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HS Code |
461963 |
| Product Name | 2,6-Difluorobenzamide |
| Cas Number | 18063-03-1 |
| Molecular Formula | C7H5F2NO |
| Molecular Weight | 157.12 |
| Appearance | White to off-white solid |
| Melting Point | 132-134 °C |
| Boiling Point | Unknown |
| Density | 1.35 g/cm3 (estimated) |
| Solubility In Water | Slightly soluble |
| Smiles | C1=CC(=C(C(=C1)F)C(=O)N)F |
| Inchi | InChI=1S/C7H5F2NO/c8-5-2-1-3-6(9)4(5)7(10)11/h1-3H,(H2,10,11) |
| Pubchem Cid | 151209 |
As an accredited 2,6-Difluorobenzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 100-gram amber glass bottle labeled "2,6-Difluorobenzamide, 98% purity," features safety symbols and product identification information. |
| Shipping | 2,6-Difluorobenzamide should be shipped in tightly sealed, labeled containers, protected from moisture and direct sunlight. Handle with appropriate safety measures, in accordance with chemical transport regulations. Ensure packaging prevents leaks or spills during transit. Include relevant hazard information on the packaging and shipping documents as per local and international guidelines. |
| Storage | 2,6-Difluorobenzamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and incompatible materials such as strong oxidizing agents. Avoid moisture and excessive heat. Clearly label the container and keep it away from food and drink. Use proper chemical storage protocols and ensure limited access to authorized personnel only. |
Applications of 2,6-Difluorobenzamide in Industrial Manufacturing2,6-Difluorobenzamide serves as a critical intermediate in multiple industrial sectors, supporting the synthesis of specialized chemicals and advanced materials. This section details its integration into major downstream applications, with technical insights into compliance, formulations, processing steps, and final products. 1. Agrochemical Synthesis: Herbicide IntermediateManufacturers in the agrochemical sector use 2,6-difluorobenzamide for the targeted synthesis of selective herbicides, especially amide- and urea-derived compounds. The material enters dedicated synthesis routes where tightly controlled reaction parameters and purification regimes support product quality. Users reference globally accepted specifications to ensure compliance and performance, emphasizing trace residual analysis and batch verification before formulation blending. Industry compliance standards
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2. Pharmaceutical Intermediate in API ManufacturingOriginal drug manufacturers and contract development organizations apply 2,6-difluorobenzamide within core heterocyclic synthesis, securing fluorinated aromatic frameworks for next-generation active pharmaceutical ingredients. Production lines must document pre-GMP controls and material traceability, establishing reliable batch records for every use. The material enters amidation or cyclization steps under monitored conditions to preserve structure and purity. Industry compliance standards
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3. Advanced Material and Fine Chemical IntermediatesProducers in the specialty materials sector employ 2,6-difluorobenzamide as a precursor for engineered fluorinated polymers and liquid crystal intermediates. The stringent control over feedstock purity and batch consistency allows integration into proprietary synthetic pathways. Material handling must follow strict trace impurity monitoring to prevent product defects downstream, using in-process control analytics before scaleup blending. Industry compliance standards
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4. Industrial Dye and Pigment PrecursorsDye houses and pigment producers add 2,6-difluorobenzamide to rigidly controlled aromatic substitution sequences, supporting the fabrication of specialty colorants for textiles, plastics, and functional coatings. The raw material undergoes batchwise charging under strict hazard containment and waste minimization protocols. Specification adherence during this step minimizes contamination risks and optimizes chromophore development in subsequent reactions. Industry compliance standards
Typical usage ratio
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Over years of hands-on manufacturing, we’ve come to know 2,6-Difluorobenzamide inside and out—not just how it looks on paper, but how real-world chemists and process engineers lean on it to deliver consistent results in demanding applications. Known among us for its molecular formula C7H5F2NO and CAS number 18063-03-1, this material rarely draws the spotlight it deserves. Rigorous attention during purification brings out its best, supported by our direct feedback from industrial clients seeking minimal batch-to-batch deviations. Our standard purity sits at or above 99%, with impurities tightly monitored through validated HPLC and NMR checks.
