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HS Code |
130413 |
| Product Name | 3-Fluoro-5-(Trifluoromethyl)Benzamide |
| Cas Number | 886763-76-6 |
| Molecular Formula | C8H5F4NO |
| Molecular Weight | 207.13 g/mol |
| Appearance | White to off-white solid |
| Melting Point | 110-113°C |
| Purity | ≥98% |
| Solubility | Soluble in DMSO, DMF |
| Smiles | C1=CC(=CC(=C1C(F)(F)F)F)C(=O)N |
| Inchi | InChI=1S/C8H5F4NO/c9-5-2-3-6(7(10,11)12)4-1-8(13)14/h1-4H,(H2,13,14) |
| Storage Temperature | Store at 2-8°C |
| Synonyms | 3-Fluoro-5-trifluoromethylbenzamide |
As an accredited 3-Fluoro-5-(Trifluoromethyl)Benzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 5 grams, sealed with a tamper-evident cap and labeled with chemical name, CAS number, and hazard information. |
| Shipping | **Shipping Description for 3-Fluoro-5-(Trifluoromethyl)Benzamide:** This chemical is shipped in sealed, clearly labeled containers, compliant with all relevant regulations. Packaging ensures protection from moisture and physical damage. Appropriate documentation, including safety data sheets, accompanies the shipment. Shipping is conducted via certified carriers, with temperature and handling instructions as required for safe and secure delivery. |
| Storage | Store **3-Fluoro-5-(Trifluoromethyl)benzamide** in a tightly sealed container in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Store at room temperature, unless otherwise specified by the manufacturer. Ensure proper chemical labeling and access for authorized personnel only. Use appropriate personal protective equipment when handling. |
Applications of 3-Fluoro-5-(Trifluoromethyl)Benzamide in Industrial Manufacturing3-Fluoro-5-(Trifluoromethyl)Benzamide serves as a high-performance intermediate in various advanced industrial sectors. Our long-term supply to recognized manufacturers is based on process-specific requirements and ongoing compliance with evolving standards. Below are core downstream scenarios where this raw material offers irreplaceable value. 1. Active Pharmaceutical Ingredient (API) Intermediate for Central Nervous System (CNS) AgentsAs a critical structural block in CNS-active pharmaceuticals, this compound provides a stable source of fluorine and trifluoromethyl functionalization. Large-scale API manufacturers incorporate it during the synthesis of select benzamide-derivative drugs, where tight control of impurities and trace residuals is required by regulatory agencies to pass batch release and plant QA. Integrators report tuning its addition based on final impurity profiles and target yield in complex multi-step reactions. Industry compliance standards
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2. Crop Protection Chemical Intermediate (Herbicide Synthesis)Downstream agrochemical manufacturers employ this molecule for the construction of advanced heterocyclic rings in post-patent herbicides. It functions as a builder for fluorinated aryl motifs, offering increased lipophilicity and environmental stability in field-use formulations. Process engineers manage dosage to control cost-per-kilogram and active content of the technical concentrate, guided by both regulatory residue limits and crop safety data. Industry compliance standards
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3. Specialty Chemical Intermediate for Liquid Crystal Display (LCD) MonomersMaterials manufacturers serving the electronics sector use this compound in the synthesis of custom fluorinated aromatic monomers. These monomers enhance dielectric properties and thermal stability of nematic and smectic liquid crystals for advanced flat-panel displays. The raw material enters oligomerization and subsequent functionalization steps tightly monitored by electronics QC teams for color, purity, and positional isomer content before integration into the supply chain for display assembly. Industry compliance standards
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4. Fluorinated Aromatic Intermediate for Advanced Polymer Performance AdditivesProducers of specialty polymers incorporate this raw material to introduce polar and hydrophobic properties into copolymeric chains, especially for demanding applications such as cable jacketing, membranes, and specialty films. QC and formulation labs monitor its use to balance melting point, processing window, and end-use chemical resistance. Large continuous polymerization reactors require precise dosing, and compliance with environmental requirements for residual monomer and fluorinated fragments is monitored by in-house labs and third-party certification bodies. Industry compliance standards
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5. Intermediate for Veterinary Drug Development (Parasiticide Synthesis)Animal health companies leverage this intermediate to develop new-generation benzamide-based parasiticides. It becomes incorporated in frameworks that target persistent pests in livestock and companion animals, allowing formulators to benefit from enhanced metabolic stability and extended action profiles. QA teams reference local agricultural and veterinary directives to validate each batch and set specifications for allowable contaminants at each synthesis stage. Industry compliance standards
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Every molecule we bring into the world carries a story built on long hours in the lab, countless scale-ups, and the daily commitment to the trust our customers place in us. Working with 3-Fluoro-5-(Trifluoromethyl)Benzamide—known in the shop as model 837304 for internal tracking—has shown us that demand for specialty benzamides never stands still. Whether it's pharmaceutical research or fine chemical synthesis, the need for well-characterized and reliably produced building blocks drives our workday.
