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HS Code |
710110 |
| Chemical Name | 2-Fluoro-4-Methoxybenzonitrile |
| Cas Number | 24168-70-5 |
| Molecular Formula | C8H6FNO |
| Molecular Weight | 151.14 |
| Appearance | White to off-white solid |
| Melting Point | 60-63°C |
| Boiling Point | 252°C |
| Density | 1.21 g/cm³ |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Smiles | COC1=CC=C(C#N)C=C1F |
| Inchi | InChI=1S/C8H6FNO/c1-11-7-2-3-8(10)5-6(7)4-9/h2-3,5H,1H3 |
| Refractive Index | 1.543 |
| Flash Point | 105°C |
| Storage Condition | Store at room temperature, keep container tightly closed |
| Synonyms | 2-Fluoro-4-methoxybenzenecarbonitrile |
As an accredited 2-Fluoro-4-Methoxybenzonitrile 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 2-Fluoro-4-Methoxybenzonitrile; features tamper-evident cap and chemical safety labeling. |
| Shipping | 2-Fluoro-4-Methoxybenzonitrile is shipped in tightly sealed containers, protected from moisture and light. It should be handled according to standard chemical safety protocols. During shipping, the package is labeled with appropriate hazard information and complies with all transportation regulations for potentially harmful chemicals. Store in a cool, dry, and well-ventilated area. |
| Storage | **2-Fluoro-4-Methoxybenzonitrile** should be stored in a tightly sealed container, placed in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers. Avoid exposure to moisture and direct sunlight. Store at room temperature and ensure proper labeling. Use secondary containment if possible to prevent environmental release in case of accidental spillage or container breach. |
Applications of 2-Fluoro-4-Methoxybenzonitrile in Industrial Manufacturing2-Fluoro-4-Methoxybenzonitrile is a key intermediate in specialized organic synthesis processes. As a direct manufacturer, we supply this compound to downstream partners, supporting reliable integration into diverse chemical manufacturing workflows. Below, we detail major segments using this intermediate, including regulatory considerations, formulation principles, process details, and representative end products. 1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (APIs)This compound plays a significant role in the multi-step synthesis of specific APIs, including antineoplastic and CNS-active agents. Research and process chemists introduce it during the aryl nitrile coupling stage, contributing the crucial fluoro and methoxy substitutions required for pharmacological activity. Control over isomeric purity and residual solvent levels remains critical. Downstream partners in pharmaceutical manufacturing operate under cGMP conditions and must validate all raw material batches using both in-house and compendial methods to ensure safety and efficacy of the final API. Industry compliance standards
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2. Agrochemical Synthesis for Herbicide ActivesCrop protection manufacturers employ this compound as a regulated precursor for herbicidal agents, especially those with substituted benzene ring systems. It enters the process during the design of bioactive fluorinated aromatics, modulating selectivity and environmental persistence of finished herbicides. Strict control of halide and ether content is required for compliance and efficacy. Batches destined for agrochemical use undergo specific contaminant analysis, such as heavy metals and dioxins, aligned with end-market requirements in the EU and North America. Industry compliance standards
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3. Liquid Crystal Intermediate for Electronic DisplaysManufacturers of high-end liquid crystal compounds use this fluoro-methoxy benzonitrile structure to achieve superior dielectric and optical properties in TFT and LCD panel formulations. Entering early during the custom synthesis of specialty liquid crystal mixtures, it ensures enhanced molecular orientation and temperature stability necessary in advanced display technologies. Quality control focuses on trace ionic species and residual organic solvent content, reflecting the high purity standards of the electronics sector. Industry compliance standards
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4. Fine Chemical Intermediate for Dye and Pigment Synthesis2-Fluoro-4-Methoxybenzonitrile serves as a functionalized intermediate in the production of advanced organic dyes and pigments. The substitution pattern allows for chemical modification leading to high-performance materials with targeted color properties. Downstream manufacturers introduce the intermediate during the core chromophore assembly, often under batch or continuous flow conditions requiring robust process control. Attention focuses on purity optimization, particularly for grades used in inkjet, textiles, or specialty polymer coloration, to satisfy high-resolution and color-fastness standards. Industry compliance standards
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From a manufacturing standpoint, 2-Fluoro-4-Methoxybenzonitrile stays true to its character: a precise balance of molecular structure and performance that appeals to specialty chemical users. Since we run the reactors ourselves, we see each stage of its journey, from raw material selection to crystalline finish. This product does not come together haphazardly; it reflects careful process control, feedback from longstanding clients, and strict monitoring at every checkpoint. We get to know its quirks and strengths, seeing firsthand how slight process tweaks influence color, purity, and stability. What we send out reflects what we’d expect in our own lab – reliable material, free from curious contaminants, and consistent enough to build a process around. Chemists visiting our site often point out that the aroma, granule texture, and moisture resistance herald not just technical conformance, but also a trust in handling and storage.
