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HS Code |
365284 |
| Iupac Name | 5-(4-Fluorophenyl)oxazole |
| Molecular Formula | C9H6FNO |
| Molecular Weight | 163.15 g/mol |
| Cas Number | 334-39-0 |
| Appearance | White to off-white powder |
| Melting Point | 69-72°C |
| Boiling Point | 315°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Purity | Typically ≥ 97% |
| Smiles | C1=CC(=CC=C1C2=CN=CO2)F |
As an accredited 5-(4-Fluorophenyl)Oxazole 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 5-(4-Fluorophenyl)oxazole, sealed with a screw cap and labeled with safety information. |
| Shipping | 5-(4-Fluorophenyl)Oxazole is shipped in tightly sealed, chemical-resistant containers, clearly labeled in compliance with regulatory standards. It is handled as a laboratory chemical, requiring secure outer packaging to prevent leakage or damage. The shipment follows standard protocols for non-hazardous organic compounds and includes all relevant safety and handling documentation. |
| Storage | 5-(4-Fluorophenyl)oxazole should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from direct sunlight and moisture. Keep it separate from strong oxidizing agents, acids, and bases. Store at ambient temperature and follow all relevant safety guidelines. Ensure proper chemical labeling and secure storage to prevent unauthorized access or accidental exposure. |
Applications of 5-(4-Fluorophenyl)Oxazole in Industrial ManufacturingAs an established producer of 5-(4-Fluorophenyl)Oxazole, we supply this high-value intermediate to specialized sectors where its unique oxazole structure combined with a para-fluorophenyl group plays an essential synthetic role. Below are verified downstream use cases, each illustrating how manufacturers integrate and regulate this compound to meet industry-specific requirements and end-product demands. 1. Pharmaceutical API Intermediate for Antifungal AgentsPharmaceutical companies employ 5-(4-Fluorophenyl)Oxazole as a key intermediate in the synthesis of advanced azole antifungal active pharmaceutical ingredients, where its electron-rich aromatic system provides targeted activity profiles. It typically enters multistep synthetic routes prior to triazole ring closures, where tight control of downstream purity and trace fluorinated impurities is maintained. API producers balance the oxazole intermediate input according to process yield needs while observing stringent GMP protocols and regulatory frameworks. Industry compliance standards
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2. Advanced Agrochemical SynthesisManufacturers in crop protection chemicals utilize 5-(4-Fluorophenyl)Oxazole as a molecular building block involved in the development of fluorinated heterocyclic actives, especially for selective fungicides. The incorporation of this intermediate, early in the synthesis, is critical for achieving required bioactivity, with formulation teams tuning the addition according to seed molecule conversion rates and downstream off-target profiles. Raw material traceability and compliance with global residue guidelines remain core to process planning and batch release. Industry compliance standards
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3. OLED and Organic Electronic Material ProductionProducers of organic semiconductors and luminescent materials integrate 5-(4-Fluorophenyl)Oxazole to develop electron-transporting and emissive layer components in OLED device structures, owing to the compound’s high chemical stability and specific electron affinity. Production engineers calculate loading levels to optimize charge balance within multi-layer depositions, factoring for evaporation rates and film uniformity under vacuum or solution-processing conditions. Product purity, photostability, and trace element content are routinely analyzed in accordance with international electronics material standards. Industry compliance standards
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4. Specialty Dye and Pigment Intermediate ManufacturingColorant manufacturers adopt 5-(4-Fluorophenyl)Oxazole as a precursor in the design of high-durability, lightfast fluorinated dyes tailored for specialty textile and technical ink applications. The compound’s electron-deficient fluorine substitution aids in shifting color tone and improving solvent resistance, allowing for the engineering of dyes fitting industrial laundering or UV-exposed environments. Quality control monitors batch uniformity and azo-coupling efficiency during scale-up, while regulatory standards guide both process optimization and marketability in demanding downstream sectors. Industry compliance standards
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5. Research & Development for Heterocyclic Compound LibrariesSpecialized contract research organizations and pharmaceutical innovator labs purchase 5-(4-Fluorophenyl)Oxazole as a scaffold in small-molecule library construction. Medicinal chemists leverage its heterocyclic core for lead compound discovery, especially where fluorine-modified aromatics provide SAR (structure-activity relationship) differentiation. R&D groups regularly specify sourcing with analytical trace certificates and impurity profiles compatible with regulated screening protocols, ensuring reproducibility and chain-of-custody compliance throughout high-throughput synthesis campaigns. Industry compliance standards
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Every batch that leaves our reactor with the name 5-(4-Fluorophenyl)Oxazole on the drum stands behind decades of practical skill and stubborn focus on the details. This is not a commodity churned out for inventory’s sake. Each kilogram reflects the effort to solve challenges facing the industries that depend on molecular accuracy. Down on the production floor, process operators deal with more than just laboratory theory – small shifts in input or temperature can change what you see in a flask, which is why hands-on control becomes the real test of a chemical manufacturer’s reputation.
