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HS Code |
270969 |
| Chemical Name | 1,2-Bis(1,1,2,2-tetrafluoroethoxy)benzene |
| Molecular Formula | C10H6F8O2 |
| Molecular Weight | 332.14 g/mol |
| Cas Number | 501-65-5 |
| Appearance | Colorless liquid |
| Boiling Point | 221 °C |
| Density | 1.59 g/cm3 |
| Solubility | Insoluble in water |
| Refractive Index | 1.379 |
| Flash Point | 92 °C |
| Synonyms | o-Phenylene bis(1,1,2,2-tetrafluoroethylether) |
As an accredited 1,2-Bis(1,1,2,2-Tetrafluoroethoxy)Benzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams of 1,2-Bis(1,1,2,2-Tetrafluoroethoxy)Benzene, sealed with a PTFE-lined cap. |
| Shipping | **Shipping Description:** 1,2-Bis(1,1,2,2-Tetrafluoroethoxy)Benzene should be shipped in tightly sealed containers, protected from moisture, heat, and direct sunlight. Use appropriate UN-rated packaging. Ensure clear labeling as a potentially hazardous chemical, following all relevant transport regulations (IATA, IMDG, DOT). Include safety data sheets and emergency contact information with the shipment. |
| Storage | 1,2-Bis(1,1,2,2-tetrafluoroethoxy)benzene should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat sources and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Ensure that the storage area is clearly labeled and equipped for chemical safety, following all standard chemical handling protocols and local regulations. |
Applications of 1,2-Bis(1,1,2,2-Tetrafluoroethoxy)Benzene in Industrial ManufacturingAs the direct manufacturer of 1,2-Bis(1,1,2,2-Tetrafluoroethoxy)Benzene, we support precise downstream industrial needs with material batch traceability and technical recommendations. Below are key application sectors utilizing our advanced fluorinated intermediate, based on validated demand in specialized manufacturing routes. 1. High-Performance Liquid Crystal MaterialsFluorinated ethoxy benzene derivatives support synthesis of high birefringence and wide-temperature-range liquid crystals. Display panel manufacturers incorporate this raw material to adjust dielectric anisotropy, viscosity, and alignment properties essential for thin-film transistor (TFT) and active-matrix display production. The compound enters proprietary reaction schemes to achieve target molecular configurations, thereby influencing electro-optical response in the final display application. Industry compliance standards
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2. Special Fluorinated Polymer SynthesisPolymer manufacturers use this material as a co-monomer or end-capping agent in the creation of specialty fluoropolymers. These target extreme chemical resistance, low dielectric constants, and high thermal stability. Applications cover insulation materials for microelectronics, fuel cell membranes, and corrosion-resistant coatings. The compound’s introduction influences both backbone flexibility and end-group performance in the resultant polymer matrix. Industry compliance standards
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3. Solvent Compatibility Enhancers in Photoresist ProductionPhotoresist manufacturers select fluorinated benzene derivatives to modulate the solubility and surface tension properties of advanced photoresist compositions. Our raw material enters the production as a performance modifier, enabling better lithography profiles and defect minimization in high-resolution semiconductor processing. Its presence can reduce line edge roughness and improve pattern transfer efficiency, which is critical for sub-10nm technology nodes. Industry compliance standards
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4. Intermediates for Pharmaceutical SynthesisChemical manufacturers employ this fluorinated benzene derivative as a modular intermediate in the development of active pharmaceutical ingredients where increased metabolic stability or improved bioavailability is required. It serves as a building block in custom synthesis of targeted small molecules, notably in the design of CNS-active and oncology-related compounds where fluorine’s role in modulating molecular behavior proves critical. Industry compliance standards
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5. Specialty Coating Additive for Electronic ComponentsComponent and coating manufacturers utilize this compound as a performance additive in anti-reflective, hydrophobic, and dielectric coatings. Its inclusion in formulation aids in achieving thin film coatings with controlled refractive index and chemical inertness, critical for micro-optics, circuit protection, and sensor encapsulation. The compound augments formulation systems based on silanes, acrylates, or other fluorinated binders. Industry compliance standards
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6. Functional Additive in Electrochemical DevicesProducers of advanced batteries and electrochemical capacitors rely on this compound for tuning electrochemical stability, reducing gassing, and optimizing separator wetting. The integration occurs in cell assembly labs where reliability and long cycle life remain paramount. The compound’s combination of chemical inertness and controlled polarity enables precise control of interface reactions in high-voltage lithium-ion and supercapacitor cells. Industry compliance standards
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Producing 1,2-Bis(1,1,2,2-tetrafluoroethoxy)benzene is a task that asks for close attention at every turn. This compound doesn’t end up as a bulk commodity or a warehouse leftover. Its design fits precise applications in advanced chemical synthesis and specialty polymer modifications. During manufacturing, every batch requires monitoring for purity. Fluorinated compounds can surprise inexperienced hands—impurities get stubborn, discoloration sneaks in if the process goes unchecked, and only rigorous quality controls bring out a high-grade final product.
