|
HS Code |
495232 |
| Productname | 3-(Trifluoromethyl)Benzamide |
| Casnumber | 349-98-8 |
| Molecularformula | C8H6F3NO |
| Molecularweight | 189.14 g/mol |
| Appearance | White to off-white powder |
| Meltingpoint | 143-146°C |
| Density | 1.38 g/cm3 |
| Purity | Typically ≥98% |
| Solubility | Soluble in organic solvents (e.g., DMSO, methanol) |
| Smiles | C1=CC(=CC(=C1)C(F)(F)F)C(=O)N |
| Inchi | InChI=1S/C8H6F3NO/c9-8(10,11)6-3-1-2-5(4-6)7(12)13/h1-4H,(H2,12,13) |
As an accredited 3-(Trifluoromethyl)Benzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle labeled "3-(Trifluoromethyl)Benzamide, 25g." Includes hazard symbols and tightly sealed with tamper-evident cap. |
| Shipping | 3-(Trifluoromethyl)Benzamide is shipped in tightly sealed containers to prevent moisture and contamination. It is packaged according to hazardous material regulations, clearly labeled, and cushioned to avoid breakage. Handling instructions and safety data sheets accompany the shipment to ensure safe transport and compliance with international and local chemical shipping standards. |
| Storage | Store **3-(Trifluoromethyl)benzamide** in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers. Protect from direct sunlight, moisture, and sources of ignition. Ensure that storage areas are clearly labeled and accessible only to trained personnel. Follow all relevant safety protocols and guidelines for chemical storage. |
Applications of 3-(Trifluoromethyl)Benzamide in Industrial Manufacturing3-(Trifluoromethyl)Benzamide acts as a key intermediate in multiple industrial sectors, especially in the synthesis of advanced molecules for pharmaceuticals, agrochemicals, specialty polymers, and performance coatings. As a direct manufacturer, we work closely with industrial clients to fit their specific process and regulatory demands in each downstream application. 1. Pharmaceutical Active Ingredient SynthesisPharmaceutical manufacturers source this compound as a core intermediate for the construction of active pharmaceutical ingredients, especially in anti-inflammatory and neuroactive drug synthesis. In controlled GMP environments, formulators introduce it during primary amide coupling stages, building critical scaffolds with trifluoromethyl groups for target selectivity. Quality assurance confirms purity and absence of unreacted precursor in each batch, as downstream process performance and API integrity rely on consistent composition. Industry compliance standards
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2. Agrochemical SynthesisMajor crop protection companies utilize this benzamide derivative as a critical intermediate for advanced herbicide and fungicide molecules. Its fluorinated structure provides chemical stability and bioactivity, supporting targeted synthesis of select agrochemical actives. Controlled reaction conditions and precise molar ratios ensure conversion to downstream triazole or pyrimidine building blocks, with QC confirming low residuals for field use registration. Industry compliance standards
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3. Specialty Polymer SynthesisAdvanced polymer manufacturers adopt this compound for functionalization of aromatic polyamides and specialty fluorinated polymers designed for chemical resistance and thermal stability. Incorporated at chain termination or as a comonomer, the benzamide group enhances material rigidity and imparts unique surface properties to the finished polymers. Batch documentation and in-process verification ensure proper incorporation rates and minimal monomer carryover to meet target property profiles. Industry compliance standards
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4. Performance Coatings and Surface ModificationIndustrial coatings formulators introduce this molecule as a crosslinking modifier for solvent-based resins, seeking enhanced adhesion and chemical resistance in automotive and electronics applications. Its trifluoromethyl group increases hydrophobicity and durability under harsh environmental exposure. Close attention to prepolymer mixture ratios and additive dispersion delivers stable, homogeneous application performance in downstream processing lines. Industry compliance standards
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Experience in chemical synthesis has shown the difference made by each intermediate, and 3-(Trifluoromethyl)Benzamide is one of those backbone molecules that keeps processes reliable. Our team relies on decades of hands-on know-how in fluorinated chemistry. The trifluoromethyl group, a defining piece of this compound, adds stability alongside powerful electron-withdrawing properties. This effect gives the amide a unique footprint for downstream synthesis. Powders and crystals coming out of our reactors are shaped not by chance but by the craft and care put into precise batch control and in-lab checks. Small changes in temperature, the handling of reagents, or the method of purification have real impacts — our lab teams monitor these changes not as a formality, but because a difference of a few points on a GC trace can turn a promising batch into a costly correction. That is the lived complexity of specialty organofluorines, especially as regulatory and environmental pressure keeps increasing.