Markets only see the number on the label, but we live with each batch as it comes off the line. It matters to us whether the melting point holds steady between shifts. Our model for 2-Fluoro-4-Methoxybenzonitrile production does not favor small batches for the sake of novelty, nor do we chase volume at purity’s expense. We prioritize controlled syntheses at intermediate scale, which keeps lots uniform, reaction byproducts minimized, and purification manageable even as demand grows. This means that if a customer finds a batch satisfactory, the next one will not present a rude surprise during synthesis. Nearly every seasoned user has dealt with off-spec firms; by keeping operations on-site, we track every drum and respond to feedback in real time. Chemists trust us to deliver, because they know each lot stems from a well-understood production line, not an anonymous contractor.
For anyone in fine chemicals or pharma intermediates, both the fluoro and methoxy groups call the most attention. The fluoro group introduces metabolic stability and alters electronic effects along the aromatic ring. The methoxy group opens synthetic routes unavailable to methyl or ethyl counterparts, supporting cross-coupling reactions and further derivatization. Benzonitrile itself is a versatile scaffold; placing a fluoro at the ortho position and a methoxy at the para position gives more control during later stage substitutions or transformations. That particular substitution pattern, achieved only by strict process order, delivers high selectivity and product uniformity. Our years of tweaking reaction kinetics, catalysts, and work-up methods have led to consistently clean functional group installation and dependable isolation of the key product.
Many technical brochures stop at purity and melting point. The real measure comes from clients who run the material at the bench, scale up to pilot reactors, or prep kilogram quantities for further processing. Over two decades, we have fielded adjustment requests for particle size distribution, water content, and color specification. Some projects call for extra UV spec or LC techniques to confirm residual impurities – especially for pharma projects running downstream amid reactive metals. We keep feedback logs, matching process modifications with historical performance so that even clients with challenging requirements receive adjusted lots without weeks of delay. Years ago, when a partner reported crystallization glitches in cold-chain logistics, we adapted post-purification drying, so today’s batches rarely develop the clumping seen in less mechanically robust material.
Our largest buyers use 2-Fluoro-4-Methoxybenzonitrile as a core intermediate in active pharmaceutical ingredient routes, as well as for advanced agrochemical discovery. It is not a building block that travels directly to pharmacy shelves. Rather, it serves as an ancestor to more complex products where substitution pattern, reaction kinetics, and downstream conversion matter deeply. Typical transformations include nucleophilic aromatic substitutions, Suzuki or Buchwald cross-couplings, and selective reductions. In dye chemistry, the same backbone adapts to new chromophores. Our own R&D teams have used it to prototype small-molecule inhibitors, choosing this scaffold because it holds up when exposed to reactive functional groups during late-stage synthesis. Failures usually result from pushing substitutions too hard; users learn quickly that the fluoro group’s presence resists electrophilic attack, supporting selective chemistry, not catch-all approaches.
It sometimes surprises new industrial clients how a single atom swap transforms synthesis. The addition of the methoxy group at position 4 confers solubility and opens up downstream methylation options that, say, chlorinated analogues cannot offer. The fluoro group moderates ring reactivity, allowing users to introduce sensitive substituents in subsequent steps without excessive degradation or runaway side reactions. Numerous competitors offer 4-methoxybenzonitrile or its ortho-fluoro variant, but few invest in aligning the synthetic pathway to avoid polysubstitution, phenol formation, or hydrolysis traces – issues that can derail a lengthy development campaign. Through rigorous process optimization, our product boasts lower levels of non-target isomer and typical contaminants. Where regulatory projects require high batch traceability, this translates to an advantage in meeting both analytical criteria and project timelines. Users building analytical methods often find the spectral profile conveniently simple, facilitating faster integration into QC routines and regulatory submissions.
Material handling splits the field between experienced manufacturers and opportunistic repackagers. Low-grade variants often absorb moisture or resist dissolution in polar aprotic solvents, clogging feed lines and complicating scale-up. Our process, including precision vacuum drying and stabilized finish, ensures the product resists this pitfall. As a manufacturing team, we routinely field inquiries about compatibility in multipurpose reactors and solvent exchange processes – and can respond with confidence drawn from both lab study and full-scale operation. Handling experience equips us to address procedural hitches before they become significant production issues on the client side. For instance, humidity-induced lumping sent lesser products to landfill or reclamation, but our process yields a crisp, free-flowing material that integrates cleanly with common feeder systems. Our technical staff regularly visits end users, not only to offer support but to bring insights back to our own process improvement projects.
