reactors
    • Polymerization proceeds under controlled temperature and pressure to ensure incorporation efficiency
    • Subsequent purification by devolatilization and washing
    • Final compound blending and processing into semi-finished goods

    Final product types

    • Fluorinated elastomers for O-rings and seals
    • Semi-crystalline fluoroplastics for chemical tubing
    • High-purity films used in microelectronics
    • Corrosion-resistant linings for process tanks

    2. Agrochemical Intermediate for Fluorinated Active Ingredients

    Agrochemical manufacturers rely on 1,2,4,5-tetrafluorobenzene to construct advanced fluorinated scaffolds present in next-generation herbicides and fungicides. The compound reacts efficiently in aromatic substitution and cross-coupling steps, enabling selective introduction of fluorinated rings that enhance metabolic stability and biological activity in final active ingredients. Batch record control and analytical verification are critical for downstream regulatory filings.

    Industry compliance standards

    • FAO/WHO Joint Meeting on Pesticide Specifications (JMPS) guidelines
    • ISO 17025 QC protocols for active ingredient purity
    • EPA 40 CFR Part 180 residue tolerances for agricultural chemicals (USA)
    • China GB 2763 Maximum Residue Limits

    Typical usage ratio

    • 0.5–5% by weight in multi-step synthesis, adjusted according to target fluorine incorporation

    Downstream process integration

    • Introduced in the aromatic fluorination and coupling reaction step of technical-grade active synthesis
    • Incorporated before final downstream derivatization or formulation into end-use agrochemicals
    • Fractional crystallization and chromatography for intermediate isolation
    • Final blending into dispersible granules or EC formulations

    Final product types

    • Fluorinated triazole fungicides
    • Next-generation phenoxy herbicides
    • Seed treatment microcapsules
    • Low-leaching soil amendment formulations

    3. Pharmaceutical Intermediate for Fluorinated Drug Synthesis

    Pharmaceutical API manufacturers utilize this compound as a precursor during the synthesis of complex fluorine-containing small molecules. Precise incorporation of fluorine atoms via nucleophilic aromatic substitution or cross-coupling enhances bioavailability, metabolic stability, and target selectivity in pharmaceutical actives. All handling and documentation comply with cGMP and validated cleaning protocols to meet stringent impurity thresholds.

    Industry compliance standards

    • ICH Q7 GMP guidelines for API manufacture
    • Ph. Eur. and USP monograph relevant to fluorinated intermediates
    • DMF submission requirements in FDA 21 CFR 314
    • EHS compliance with local pharmaceutical regulations

    Typical usage ratio

    • Varies 0.2–2 molar equivalents in key step transformations, optimized per molecule design

    Downstream process integration

    • Enters at protected ring formation or fluorine-aryl coupling stage
    • Downstream reduction, hydrolysis, or functional group exchange as needed
    • Purification via preparative HPLC and solvent extraction
    • Final conversion to API via late-stage coupling or salt formation

    Final product types

    • Fluorinated kinase inhibitors
    • Neuropharmaceutical intermediates
    • Anti-inflammatory compound scaffolds
    • NCE (new chemical entity) pilot batches for clinical trials

    4. Specialty Material Precursor for Liquid Crystal Displays (LCDs)

    Producers of liquid crystal intermediates incorporate 1,2,4,5-tetrafluorobenzene as an aromatic core for nematic and smectic liquid crystal molecules, enabling fine-tuning of dielectric anisotropy and birefringence in display applications. The material’s high purity supports thin film quality assurance in display cell production. Manufacturing lines require tight process controls to safeguard against contaminant introduction affecting image performance.

    Industry compliance standards

    • IEC 62471 for photobiological safety of display materials
    • RoHS requirement for restricted substances
    • JIS C 62601 for LCD material evaluation
    • Customer-specific incoming QC and light leakage tolerance

    Typical usage ratio

    • 1–8% by weight in the synthesis of core-fluorinated aromatic intermediates for display-grade mixtures

    Downstream process integration

    • Introduced during condensation or alkylation stage in synthesis of liquid crystal monomers
    • Purification by fractional distillation and recrystallization tailored for display specs
    • Blending into multi-component liquid crystal mixtures under inert atmosphere
    • Batch testing of electro-optical response curves prior to shipment

    Final product types

    • TFT-LCD liquid crystal mixtures
    • OLED alignment layer additives
    • High-contrast reflective display components
    • Wearable display cell materials

    5. Electronic Chemical Precursor for Semiconductor Manufacturing

    Semiconductor material suppliers apply 1,2,4,5-tetrafluorobenzene in the synthesis of specialty etching gases and advanced dielectric materials. Selective fluorination processes require this compound to act as a key aromatic core, increasing chemical inertness and thermal endurance essential for microfabrication stages such as etch and deposition. Quality assurance includes trace impurity analysis and packaging in cleanroom conditions.