You can spot the differences between simplistic diaryl ethers and this tetrafluoroethoxy-armed structure immediately once you step into the lab or the field. By adding multiple fluorine atoms along the ethoxy chains, the entire molecule responds differently to common reagents. Thermal stability jumps. Resistance to acids and oxidizers increases. Changes in electronegativity create opportunities in places where more basic ethers run up against chemical limits. With this compound, designers of liquid crystal intermediates, high-voltage dielectric fluids, and certain pharmaceutical intermediates look for properties that less elaborately fluorinated molecules simply do not provide.
Let’s talk specifics from hands-on experience at production scale. 1,2-Bis(1,1,2,2-tetrafluoroethoxy)benzene often crystallizes as a solid that’s neither sticky nor hygroscopic—this matters during storage and packaging. The melting point remains consistent from batch to batch once the raw material integrity is right and the process controls are well-developed. Our runs have produced it in colorless to very pale yellow flakes, a visual cue we use as the first bullet-point check for purity.
Purification stands out as the true test of a manufacturer’s experience. High-performance liquid chromatography and low-pressure distillation take turns to reach lab-confirmed purity above 99%. Lesser producers relying on shortcut purification deliver cloudy oil; end users see their reactions stall or create off-products. We believe every gram counts, and it feels personal every time a customer returns after a successful synthesis or formulation using our compound.
Industrial users show up with sharply defined lists of requirements. They want a coupling agent that shrugs off electrolytic decay, a backbone for polymers meant to handle challenging environments, or a fine chemical that synthesizes into non-stick coatings or next-generation pharmaceuticals. As a manufacturer faced daily with these requests, we learned flexibility matters little unless the compound performs consistently in frontline processes. Minor drifts in water content, trace metal contamination or misplaced isomeric side-products—these details upend downstream yields and cause users big headaches.
This bis-ether’s positions on the benzene core let ring substitutions slip into place without coaxing, giving chemists control in multi-step syntheses. Tetrafluoroethoxy arms take center stage in engineering the next wave of high-function polymers that need extreme weather or electrical resistance. Unlike basic ethers, these substitutions block environmental degradation and give finished products a longer working life span—especially in demanding electronics or protective surface treatments.
Many people outside the field might mix up 1,2-bis(1,1,2,2-tetrafluoroethoxy)benzene with simpler ethoxybenzenes or even mono-fluorinated versions. Fluorine content changes the game entirely. Most standard ethoxy compounds break down or react where this molecule keeps its backbone straight. Lateral fluorination on both chains ramps up stability under UV, in oxidative washes, and through temperature swings well beyond 150°C. We’ve seen it firsthand during thermal cycling and stress testing performed for polymer customers. Lesser compounds degrade, off-gassing small molecules and turning yellow while this one holds its own.
The molecular geometry here means electron density stays low around the benzene ring, which turns out to be exactly what specialty resin developers and pharmaceutical researchers often want. The result is selectivity and reactivity in one package—allowing processes that less substituted molecules simply cannot support. There’s no trade-off between resistance and reactivity, and this makes it far more valuable for those building up novel chemical libraries or pushing boundaries with fluorinated building blocks.
