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HS Code |
392308 |
| Product Name | 2',5'-Difluoroacetophenone |
| Cas Number | 1197-00-8 |
| Molecular Formula | C8H6F2O |
| Molecular Weight | 156.13 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 74-76°C at 11 mmHg |
| Density | 1.23 g/cm³ |
| Refractive Index | 1.523 |
| Flash Point | 81°C |
| Solubility | Soluble in organic solvents |
| Smiles | CC(=O)C1=CC(=C(C=C1)F)F |
| Inchi | InChI=1S/C8H6F2O/c1-5(11)6-2-3-7(9)4-8(6)10/h2-4H,1H3 |
As an accredited 2',5'-Difluoroacetophenone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 25g amber glass bottle with a screw cap, labeled "2',5'-Difluoroacetophenone, ≥98%," features standard hazard and safety information. |
| Shipping | 2',5'-Difluoroacetophenone is shipped in tightly sealed containers, protected from moisture and light, and clearly labeled according to regulatory standards. It is transported in compliance with chemical safety guidelines, typically via ground or air, ensuring secure packaging to prevent leaks or spills. Safety data sheets accompany the shipment for reference. |
| Storage | 2',5'-Difluoroacetophenone should be stored in a tightly sealed container, placed in a cool, dry, and well-ventilated area away from sources of ignition, heat, and direct sunlight. Keep away from incompatible materials such as strong oxidizing agents. Ideally, store at room temperature. Ensure proper labeling and restrict access to trained personnel. Follow standard laboratory chemical storage protocols. |
Applications of 2',5'-Difluoroacetophenone in Industrial Manufacturing2',5'-Difluoroacetophenone serves as a high-purity intermediate in the synthesis of pharmaceuticals, agrochemicals, and advanced materials. Our production capabilities support demanding custom specifications for global B2B customers. Below we detail focused application pathways supported by valid compliance and industrial practice. 1. Pharmaceutical Intermediate for Fluorinated API SynthesisThis compound functions as an essential building block in the synthesis of several fluorinated drug candidates, especially non-steroidal anti-inflammatory drugs (NSAIDs) and kinase inhibitors. Its two fluorine substituents enable targeted functionalization via Friedel-Crafts acylation and subsequent amination or hydrolysis. QC and process control procedures address isomeric purity, metal residues, and trace moisture. Our material supports large-scale workflow integration in pharmaceutical API plants with validated batch tracking. Industry compliance standards
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2. Agrochemical Intermediate for Halogenated HerbicidesThis compound is used as a controlled intermediate in synthesizing difluorinated phenyl-substituted herbicides and fungicides. Agrochemical producers favor its high substitution purity and compatibility with metal-catalyzed cross-coupling reactions such as Suzuki or Buchwald–Hartwig amination. Formulators require documentation on residual solvents and compliance with environmental limits on perfluorinated compounds. Industry compliance standards
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3. Advanced Material Synthesis for Specialty PolymersResearch and production facilities use this difluoroacetophenone for preparing specialty polymers with enhanced flame retardancy and chemical resistance. The compound is incorporated as a monomeric precursor or as a functional chain stopper in step-growth polymerization, especially for high-performance aromatic polyesters or polyimides. Downstream QC focuses on residual monomer removal and reproducibility of fluorine incorporation in the polymer backbone. Industry compliance standards
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4. Fine Chemical Synthesis for Fragrance and Flavor IngredientsChemical process companies employ this material as a building block in creating advanced aromatic ketones and unique aldehydes. Its dual fluorine substitution introduces distinctive volatility and hydrolytic stability ideal for manufacturing scent or taste molecules with enhanced longevity and modified notes. Formulators require detailed impurity profiling and solvent clearance in compliance with strict IOFI and FEMA guidances. Industry compliance standards
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5. Fine Electronic Chemical Synthesis for OLED Material PrecursorsIn electronic chemical manufacturing, this fluorinated acetophenone supports synthesis of advanced small molecule and polymer precursors for organic light-emitting diodes (OLEDs). The compound’s substitution pattern controls energy levels and stability of the resultant emitter molecules, crucial for high-performance display and lighting applications. Full traceability and sub-ppm metal content are critical for downstream integration. Industry compliance standards
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Standing in front of a stainless steel reactor, it’s easy to see the difference between a chemical manufacturer and a trader or reseller. Our jobs aren’t just about moving raw materials from inventory to shipping. Making high-quality 2',5'-Difluoroacetophenone involves real decisions with every batch and a constant focus on controlling the purity and process wastes. In our own experience, even a minor deviation in temperature or an overlooked cleaning step on the reactor can impact both the final purity and the downstream applications in research or synthesis.