Today’s chemical market requires accountability beyond just purity. Regulatory scrutiny can derail otherwise promising supply chains, especially in regulated markets such as pharmaceuticals and crop protection. We maintain in-house analytical and documentation support for each shipment, offering traceability down to lot-level analytics. Batch records include process solvent use, impurity profiles, and full compliance with REACH and similar frameworks when required. Keeping chain-of-custody clear and accessible lets clients move through audits, technology transfers, and regulatory queries without hunting for missing data. We field requests for data packages, impurity reference samples, or special certifications, and take pride in responding promptly and thoroughly. Maintaining stable compliance not only builds reliability, but also supports a more sustainable supply chain since customers know exactly what enters their processes.
No production campaign runs without obstacles. Kettles malfunction, starting materials shift specification, and new projects prompt last-minute rush orders. Adapting to these demands means fostering a team ready to monitor conditions in real-time, refine purification steps, and predict which reaction stages most impact final product quality. We conduct end-of-lot reviews after each significant run, gathering feedback from QC, packaging, and even logistics. Clients will report if they encounter tiny color shifts or unfamiliar odors, which often trace back to changes in raw material quality or small reaction bottlenecks. We treat these as opportunities – not failures – driving incremental improvements rather than chasing headline-grabbing breakthroughs that put supply security at risk. Our products evolve through this ongoing dialogue between shop floor and customer facility. This honest engagement reduces running blind on customer priorities, and instead encourages mutual investment in quality outcomes.
Fast-moving chemical markets face volatility, with raw material lead times, transportation bottlenecks, and regulation-induced headaches threatening timely delivery. We respond by holding more inventory on hand, building strong relationships with critical suppliers, and pre-screening alternative procurement options for key input chemicals. This kind of preparation incurs cost, but beats lost campaigns and customer dissatisfaction in a critical regulatory or production window. Manufacturing on-site gives us control to flex with demand spikes or downturns; we can slow a line without leaving clients in limbo, or ramp up capacity to fulfill urgent orders. Customers building long-term partnerships see the benefit in flexibility, less finger pointing when things go awry, and a shared ability to recover from the unexpected. This is why direct manufacturing, not detached trading, supports mission-critical supply like 2-Fluoro-4-Methoxybenzonitrile.
Not every buyer wants a product off-the-shelf. Many need tailored solutions for specific chemistry, pilot plant scaling, or process validation. We keep direct collaboration channels with customers’ synthetic chemists, process engineers, and project managers. These relationships let us refine specifications, offer pilot samples, or suggest protocol improvements that cut costs or boost yields. Sometimes our team gets involved early, helping troubleshoot failed reactions or address unexpected salt formation during scale-up. We support technology transfer with in-depth documentation, historical production data, and hands-on discussion. Our customers value responsive teams who understand their application end-to-end, and we gain perspective on real-world challenges beyond the paperwork.
Plenty of firms claim a competitive edge. But customers with tough deadlines or precise project needs call us repeatedly because they rely on consistent quality, flexibility, and clear communication. While many focus on price, experience soon proves that minor savings fade when unreliable deliveries or quality concerns derail an entire program. First-time users often push for trial quantities, validate in their process, and then ramp orders once a comfort level develops. We see that progression time and again, especially among multinational firms where lot-to-lot reproducibility counts most. For us, that represents trust earned, and a shared commitment to smooth project delivery rather than one-off sales.
Process innovation means more than swapping vessels or chasing reaction time records. Our improvements address solvent recovery, energy efficiency, safety, and analytic capability. Advanced purification steps cut residual solvent content while supporting cleaner downstream chemistry. Automation boosts consistency without reducing careful oversight – key steps still demand operator expertise honed by years at the controls. We avoid the pitfall of eliminating experienced personnel to save cost, keeping a blend of seasoned chemists and new technology specialists. This approach guides safe scale-ups and makes sure new methods do not introduce unknown risks. By investing in robust process controls, cleaner effluents, and greener chemistry where possible, we contribute to a more sustainable future and present high-integrity material to our customers.
We know 2-Fluoro-4-Methoxybenzonitrile from inside the plant to outside shipping dock. For us, it stands for a blend of process mastery, customer service, and sturdy technical grounding – verified by daily practice, not aspirational language. Each delivery embodies the invisible work of a supply chain running at its best: precision synthesis, transparent data, and a relentless drive to align with what real-world users actually experience. By staying involved, we learn, adapt, and improve. This is more than simple compliance, and more than marketplace noise – it is the direct value seen in every drum opened on a chemist’s bench, and in every successful project delivered on time and within spec. That's why direct manufacturing matters, and why 2-Fluoro-4-Methoxybenzonitrile, made right, continues to earn its place in advanced chemical synthesis worldwide.