    Industry compliance standards

    • SEMI C3 standard for electronics-grade materials
    • ISO 14644 for cleanroom processing
    • RoHS/REACH conformity verification
    • Internal PPAP (Production Part Approval Process) for component-level validation

    Typical usage ratio

    • 1–15% in custom fluorinated compound synthesis depending on required volatility and reactivity

    Downstream process integration

    • Enters in controlled halogenation or Suzuki coupling stages
    • Further processed to etching agents or dielectric polymers via multi-step transformations
    • Inline QC for trace metallics and volatile organic content
    • Packed in contamination-controlled drums or ampoules for fab delivery

    Final product types

    • Low-k fluorinated polymer dielectrics
    • Specialty photoresist solvents
    • Semiconductor-grade etchant blends
    • Protective nanocoatings for MEMS devices
    Free Quote

    Competitive 1,2,4,5-Tetrafluorobenzene prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1,2,4,5-Tetrafluorobenzene: Reliable Chemistry from the Manufacturer’s View

    Stepping into industrial-scale chemistry does not always mean choosing the most talked-about molecules. Strength often comes from steady, unglamorous compounds, worked over and trusted through years of real-world factory use. 1,2,4,5-Tetrafluorobenzene belongs in that reliable camp—a compound many newer players overlook, but which we’ve worked with for decades in our facilities. Its value unfolds in application, not hype. If you’ve handled similar hexafluorobenzenes or trifluorobenzenes, you’ll notice 1,2,4,5-tetrafluorobenzene quickly distinguishes itself in purity, balance of reactivity, and adaptability.

    What We Make, and Why Consistency Matters

    We run production using a fixed-batch process designed specifically for 1,2,4,5-tetrafluorobenzene’s quirks. Standard model: colorless liquid at room temperature, with a melting point low enough to stay workable even in cooler conditions. Years ago, we found instability in early synthesis routes. Impurities in those days came from uncontrolled fluorination or incomplete separation, usually visible as spots in GC analysis or faint color tints in the finished product. We reengineered our fluorination controls, switching to higher-quality feedstock and purifying with custom column packs—those tweaks paid off. Over time, we found the sweet spot: a product with stable boiling range and nearly neutral odor so operators can actually enjoy working with this molecule instead of fighting fumes.

    We deliver with a minimum assay at 99.5%. No tricks need to cover yellowing or haze, which shows up if you cut corners on scrubbing the byproducts. The color always runs water-clear in standard glass. This isn’t trivial, especially on larger runs. It comes from repeated close work with the process, not from wishing it so.

    Critical Properties in Lab and Plant Settings

    Anyone who’s worked in a cramped pilot line knows the headaches that come with vapor pressure spikes, especially when you’re working at the scale this product demands. 1,2,4,5-Tetrafluorobenzene keeps a steady hand in the condenser. It boils at around 85°C under atmospheric pressure, which means anyone with standard overheads can handle it without tuning systems obsessively for each batch. It doesn’t flash off at room temperature, but won’t stay stubbornly stuck in your columns or lines, giving smooth flow-through and minimizing residue. This is a relief when you’re pulling 20 liters through glass columns on a high-humidity day.

    Reactivity always shapes a product’s personality. Some fluorinated benzenes lean too heavily into chemical passivity, so they offer little to chemists who need a building block—a blank slate. On the other hand, over-activated benzenes can turn procedures unpredictable, complicating runs with surprise side reactions and increased safety challenges. Our 1,2,4,5-tetrafluorobenzene stands steady in that middle zone: high enough electronic activation to make targeted aromatic substitution accessible, but not so eager that you lose control. This lets industrial and specialty chemists approach it confidently for both nucleophilic and electrophilic substitution, without the runaway effects seen in pentafluoro variants.

    From a physical handling point of view, we keep moisture content painstakingly low, regular Karl Fischer checks confirming under 0.05%. This prevents unwanted hydrolytic side-reactions, especially in derivatization or metalation setups. There’s no way to cut corners here; leaving out that check will bite you during scale-up or storage.

    Functional Use Cases from Real Factory Floors

    The story of 1,2,4,5-tetrafluorobenzene isn’t told through abstract applications, but rather by the teams leveraging it on real floors every week. Production chemists in pharmaceuticals take advantage of the symmetrical substitution pattern, favoring its use as a starting component in advanced intermediates. Labs chase fluoroarene core structures for new drug bases, crop protection agents, and even high-stability polymers. We’ve shipped multi-metric-ton lots to specialty electronics producers, who need this clean backbone for liquid crystal and OLED projects. The appeal: minimal side-products and predictable handling, saving hours that would otherwise go into purification or endless safety checks.