Chemists who order this product want reliability, and building that comes from knowing exactly where every step of the process has gone right or gone wrong in the past. We track sources of starting materials, temperature ranges, solvent ratios, and distillation steps to confirm quality batch after batch. When our team prepares 2',5'-Difluoroacetophenone, the appearance shows subtleties—an off-white crystalline solid that melts clean, not dusty or yellowish, and not with lingering solvent odors. Experience has taught us that minor visual differences point to process inconsistencies. Getting this right is not about rote procedure; it’s about attention to every variable, from the tared glassware to the rate of cooling and filtration.
A technical data sheet captures the measured figures that matter most: purity, melting point, assay, moisture, and sometimes UV or NMR specs. Experienced operators in our plant double-check those numbers at each release. We’ve seen customers show up with side-by-side vials from competitors, sometimes feeling unsure which one suits their next synthesis step. Our batch sheets don’t just claim a figure for purity above 99 percent; we keep sample logs and analytical history to prove the consistency between batches.
2',5'-Difluoroacetophenone must measure up because the chemists using it—whether in pharmaceuticals, agrochemical R&D, or materials science—demand that one shipment performs in the same way as the next. The melting point gives away a lot—typically sitting around 41 to 43 °C when the synthesis has gone right. If a product comes out with a melting range even two degrees off, our quality control flags it for retesting, not for shipment. This level of documentation and hands-on evaluation stems from direct experiences working with pharma partners, where a change in impurity profile leads to weeks of troubleshooting at their end.
Aromatic ketones like this one often fill the gap in synthetic routes that require precise placement of functional groups. We have watched, over the years, how small substitutions on the aromatic ring—like swapping hydrogens for fluorines in the 2' and 5' positions—unlock new building blocks for complicated molecular targets. Medicinal chemists care about these shifts because the introduction of two fluorines changes both electronic character and metabolic stability, sometimes making or breaking a program’s chance to move forward in preclinical trials.
On some projects, our customers are developing potential drugs and need a fluorinated acetophenone as a key intermediate. The two fluorines at the 2' and 5' positions don’t just sit as decorations; they alter reactivity and lipophilicity. In agricultural chemistry, there’s a different set of questions—can this building block offer improved degradation rates or targeted activity? Conversations with our customers often run deep into process chemistry questions. One group needed to scale from grams to kilograms and asked whether our product impurity profile shifted at higher scales, or if there was batch-to-batch variation in residual solvents. Building trust comes from being transparent about real-world scaling limits and staying involved instead of just shipping boxes and emails.
Manufacturing 2',5'-Difluoroacetophenone is not a matter of following a decades-old playbook. The reactions involved, typically Friedel-Crafts acylations or halogenation steps, bring their own risks—hydrogen fluoride is not something anyone wants to manage without extensive controls. We have invested in robust ventilation, real-time monitoring, and regular operator training because workplace safety is more than a checkbox—chemists and plant workers know when management really cares and when it’s just talk.
Addressing compliance doesn’t stop at worker safety. Customers expect our product to meet or exceed regulatory requirements, whether local, national, or global. We field frequent audits from multi-national customers who want proof of documentation, supply chain transparency, and waste management. These audits are not about making a good impression for a sale—they reveal whether a manufacturer genuinely tracks every kilo of waste and batch of product. Transparency helps assure customers that our product and our documentation can stand up in court or during a regulator’s inspection.
Chemists in the lab often see a long list of similar-sounding materials when planning syntheses: monosubstituted fluorinated acetophenones, difluorinated at three and five positions, or chlorinated variants. The differences aren’t academic. Decades of process development in our plant taught us how substitution patterns change physical properties like solubility or volatility, and can shift reactivity in cross-coupling or condensation steps. With 2',5'-Difluoroacetophenone, those two fluorines not only alter biological activity for novel compounds but also make purification cleaner—polarities change, so column separations or distillation become more predictable. There’s less tailing or need for repeated rework, which matters a great deal in scale-up.
Some projects needed us to supply not just the 2',5'- but also the 3',5'-difluoro homolog, or the trifluoro version. Each structural change brought its own lessons: trifluoroacetophenones tended to have greater volatility, required colder condensers, and sometimes left more volatile impurities in the final batch. By contrast, the 2',5'- version was more forgiving in handling and more stable in storage. Understanding these firsthand gives us an edge over resellers who don’t see or solve production challenges every day.
Physical differences show up in each step—from how the compound behaves as a solid (powder or crystalline), to melting point, to chromatographic behavior. We’ve run side-by-side pilot reactions to compare how our control sample of 2',5'-difluoro product stacks up against mono- or trifluoro standards in selective reductions and acylations. The 2',5'- material has reliably yielded fewer byproducts, and downstream partners have provided feedback that this translates directly to fewer purification steps in their development process.