Many people ask about its value compared to mono-fluoro and tri-fluoro variants used in aromatic synthesis. The difference shines through in the unique ring activation—two fluorine atoms at the ortho positions change electron density in ways only someone with practical synthetic goals can appreciate. This particular substitution delivers greater selectivity for downstream chlorinations, brominations, or even cross-coupling, with less risk of overreaction and unwanted side products.
Those who work with pharmaceuticals and agrochemicals see immediate advantages. For example, 2,6-Difluorobenzamide functions as a valuable intermediate because these two fluorines resist hydrolysis better than single-substituted rings. This stability offers something critical—predictability for multi-step syntheses and a strong backbone for building up more complex targets. We have supplied this compound to production lines where failure isn’t an option, and these users come back for the reassurance of repeatable performance.
We handle our 2,6-Difluorobenzamide as an off-white crystalline powder, free-flowing and easy to dose. Our own chemists have noted the benefit of the product’s uniform granulometry for pilot to full-scale reactors, minimizing bridging or dust in pneumatic systems. Direct experience shows it dissolves best in polar aprotic solvents. We believe in reporting real outcomes, so we’ll mention that solubility limitations in non-polar media can slow throughput, and recommend process review to optimize dissolution steps for scale-up.
Storage remains straightforward. The material holds well under standard warehouse conditions, provided we keep it dry and out of direct sunlight. Our batches, produced in glass-lined reactors, carry a moisture content below 0.3%—achievable with proper drying and maintained by double-layer packaging.
Clients running continuous or large-batch syntheses comment on how much operator error falls with consistent bulk characteristics. They also appreciate the way our material’s chemical profile stands up to repeated handling, vital for facilities that store intermediates for months or even years.
Some projects head toward herbicide or fungicide active ingredient assembly lines, where every impurity can trigger final rejection. Formulators mention the dual-fluorine pattern delivers noticeable resistance to oxidative degradation, translating into longer shelf life for finished goods. Others focus on pharmaceutical intermediates and ask for extra analytics. Our approach grows from listening to these requests, not just reading off specification sheets.
From a synthesis standpoint, adding a single fluorine yields a different balance between activation and deactivation on the ring. Those who combine fluoro-benzamides with carbonyl chemistry or palladium catalysis see this firsthand. Installing two fluorines (both at the 2 and 6 positions) blocks the ortho sites, delivering advantages beyond what the mono-fluoro analogue grants. The trade-offs show up most clearly during complex molecule assembly, where the nature and placement of each substituent can decide yields and strategy.
Tri- or tetra-fluorinated derivatives enter advanced material science work, but cost and handling hazards grow in step with fluorine count, sometimes without proportional gains for pharmaceutical or agrochemical routes. Our 2,6-Difluorobenzamide’s balanced cost-benefit profile positions it for high-scale use, particularly where fluorinated building blocks play a crucial part but excessive modification only increases risk.
Years in chemical manufacturing have taught us that consistent quality does not come from equipment alone. It grows from a quality system driven by actual experience—lots that fail water or solvent content tests are scrapped rather than passed on. We’ve seen rare cases where tiny contamination increases crystallization time, leading to supplier audits. This is why we document every batch, not just with compliance numbers but with process notes from our team on the floor.
Customers who switch to our supply often do so after frustration with off-spec shipments, which can throw off entire production schedules. Agility and transparency prove their worth: instead of hiding deviations or brushing aside questions about trace element profiles, we open up our QA records for their review. We invite process engineers and lab managers onsite, because responsibility grows when committed people stand behind their work.
Discussions about sustainability often feel disconnected from daily factory work. We see a direct path to greener chemistry in the design and execution of each process—less solvent waste, energy-efficient crystallization, and careful nitrogen management all stem from practical adjustments made over years. By tightening in-process controls and recycling solvents on-site, we have cut down chemical footprint without sacrificing output.
For 2,6-Difluorobenzamide, we select reagents and fluorinating agents with strict attention to environmental risks, steering clear of older methods that relied on high-waste halogen sources. Our waste streams undergo regular third-party analysis, and we keep channels open for customers who want a deeper look at lifecycle impacts.
Problems pop up, no matter how many years the team has been making this compound. We’ve tackled everything from color drift in crystal batches (usually due to excess mother liquor) to shipping delays when customs wanted extra analysis documentation. By keeping robust in-house analytics and skilled technical support, small glitches stay contained.