    Fine chemical plants come to us with stories of earlier bad experiences—blocked columns, unpredictable yields, or batch variability. Those problems usually tie back to batch-to-batch inconsistencies or excessive microcontaminants in the aromatic core. You just can’t tolerate those issues in applications that require tight environmental controls. Clients making pharmaceutical intermediates tell us every time: give us a molecule we don’t have to watch like a hawk, one that behaves, and can stand up to modern regulatory and purity demands. Our process delivers these expectations, cut from years of scale-up and close attention to reactor cleaning and monitoring.

    In the laboratory, synthetic chemists have pushed this compound far, using it in Suzuki and other cross-coupling reactions to build out intricate aryl scaffolds. It’s become the default fluorinated precursor for many research arms, particularly at universities and start-ups focusing on sustainable chemistry. Familiarity with the molecule opens up routes that competing tetrafluorobenzenes either can’t match for yield or end up costing more by demanding additional purification steps.

    How Our 1,2,4,5-Tetrafluorobenzene Stacks Up

    Comparing our product to others on the market, the discussion always circles back to reliability. 1,2,4,5-tetrafluorobenzene shares broad chemical structure with its isomers—1,2,3,4- and 1,2,3,5-tetrafluorobenzene—but behaves distinctly in both reactivity and processing. Our product’s symmetrical structure allows for easier entry points for directed synthesis, favoring two-site substitution; contrast that with ortho-substituted tetrafluorobenzenes, where substitution is less predictable, and you deal with more byproducts to isolate out every run.

    We keep our evaporation losses notably lower, too. A lot of competing batches lose up to 4% on storage and transfer, especially in poly liner drums or while piping under positive pressure. Our containers and handling protocols, assembled from years of material compatibility trials, keep loss well under 1.5% throughout shipping and warehouse staging. This becomes a real-world cost consideration, not something you see in a typical brochure.

    In direct application, you see smoother solvation behavior—technicians avoid the clouding or unexpected gel phases that sometimes hit with less pure competitors. Get in the habit of screening incoming lots, and you pick up on these batch nuances fast.

    What Years of Experience Have Taught Us About Its Role in the Industry

    Consistency builds trust. Few producers stick to running the same reactions, day after day, controlling for minor weather or pressure shifts in the plant. We keep up with these details for every 1,2,4,5-tetrafluorobenzene batch, logging atmospheric pressure drops, temperature swings, and batch aging data so our customers aren’t left holding material with erratic performance. Our lab teams run every consignment through NMR, GC-MS, and moisture test lines before anything moves offsite. Production decisions follow this consistency rule, not quarterly marketing goals.

    Years ago, field customers in the electronic chemicals sector demanded sharper quality edges—lower ion counts, absence of trace chlorides, and margins on metallic impurities that traditional organic labs rarely monitored. We answered by building in a fluoride-specific clean room packing section, training every operator not just on GMP rules, but real field feedback. The payoff: client batches no longer show up red-flagged from incoming QC.

    Bottlenecked processes often lay hidden until a supplier delivers off-spec. We measure our runs not by how fast we can ship, but how dependable the composition remains from the first to hundredth drum. That discipline means we avoid late calls for “material adjustment” or the firefighting that comes when critical runs go off-spec hours before a product launch. This reliability makes our molecule the first choice for high-risk, high-yield setups.

    Sustainability and Future Directions

    Over years at scale, fluorinated aromatics raise real questions about safety and sustainability. No factory manager, production chemist, or corporate buyer wants to fall behind on modern regulatory frameworks. The global shift to safer, less environmentally persistent materials guides our R&D track. We focus now on closed-loop solvent recovery and waste minimization on all lines where we run tetrafluorobenzene. Every cycle, we screen for recapture rates and contain the byproducts upstream, instead of leaving them for downstream treatment.

    There’s another zone of progress in resource conservation. Instead of relying on legacy synthesis with high-energy input or aggressive acids, we have transitioned to milder fluorination agents and staged process heating. Electricity consumption shows a steady drop, recorded in quarterly reports, and operator turnover stays low because they trust our handling systems. Routine audits keep us on top of possible upsets, from pump seal transitions to thermal control misfires.

    We also invest in better training for our operators, moving beyond compliance and instilling a sense of pride in producing a clean, consistent product. You find fewer spills, quicker problem-solving on the line, and a working environment where issues get addressed before they turn into slowdowns or lost lots. Clients notice: cleaner lots mean fewer headaches, predictable schedules, and less paperwork tied to unexpected adjustments.