One of our earliest projects with 2',5'-Difluoroacetophenone involved an international pharmaceutical firm struggling with an inconsistent intermediate from another supplier. Their UPLC profiles showed unexplained byproducts, and their yields dropped off—causing months of lost time. We worked with them to analyze the impurity sources, checking each phase of our production and comparing our NMR and GC profiles with theirs. The result: our carefully controlled process gave them a cleaner and more predictable output for their multi-step synthesis.
In another instance, a university research group required larger quantities than we usually shipped, to conduct toxicology work. After walking their postdocs through our analytical workflow—showing raw spectra and interpreting every peak—we provided not only the product but real process knowledge. Their confidence in scaling up their work increased, and they let us know the follow-on steps went more smoothly. These aren’t one-off stories. The key difference in dealing with a manufacturer is access to expertise and willingness to engage on unexpected problems.
From years on the plant floor, it’s become clear that no two projects use 2',5'-Difluoroacetophenone in exactly the same way. Some require the product as a direct reactant, others as an intermediate for further transformations. Our technical team works directly with end users, helping interpret reactivity or troubleshoot why a batch didn’t behave as expected. Respect for intellectual property and confidentiality remains central—but offering technical partnership rather than just product speaks more than any certificate.
At a pilot scale, handling small bottles or jars looks simple, but moving to multi-kilo lots introduces fresh concerns. These include weight tolerances, packaging that maintains stability, and documentation that matches up with regulatory freight requirements. Supply interruptions due to packaging failures or customs delays aren’t theoretical risks; they’ve happened to us and to competitors. We learned to overpackage for transit, use multiple layers of moisture protection, and ensure that every drum or carton carries an unmistakable label and tamper-proof seal. Experience with mishaps—broken containers, customs stops, or rejected batches—has driven improvements in how we prepare every shipment.
Batch-to-batch variation crops up more at larger scales. Technicians in our facility process statistical records on every lot, flagging even small shifts in impurity profile or color—because users don’t want surprises in kilogram shipments that didn’t show up in pilot batches. Our commitment to open communication and readiness to investigate issues directly keeps our relationships resilient, no matter the scale.
Lots of customers encounter bottlenecks when moving from lab to pilot or full production. We’ve seen that 2',5'-Difluoroacetophenone sometimes ends up as the linchpin for not just efficiency, but for the experimental reliability of a whole research program. Sometimes the challenge is simple: can we improve the purity margin or remove a residual solvent below detection? Other times, it involves adjusting a crystallization protocol or reworking a drying stage to ensure the physical form matches what customers need for their process. Our technical staff stays ready to adapt purification and drying parameters to suit what users intend, drawing on hundreds of cumulative years in the lab and factory.
Continual improvement isn’t a catchphrase in our business—it’s about learning from each batch and customer feedback loop. Chemists using our material often send back product performance data, NMR spectra, or chromatography results when they see something unexpected. Our team uses that data to tweak process steps, aiming for an ever-narrower impurity envelope and greater lot-to-lot reproducibility. Site audits, open laboratory visits, and technical discussions push us forward.
Research advances don’t slow down. Requests keep coming for variants, more stringent impurity limits, or larger lot sizes for new pilot projects. Novel applications in medicinal chemistry, materials, and even electronics arrive through technical requests that make us rethink process control or try fresh purification advances. Global demand for advanced building blocks in both pharmaceutical and agricultural applications keeps rising. Chemists now expect not just a material delivered to spec but technical support that helps solve fast-evolving challenges.
Working as a manufacturer, we face daily pressure from new environmental standards, stricter process documentation, and expectations around green chemistry. Every ton of material leaving our docks represents not just a product but weeks or months of process planning, troubleshooting, and collaborative work with supply chain partners. Our approach to making and supplying 2',5'-Difluoroacetophenone has grown out of that lived experience. We use what we learn every day to make the next batch purer, more predictable, and better matched to what real chemists want for innovative work.
Working in chemical manufacturing means never taking your eyes off the process or the people using what you make. 2',5'-Difluoroacetophenone has carved out a real role over the years among researchers who value its reliability, clean reactivity profile, and the technical partnership that comes from buying direct. Real-world experience delivering this product in different forms, quantities, and purity grades shapes our ethos—a focus on doing each step right, listening to what actually matters, and taking responsibility for results at every level.
Sophisticated chemistry doesn’t happen in a vacuum, and neither does reliable supply. We meet changing standards, shifting research goals, and tighter regulatory frameworks by sticking with principles learned on the plant floor: keep process knowledge alive, take pride in the details, and stay resourceful when challenges hit. 2',5'-Difluoroacetophenone speaks to this approach as much as any specialty intermediate we produce.