We encourage customers to flag even subtle process changes. On one recent line, a client caught a trace of unknown byproduct in their HPLC data. They sent us a sample, and our in-house team spent two days testing under different prep conditions, eventually finding a minor process step had drifted during raw material changeover at their site. It takes mutual openness and access to deep technical archives to track down the true cause, but the payout comes as renewed trust and fewer headaches.
We manufacture and ship 2,6-Difluorobenzamide with respect for its handling needs. Our experience shows the dust can irritate eyes and skin, so we move bulk drums with sealed systems and issue dust masks for workers charged with repackaging. Facility training sessions drill the basic lessons—direct contact should be rare, ventilation must stay on, and labeling leaves no ambiguity about chemical identity.
It’s common sense backed by records: fewer incidents, less waste, and better morale. We walk customers through best practices, from drum opening all the way to safe disposal of off-spec samples, drawing on the odd accident that sharpened our attention.
A stable manufacturing operation for 2,6-Difluorobenzamide grows from experience, not guesswork. Our inventory buffers factor in seasonal snags and logistics slow-downs, based on what we’ve lived through. We have built direct relationships with upstream material sources, refusing to hand off a critical intermediate to an unvetted supplier. Every year, management revisits raw material auditing and renewal protocols, with reports tied directly to outcomes—no paperwork for its own sake.
Customers, including long-term partners in pharma and crop science, value uninterrupted delivery. No one enjoys watching urgent projects stall because a key intermediate got stuck in transit. Our lessons—verified over many cycles of purchase, scale-up, and delivery—keep agreements grounded in real production realities, not just contract wording.
We run frequent lab replications of production batches, imitating scale-down and stressed storage to surface issues before they reach users. Early identification of off-odors, caking, or strange crystallization habits happens right in our site labs. Each failure marks a learning opportunity, logged against future process upgrades.
By putting product into practical settings, from test reactor shelves to sample blend trials, we catch and correct things that specification sheets miss. Over time, this trims surprises in late-stage process validation or at customer plants. We recall one case where a seemingly minor wrapper swap changed product flow in automatic weighers—the cause, as always, rooted in on-the-ground testing.
Our teams insist on direct contact with customers, not filtered through intermediaries. Technical questions get routed to people who produce or test the actual chemical, so reply times stay short and answers actionable. Many buyers tell us their favorite supply partners remain those who know their own production tools and don’t just repeat datasheet jargon.
Packing for 2,6-Difluorobenzamide follows input from shipping and warehouse teams, who have seen what works—and what fails—on the route from plant to warehouse. We track drum weights, lining types, and external integrity both for regulatory compliance and real-world confidence. In the rare event damage shows up on arrival, we handle complaints with practical solutions drawn from past fixes, not endless email chains.
Interest keeps growing for 2,6-Difluorobenzamide in specialist polymers, material sciences, and niche reagent designs. We field weekly requests for custom specifications or extra-analytical support. In developing next-gen electronics coatings, many labs now test fluorinated intermediates to balance durability and surface energy, where the dual ortho-fluorine pattern offers new levers for tuning physical properties.
We keep close tabs on emerging literature and direct customer R&D, but never jump the gun—any new use case gets a risk and process review before scale-up. Shortcuts almost always backfire. Only trusted pilot results make it onto our regular production schedule.
Feedback loops between our plant and our clients drive incremental improvements. There have been adjustments based on user input: shifting drying temperatures, upgrading filtration cloths, adopting denser liners, and adapting batch sizes to fit evolving order trends. Failures or shipping delays breed both new SOPs and renewed patience—there is always a lesson hiding in unexpected corners.
If someone flags a repeat trend, no matter how minor, we track and act. This repeat communication fosters mutual respect for the constraints facing chemical production. Lab techs contribute their feedback, not just managers.
Nothing builds confidence in 2,6-Difluorobenzamide like decades of direct hands-on production and overwhelming feedback from process engineers, formulators, and QC specialists. A specification sheet alone can’t capture these lived realities: reliability across scales, batch traceability, technical troubleshooting, and practical risk reduction.
Every improvement and process tweak grows from these voices and their experience. We take a long view, learning with each iteration. This approach ensures the people using our materials can rely on a supply route grounded in hard-earned lessons, bringing predictability to even the highest-stakes applications.