    Direct Perspective: What Sets Reliable Manufacturing Apart

    Every chemical manufacturer claims purity and quality until things go wrong. The difference appears when pressure mounts—orders spike, supply lines run tight, and clients demand same-day answers on batch traceability or deviation records. Years of real manufacturing experience have taught us the absolute importance of traceable process steps, batch discipline, and operator accountability. 1,2,4,5-tetrafluorobenzene gives us the perfect canvas to put these practices in place, thanks to its stability and clear output signals during synthesis and purification.

    On-site, every batch we make receives its own unique process log, marked from initial reagent charge to final drum closure. Operators record not just numbers but visual and olfactory cues: color, clarity, and odor, noting even minor shifts. Some clients laughed at the thoroughness early on, but those same records resolve disputes rapidly when clients notice odd runs or errant test results on their end. This approach minimizes uncertainty, improves trust, and keeps partnerships strong year after year.

    Field Solutions: Tackling Common Industry Hurdles

    Every plant faces logistics bottlenecks—transfers, storage, paperwork, and equipment cleaning chew into usable production time. With tetrafluorobenzene, the most recurring concern crops up when new users swap over from unfamiliar grades or new suppliers who can’t deliver repeatable quality. We see clients testing new competitors to shave a few cents off per kilo, only to return after weeks of lost yields, expensive purification, or ruined downstream batches. It’s a hard but common lesson: cut-rate materials cost far more in rework and wasted man-hours than they save upfront.

    We help customers onboard quickly with tech support, giving hands-on guidance for plant adjustments or process validation steps. Having walked countless lines ourselves, we never suggest changes we wouldn’t trust with our own operators and gear. Field staff keep in close contact through each trial run. Real-world test batches bring the best feedback, so we meet regularly with process engineers and chemists to let their observations shape future process tweaks. The learning truly occurs side by side.

    Looking Ahead: What Quality Means in a Changing World

    As environmental pressures rise and technical demands get sharper, we adapt with real attention to the science and the people handling these molecules day to day. 1,2,4,5-Tetrafluorobenzene has carried through several generational shifts of industrial need, from early pharma intermediates to cutting-edge electronics and specialty agrochemicals. Each year, demands rise for steadier metal profiles, lower halogen content, and higher batch transparency. We answer by tightening purification steps and automating key controls, but never at the expense of the hands-on, eyes-on operating wisdom that turns good product into exceptional material.

    Our focus roots itself in direct experience and consistent field feedback. The value of our 1,2,4,5-tetrafluorobenzene does not rest on marketing or trend-chasing. Instead, it comes from reliability at scale, a transparent production process, and the know-how to adapt operations as both clients and global standards evolve. Customers who bet on stability, not just price or theoretical benefits, find results in every drum and every project, cycle after cycle.

    Continuous Improvement: The Unseen Edge in Manufacturing

    Real manufacturing takes place between delivery schedules and lunch breaks, between day shift and night shift, when every issue not solved in the moment creates headaches for the next team. Continuous improvement sits at the center of our process—a value passed down from the shop floor, not just agreed on in boardrooms. Operators submit real-time suggestions, and our technical group runs post-mortem reviews on each outlier batch. Improvements come in small steps: better filter swaps, smarter venting setups on drums, and tighter routine cleaning regimens.

    Feedback from seasoned plant chemists holds more value than any external audit. We roll out pilot changes first, then scale up lessons that show proven results. This approach doesn’t chase trends; it cuts inefficiency and strengthens product reliability, batch by batch, year by year. Our track record in high-demand industries proves that technical discipline and people-powered solutions make the real difference.

    Customer Partnership as Foundation, Not Slogan

    We treat the relationship with every buyer and end-user as a partnership, supported not by hollow promises, but ongoing technical backing and openness to change. Most customers want confidence that the molecule they order this quarter will match the one they get next year and beyond. That trust saves money, time, and frustration over months and years of projects.

    We prioritize responsive support: real chemists and logistics leads answer questions, provide batch records, recommend adjustments based on plant setup or changing regulatory needs, and follow up after shipments. While outsiders may view this as added overhead, we see it as essential insurance—early warning against scale-up issues, compliance missteps, or simple miscommunication that spirals into costly downtime.

    Summary of Direct Value from the Manufacturer’s Bench

    Our time with 1,2,4,5-tetrafluorobenzene has taught us that quality compounds are built, not bought. Years of process experience, operator pride, and technical discipline shape each batch far more than any abstract standard ever could. In every application, from lab-scale synthesis to full production runs in pharmaceutical, agrochemical, and electronics sectors, this molecule offers reliability grounded in hands-on industry experience. Our product stands out not by chasing trends, but by providing what plants and labs need: consistent behavior, predictable reactivity, and trustworthy supply.

    Clients come back to us for this reason alone. They know what arrives matches what their process demands. We keep to that discipline, always focusing on measured improvement and proven results—values grown from the factory floor, and respected by those who depend on us most.