There's no shortage of benzamide derivatives on the global market. Our frequent conversations with R&D scientists reveal that selecting the right analog matters for long-term project costs and downstream compatibility. 3-Fluoro-5-(Trifluoromethyl)Benzamide carries a unique balance of fluorine substitutions. This substitution pattern—fluorine at the 3-position and a trifluoromethyl moiety at the 5-position on the aromatic ring—brings out distinct reactivity and physicochemical features. Relying on our hands-on experience, we've seen how these functional groups tune the molecule's electronic properties. Pharmacological groups invest in this structure for its predictable behavior during lead optimization cycles. Agrochemical developers look for this scaffold when seeking robust resistance to hydrolysis and predictable interaction profiles.
Nothing replaces transparency and attention to detail once you're on the production line. Our process starts by securing high-purity precursors, tracked through comprehensive supply chain records. Over the years, our synthesis pathway for 3-Fluoro-5-(Trifluoromethyl)Benzamide has cut back on unnecessary process steps, reducing both solvent waste and energy consumption. Specific recrystallization and purification methods, based on hands-on observation rather than textbook recommendations, give us reproducibility that meets or beats in-house analytics with every lot. Customers consistently tell us that our batches blend seamlessly into their next-stage synthesis or analytical experiments, thanks to tight control over impurity profiles. That's something no spreadsheet template captures.
Those handling this compound every day know its physical form can make or break efficiency, especially at scale. After dozens of drying and milling trials, we've standardized a crystalline solid that pours without excessive caking, stores with minimal clumping, and dissolves quickly into polar organic solvents. Industry labs prefer this format since it folds directly into automated dispensers and pilot-scale reactors. We see far fewer handling complaints and minimal product loss due to dusting or bridging in feeders than with less optimized forms. Temperature excursions cause predictable, reversible changes with no hidden quirks, and our on-site quality team has verified that the shelf life under proper conditions extends comfortably through standard R&D and pilot production timelines.
Regulatory needs have come a long way since our first trial batches. Some chemists still remember the time when trace solvent residuals were accepted quietly; now, every ppm must be justified with robust analytical data. 3-Fluoro-5-(Trifluoromethyl)Benzamide, as we produce it, comes with full traceability, and our in-house documentation aligns with global demand for transparency. We offer detailed certificate of analysis packages, including identification by NMR and mass spectrometry, since we've learned from customers that snapshot analytics only skim the surface. Analytical methods are validated regularly in our own labs, so any batch leaving our gates presents no surprises down the road. We’ve seen collaborations run smoother when both sender and receiver speak the common language of validated chemistry.
We don't operate in a vacuum—customers share results and headaches, and we take notes. In medicinal chemistry, for instance, this compound provides an electron-withdrawing yet sterically clean site for subsequent amide or aryl coupling. Over the years, medicinal chemists have flagged that switching from closely related benzamides sometimes delays reactions or worsens side-product formation. Developers working with large-molecule actives have reported better-than-average yields following standard coupling protocols, with less need for protective group gymnastics during multi-step syntheses. In materials science, the fluorinated pattern imparts good thermal stability and consistent performance in exploratory coatings. These insights shape both our in-house process design and our technical support approach, which emphasizes sharing practical findings rather than just paperwork.
Some clients start their engagement by asking, “Is there a meaningful difference from 3-Fluoro-4-(Trifluoromethyl)Benzamide or non-fluorinated analogs?” Our bench chemists have run the comparison reactions and found that shifting either the fluorine or the trifluoromethyl group disrupts the molecule's kinetics and solubility. Subtle shifts in NMR signals translate to much bigger differences in downstream chemistry outcomes. Our line of benzamides covers various substitution patterns, but the 3/5 configuration stands out in feedback from labs screening for structure-activity relationships: the interplay of electron density and sterics shapes not just the outcome of one reaction, but the logic of entire research programs.
Years in the industry have taught us there’s no shortcut around hands-on scrutiny. Each batch goes through multiple checks—visual, spectroscopic, and LC-MS—before it receives lot approval. Our QC team works just a short walk from the reactors, so any deviation gets immediate feedback from both production and analysis teams. We hear from customers that this hands-on system assures more predictable results batch-to-batch compared to polarizing experiences they’ve had with less specialized suppliers.
Process reliability means more than scaling up milligram samples to kilogram lots. We’ve invested heavily in flexible reactor systems and environmental controls so that both sample and bulk orders carry the same standards. Scaling brings its own lessons—temperature uniformity, agitation rate, and solvent exchange need fine-tuning with real throughput. Once, a minor shift in our deprotection schedule taught us to never relax vigilance, since it altered product flow properties in ways that only showed up outside the tabletop scale. Now, with multiple years of continuous production data, we find late-stage supply interruptions rare, and customers often note in follow-up that they build R&D timelines confident in our delivery schedules.