5-(4-Fluorophenyl)Oxazole shows just how precise synthetic chemistry needs to be. This heterocyclic building block, model name 5FPO-02 in our current series, carries a fluorophenyl ring on the oxazole core. That substitution may sound like textbook nomenclature, but in scale-up operations, it’s a story of making every bond count. People sometimes get lost in jargon about aromaticity or electron effects; here, the fluorine brings predictable reactivity without tipping the balance toward instability. Care and accuracy in this context mean you get a reliably crystalline solid, not a blend or a run-down oil. That difference matters in drug discovery, advanced materials, and electronic intermediates.
What everyone on the bench and the line sees immediately is how the 5-fluoro substitution changes both the handling and the performance. Chemists choose this derivative for its clean reactivity and well-mapped downstream modifications. When an end-user works in medicinal chemistry, a reliable solid-state form lets them weigh and dissolve the material exactly as needed for parallel syntheses, without worst-case surprises from sticky or unpredictable impurities. Over years of batch experience, we don’t just make 5-(4-Fluorophenyl)Oxazole for the drawer. We learn its boiling point (often used as a tracer for process control) and refine its drying to prevent caking but stop before the structure degrades.
Real performance shows up in compatibility testing. Some users want sharper melting points, others measure specific activity in their target screens. Our material keeps its form under normal atmospheric transfer, which means lower waste in bench-to-production transitions. That consistency isn’t about perfection for its own sake—it keeps the project budgets predictable and eliminates the need for unplanned retesting. Process chemists working with that fluorine handle find that side-reactions stay in check, giving them more confidence scaling up for kilo-lab or pilot plant stages.
Medicinal chemistry teams gravitate to the 4-fluorophenyl group for more than just academic reasons. Introducing a single fluorine atom often blocks metabolic hot spots, which means candidate compounds may stick around long enough to let the assay generate real data, not false negatives from rapid breakdown. When researchers run parallel syntheses on benzoxazole, oxazole, and thiazole series, the physical handling profile of our 5-(4-Fluorophenyl)Oxazole gives them one less headache. We hear directly from customers that their filtration steps run clean, without sludging or unexpected colors, even when pushing multi-gram preparations.
Agrochemical teams want tailored ring systems that slip smoothly into more complex synthetic routes. Our experience with 5-(4-Fluorophenyl)Oxazole shows that it’s easier to adapt, not only in the initial build but also for later functionalization. With a consistent melting range and a narrow impurity profile, the compound lets project chemists map out routes with fewer downstream surprises. In electronics, engineers need well-behaved precursors that won’t shed stray ions or form sticky residues at elevated process temperatures. What makes this fluorinated oxazole reliable is not just its chemistry—it’s seeing how it performs when blended into polymers or exposed to process gases.
We manufacture 5-(4-Fluorophenyl)Oxazole out of an old-fashioned belief that process only counts when every batch matches both the paperwork and the real-world challenge. The reactor jacket doesn’t care what’s in your marketing story; it cares about controlling heat and timing to coax crystal growth and prevent over-oxidation or side reactions. For decades, we’ve refined isolation techniques to ensure the product stays pure but doesn’t carry over excess solvent. Each batch lot receives multi-point HPLC and NMR confirmation, but the real proof comes in downstream testing. When a user loads sample after sample into their synthesizer and sees clean, strong response without ghost peaks, that’s earned trust, not theory.
Supply disruptions seldom make headlines, but inside the plant, every shift supervisor knows they can set an entire project back. With established raw material sourcing and close partnership with upstream fluorine suppliers, we shield users from the worst shocks that hit less stable supply chains. We avoid the trap of over-promising “perfect yield” but focus instead on honesty—if a step varies, users get a heads-up before shipment leaves the dock. It is a lesson you only learn after years of handling both successes and the batches that resist fine-tuning.
If you ask a process chemist why they return to the 5-(4-Fluorophenyl)Oxazole batch after batch, they’ll tell you about their experience with comparative compounds. Non-fluorinated oxazole analogs often show higher rates of byproduct formation under similar conditions. Besides, the selectivity in post-coupling steps tends to drop off when that essential fluorine is missing from the para position. Teams working on SAR (structure–activity relationships) studies tell us they reach their endpoints faster with consistent 4-fluorophenyl substitution, compared to scattered results and inconsistent chromatographic behavior with plain phenyl oxazole or with meta/ortho fluorine positions.