Our team has watched regulations around fluorinated aromatic compounds sharpen year over year. Persistent environmental pollutants from poorly managed fluoroaromatics push policy changes, and manufacturers who don’t invest early in containment and tracking find themselves on the wrong side of regulators fast. We built closed-cycle systems, solvent reclamation, and rigorous waste neutralization into our line before many peers, because we saw lasting trust was built on action not promises. Customers increasingly want to see actual process records, not generic assurances—they read certifications, look for chain-of-custody, and want traceability from basic starting materials to their shops or bench.
Meeting compliance on composition and byproducts doesn’t make for flashy marketing copy, but it makes a difference to technical managers who sign the purchase orders. From REACH to TSCA assessments, we pulled together analytical records, impurity profiles, and detailed batch logs so customers facing audits or regulatory reviews don’t get left out in the cold. When the end application involves electronics, medical research, avionics or sensitive coatings, people can’t risk uncontrolled impurities or questionable provenance. Our real-world relationships are built by helping solve a downstream technical snag or rushed documentation request, not just through promises of high performance.
Many outside the process side don’t realize the difficulty in handling multistep fluorination. Each step of adding strong electron-withdrawing groups can increase yields—only if you keep a close eye on the reaction exotherms and maintain very dry, oxygen-free conditions. We’ve had plant trials where even a minor slip in temperature control shaved several points off the crude yield, only to be identified through off-spec color or faint impurities in NMR spectra. It prompted design upgrades, better temperature mapping, and the addition of analytical checkpoints mid-reaction.
We never underestimate the value of in-process data. By tracking GC analysis and product color at regular intervals, we cut rework costs and reduce solvent use. Our team moved from batch records on paper to fully digital logs, which makes comparing outcomes far simpler and helps troubleshoot when a customer comes back months later needing batch history to solve their own customer issues.
Manufacturers learn most from the problems that appear unexpectedly. One year, off-ratio batches showed up when a solvent recycling step persisted a little longer than intended, shifting the water content and trapping more residual acids in the final product. We built a feedback loop—immediately adjusting purification specs, then updating our SOPs. The improvement didn’t just protect our customers; it protected our tech operators and reduced wasted effort at every stage. Over time, practices like this shape company culture. Plant engineers, shift chemists, lab techs—everyone owns a slice of the end result, and steady upgrades lower error rates.
Standardized training for all staff helps prevent knowledge gaps—every operator needs to know how to spot a temperature excursion, how to sample for analysis fast, and what to do if a batch starts to look different. Having been through plenty of customer site visits and audits, we know customers can tell which producers simply talk about quality and which ones prove it every day on the floor. Some buyers even request direct access to our batch history and testing logs; we treat these as partnership-building steps, not obstacles.
Our best long-term relationships always involved a technical hitch or a field question that regular traders can’t solve. Buyers often reach out with questions such as why a reaction seems slower, or why the downstream yield doesn’t match literature—often, these point to nuanced batch differences or storage conditions, not basic grade. Having technical staff on call who can read a chromatogram or check an NMR alongside the customer turns a basic purchase into an ongoing relationship. We supply spectral reference data with each order; sometimes a phone call sorts out a possible cross-contamination, saving days of troubleshooting at the user’s end.
Field support isn’t limited to resolving issues. We advise on scaling up from gram to kilogram batches; this might mean adjusting solvent ratios, managing heat loads, or pointing out equipment compatibility risks. Over time, process engineers and formulation chemists start to count on advice that’s rooted in daily production—not just sales language. Reports from the field also show us new applications—sometimes customers combine our molecule with novel catalysts, uncovering new reactivity or resilience we hadn’t yet showcased.
Continued feedback from industrial and research users keeps us on our toes. Some applications push beyond what we predicted when the molecule first rolled off our line. In high-voltage insulation, this compound’s stability under corona discharge and humidity cycles earns it a reputation no basic ether matches. In certain synthetic routes for advanced pharmaceuticals, the unique electron distribution around the benzene ring changes selectivity in aromatic substitutions in ways traditional ethers—lacking those four fluorine atoms—cannot. We’ve watched as teams in both academia and industrial research circle back, ordering larger quantities after small-scale proof-of-concept syntheses, as they chase the benefits of greater specificity and resilience.