Clients rarely ask only for a chemical. Instead, they look for real answers to daily bottlenecks. We field a range of requests—from solvent recommendations during bench reactions to deeper support integrating the compound into new protocols. Our technical managers often draw from firsthand shop floor experience, suggesting approaches that sidestep common dilution issues or pointing out downstream risks such as unexpected crystallization. This feedback loop works both ways: several modifications to our packaging and labeling came directly from regular users who pointed out ways to cut waste or prevent confusion in larger, busier labs.
Production of fluorinated aromatics often attracts scrutiny concerning byproducts and emissions. Transparency matters to us; we log key process parameters and publish yearly environmental audits. By redesigning workups to capture and recycle spent solvents, we keep waste to a minimum. Regular checks on storage conditions and safety drills sharpen our onsite teams’ skills, and we use lessons from real incidents for frequent cross-training. Whether dealing with containment, vapor management, or zero-loss transfer lines, the discipline of safety comes from repeated practice, not just regulatory paperwork. Local community feedback drives our investments in emissions control and safe transport infrastructure. We share real air-monitoring data openly with both authorities and nearby residents.
Many of our best process improvements trace back to project partnerships rather than pure in-house brainstorming. Customers approach us at all stages—early research, pilot plant scale, and tech transfer to global sites. Working side-by-side with external process engineers, we’ve tailored purification and size distribution according to specific downstream needs. We don’t see these collaborations as transaction-based, but as chances to push boundaries and share best practices. We encourage open communication about batch performance, upscaling limits, and any out-of-spec findings, feeding that straight into process updates so the next lot meets higher expectations.
Not every process runs without hiccups. Early production runs of 3-Fluoro-5-(Trifluoromethyl)Benzamide sometimes fell short on crystallinity or had excess trace organics. Rather than hiding these, we recorded everything and fed field feedback back into the process. Switching to improved filtrate handling and adjusting the final drying profile reduced particle adhesion and improved pourability, increasing end-user throughput. Our crew remains open about what works—and what needs more work—because we want lab teams to build on a foundation they trust. We stay in touch with product end-users to troubleshoot and brainstorm instead of resorting to canned answers.
Global customers are increasingly being asked to show sustainable sourcing and green chemistry compatibility. From our side, investment in low-impact process water loops and a gradual switch to greener solvents sets a baseline for future improvement. We have worked on reducing halogenated solvent usage wherever possible, and are participating in multi-company alliances to share lifecycle analysis and waste minimization practices. While specialty fluorinated compounds face unique disposal and regulatory barriers, our experience shows that incremental practical changes—like adopting in-line monitoring for yield optimization and reclaiming process water—reduce both footprint and production cost in ways that customers appreciate as part of long-term planning.
Rapid changes in project requirements call for flexibility without compromise on baseline standards. During the past two years, we have adjusted batch sizes on short notice to support both clinical trial scale and ongoing method validation batches. Rising interest in new therapeutic modalities and engineered materials means that our customer base now spans established multinational teams and entrepreneurial research groups. As more organizations look for specialized performance and regulatory support, our technical staff remains on call to address new plan shifts, alternate solvent compatibility, and formulation issues. We treat every shift as a learning opportunity, aiming to tie our operational agility with secure, consistent output.
We're seeing a shift toward more precise analytical requirements. In-house, we've invested in next-generation chromatography and automated NMR for batch release testing. Customers frequently send requests for more nuanced data, and our teams regularly integrate emerging techniques, from HRMS to impurity fingerprinting, to meet these needs. Looking ahead, our goal remains to keep pace with innovations that speed up project workflows while lowering uncertainty for those relying on our 3-Fluoro-5-(Trifluoromethyl)Benzamide for anything from drug candidate evaluation to materials screening.
Bringing a specialty intermediate like 3-Fluoro-5-(Trifluoromethyl)Benzamide to market involves more than just running an established recipe. Our team’s accumulated know-how feeds into every decision—whether adjusting pH during the wash step to cut down on micro-impurities or choosing drum lining that reduces static and spillage at the end-user site. Customers regularly tell us that the human factor makes the difference: they value being able to talk directly to a chemist who worked on their batch and can answer detailed questions. This grounded approach shapes our reputation more than any sales leaflet or generic technical data sheet.
For us, producing 3-Fluoro-5-(Trifluoromethyl)Benzamide is a partnership rather than a transaction. Every drum or bottle handled by our crew represents layers of chemistry, process optimization, and trust built with those who rely on us to help solve real-world R&D challenges. From investing in robust production and agile supply lines to prioritizing candid dialogue with customers, we view quality not as a fixed target but as an ongoing pursuit. Our commitment is grounded in the daily realities of chemical production and the shared progress that comes from tackling challenges openly, learning alongside our partners, and delivering more than just a product code on a manifest.