Some products fit only limited research, but 5-(4-Fluorophenyl)Oxazole keeps cropping up in overlapping industries. In practice, the structure stands out because it resists unwanted side reactions caused by atmospheric moisture or minor process changes. In our plant, extended stability studies backed up by tens of thousands of storage hours show this molecule holds its analytic spec over a lengthy shelf life. That is something you rarely get with less robust heterocycles or with certain halogen substitutions that tend to drift off-spec before the drum even reaches a customer.
Not every manufacturing story involves accident-free operation. Most chemical products at scale show their true character only when something jumps out of the expected pathway. Operators remember the day a minor solvent impurity almost derailed a key isolation step on our first 5-(4-Fluorophenyl)Oxazole scale-up. Learning to keep water content and thermal ramp under unforgiving control spelled out the difference between crystalline yield and low-value slurry. Experience teaches you not to cut corners—drying isn’t about following a prescribed set of parameters, but recognizing the real signals: filter cake texture, mother liquor clarity, and analytical response.
Every reverse-phase HPLC trace tells a story, but hands-on experience gives you the intuition to read those patterns and catch subtle off-batches before they reach customers. Chromatographic behavior for this compound, distinct from its non-fluorinated cousin or 2-fluoro analogs, enables reproducible purification with routine silica or reverse-phase protocols. Over time, these observations move out of the lab notebook and into the batch record instructions, so every operator in the facility inherits the lessons from past runs.
Once you ship a kilo of 5-(4-Fluorophenyl)Oxazole to a pharmaceutical innovator or a polymer research group, the product moves beyond the factory’s reach. Users judge your chemical not only by purity or spec sheet numbers but by the way it supports their own process needs. Our manufacturing teams view every dispatch as a promise: project leaders count on uninterrupted material flow to avoid expensive “awaiting raw materials” downtime. That is why we share material change or batch revision details, so no customer gets blindsided by a process tweak or altered impurity profile. That transparency reduces the choke points that stall R&D labs or scale-up production lines around the world.
Witnessing how creative formulations incorporate our 5-(4-Fluorophenyl)Oxazole keeps our teams motivated to seek further improvements. Polymer technologists report less batch-to-batch variability for specialty resins; medicinal chemists highlight the compound’s smooth incorporation into lead optimization campaigns. Open communication between our operators and users weeds out problems before they mushroom into costly recalls or development delays.
Process safety sits just as high on our priority list as yield or cost. Week in, week out, we face the choice between pushing a batch closer to theoretical yield or calling a halt to avoid impurity breakthrough. Over years, setting hard and fast impurity cutoffs—never negotiable in our shop—makes a bigger difference for customer trust than squeezing out a few extra percent yield at the risk of downstream mess. Teams constantly monitor for HF generation and thermal runaway, especially during scale-up or exothermic fluorine substitutions. We invested in closed-loop monitoring to ensure runaway detection happens at the minimum threshold, before workers or product face real danger.
Quality assurance stretches far beyond the paperwork. Regular analytical checks, cross-batch chromatographic overlays, and archival of long-term stability data all contribute to a history that users can investigate and trust. When a customer calls with a real-world issue—unusual color, trace impurity, handling complaint—we treat it as a chance to find the root cause rather than brush off the concern. No amount of theory in a research group substitutes for the daily grind of tracking, reviewing, and improving the production line.
Manufacturing 5-(4-Fluorophenyl)Oxazole isn’t about chasing the latest trend or endlessly expanding the catalog. Reliability and transparency define our approach. Keeping the process in-house, from sourcing raw fluorinated aromatics to final purification and packaging, lets us shape every aspect based on user feedback and real-world demand. Rather than diversifying for new catalog numbers, we refine what already works and commit resources to documenting every improvement, even in the background steps that never show up in glossy brochures.
Looking forward, the challenge lies not in producing larger volumes but in holding steady through regulatory shifts, evolving user requirements, and changes in global logistics. Every member of our team, from process technicians to analytical staff, knows how a single missed checkpoint can ripple downstream to finished dose or final use. That level of discipline only grows stronger through direct connection with the practical chemists, formulators, and engineers who depend on our material to keep their innovations moving.
The story of 5-(4-Fluorophenyl)Oxazole in our facility is not about abstract progress or claims of unrivaled superiority. It’s a history written in thousands of production hours, lessons learned from tough scale-up runs, and honest feedback from people pushing chemistry further. Consistent commitment defines our role as manufacturer. By keeping faith with our customers—always chasing reliability, open communication, and a readiness to adapt—we continue to earn our keep in a market where every gram of product needs to help users get real work done.