Coating manufacturers and advanced optics developers have seen less yellowing, higher transparency, and improved weather resistance using resin systems that include our compound. In our experience, formulation chemists keep trying to match those characteristics with other materials, looking for easier supply or cheaper alternatives, only to find degradation sets in faster or electrical leakage rates climb. For customers building products with 15 or 20-year lifespans in mind, consistency isn’t a luxury. By staying closely engaged with these users—sharing real-world performance data, discussing storage logistics, and forecasting annual requirements together—we help them plan confidently and hit their own demanding project targets.
Demands for greener processes and tighter oversight over fluorinated materials define much of the innovation and investment now rippling across the industry. Environmental teams want to see traceability, lower emissions, and full lifecycle declarations. Traditional cost-focused procurement now shares the stage with sustainability audits and scope 3 emissions demand. Transitioning to closed-loop solvent systems, reclaiming off-gas, and working with downstream partners on collection and destruction programs make the manufacturing process as relevant as the molecule itself. End-users rarely see plant infrastructure upgrades or next-generation emission scrubbers, but these investments keep the door open for long-term supply relationships in heavily regulated markets.
At the same time, innovation in application development means we need to anticipate needs before the design engineers get in touch. We keep an eye on patent literature and R&D journals, looking for new trends in functional polymers, drug discovery, or next-generation electronics that may require modifications to our production. In this line of work, being responsive isn’t just about meeting basic requests—it’s about having the confidence and knowledge, from ground-level chemistry to commercial agreements, ready to support partners as they confront emerging challenges.
Reliability takes shape one test at a time. For each batch, we follow through with multilayer testing—starting at the raw material inspection, moving through in-process controls, and finishing with final product release guided by defined specifications. In practice, this means NMR, GC-MS, HPLC, and Karl Fischer water content measurements for every lot produced. We invite third-party checks not just because some customers demand it, but because it pays off: customer returns and technical complaints remain rare.
Years of hands-on manufacturing lead us to value evidence over assumption. Every time a new project or tighter requirement comes up, we lean back on historic batch records to find out what’s possible and what poses risks. Product consistency starts long before a delivery goes out the door—back at the point of inventory inspection, raw solvent screening, and even staff training. When someone in R&D suggests a small process tweak, we walk it through the actual numbers, so theoretical gains don't undercut quality or introduce hidden costs.
While the fundamental chemistry of 1,2-bis(1,1,2,2-tetrafluoroethoxy)benzene rarely needs reinvention, the surrounding environment keeps pushing for better performance, reduced environmental impact, and full transparency. Suppliers like us learn to move beyond a transactional approach, putting focus on knowledge sharing and honest feedback loops with customers and regulators alike. As researchers and manufacturers in one, we constantly work at the intersection of real-world needs, emerging regulation, and evolving science.
No manufacturer operates in a vacuum. Every time a customer uncovers an improvement or a new use, we look to share learning back across the sector. Bringing together our production insights, field data from customers, and regulatory changes supports smarter, more responsible growth—not just for this product, but across the landscape of specialty fluorochemicals.
Years at the bench and on the production line have shaped how we see specialty compounds like 1,2-bis(1,1,2,2-tetrafluoroethoxy)benzene. From monitoring batch reactions to shipping out high-purity finished chemicals, every stage counts toward the real value delivered to customers. Manufacturing this molecule doesn’t boil down to formulaic production and standard checks. Skill, vigilance, a deep understanding of downstream challenges, and the willingness to evolve all play roles in keeping the quality high and the trust strong.
Facing today’s specification lists, documentation requests, and market shifts, our team draws on hands-on knowledge and continuous learning to move from simple supplier status to trusted collaborator. The distinctive chemical features of this compound only matter because, at every step, people across industries apply it for results that basic alternatives just can’t match. Looking ahead, deeper partnerships and creative collaboration promise more innovation for both production teams and the industries using our materials.