Early in development cycles, chemists often look for ways to boost physicochemical performance with structural tweaks. The trifluoromethyl group has long been a favorite. Adding it to benzamide scaffolds opens the door for broader application, from pharmaceutical intermediates to agrochemical synthesis. Some pharmaceutical researchers count on the hydrophobic and metabolic resistance introduced by CF3. In agricultural chemistry, this same structural stability helps create compounds that withstand environmental pressures longer. In both cases, the material used must arrive with consistent purity. Too much water, residual reactants, or mixed isomers, and costly rework usually follows. We have seen customers go through supply chains that treat their bottleneck intermediates as ordinary catalog items, only to struggle with downstream failures or unexplained loss of yield. That is not something we accept.
Manufacturing 3-(Trifluoromethyl)Benzamide differs from producing more common amides or simple benzene derivatives. We take a hands-on approach, leveraging our pilot and full-scale lines built for high-containment and precision processing. The synthesis typically runs through acylation of the trifluoromethylaniline precursor, requiring not just standard safety, but also measures to handle corrosive fluorinated reagents and control side reactions. Experienced operators watch every stage — not only for yield, but to guard against any sign of hydrolysis or partial reduction. Each run includes in-process sampling. Spectroscopy, HPLC, and mass spectrometry results do not sit unused; technicians adjust conditions, clean glassware, and scrutinize every exception before a batch moves forward. Every gram is accounted for, which means the end user does not have to second guess the numbers on a certificate of analysis.
Adding a trifluoromethyl to the three-position does more than push up the molecular weight. It shifts electron density from the aromatic ring, changing both the reactivity in further steps and the behavior in target applications. We have customers who once worked with unsubstituted benzamide, only to run into solubility or stability limits. Test runs show that this CF3 group offers improved resistance to metabolic degradation, often leading to cleaner analytical profiles in discovery assays. In the world of process chemistry, the extra bulk can mean extra time in solution or the ability to survive harsher downstream transformations, especially halogenation or coupling steps. In contrast, standard benzamides break down or give side products when pushed or exposed to certain transition metals. That's not just theory — our records from both lab and kilo-scale campaigns validate the practical differences, batch after batch.
Sitting at the core of specialty chemical development, this compound often acts as a flexible building block. The amide group makes it ready for acyl transfer, nucleophilic aromatic substitution, or further electrophilic functionalization. The CF3 group brings added electron-withdrawing power, altering how enzyme systems recognize the molecule or how catalysts activate C–H bonds. Our experience with pre-GMP and GMP projects has shown that slight changes in residual impurities impact both the reactivity and reproducibility of scale-up chemistries. Batch failure rates tie directly to impurity levels, especially trace acetic anhydride or solvent residues, so we prioritize solvent stripping and vacuum steps. We routinely run extra drying cycles and check Karl Fischer titrations to guarantee moisture falls within tight limits. Only this level of vigilance stands up to the expectations in pharma and advanced materials.
In our years of supplying 3-(Trifluoromethyl)Benzamide, the biggest lesson has been how one well-made intermediate can open up a new series of end compounds. Customers choose it for its role in targeted synthetic campaigns — we’ve seen strong take-up among researchers designing antineoplastic agents, antivirals, and even next-generation agrochemicals. Those working at the cutting edge of chemical biology value the CF3 group for PET tracer development or ligand design, seeking selective receptor binding. Polymer researchers ask for the same molecule to test unique surface properties or thermal stabilities in specialty materials. This broad utility requires us to match not only purity but consistent supply, so every drum or bottle meets the needs of both clinical and pilot-lot applications.
Quality assurance never ends with a piece of paper. Decades in chemical synthesis have made us aware: every run carries a risk, no matter how familiar the reaction. A single oversight during workup or an unfamiliar impurity from a new solvent batch can put a brake on customer projects worldwide. Our QC professionals carry deep bench experience, drawn from hands-on problem solving when analytical results look off. Raw materials are sourced only from trusted suppliers with certificates fully checked. Batch release only happens after two layers of internal review, and all documentation is built to withstand audits. We keep detailed records on every process variable — pressure, temperature, time points — to trace out variations when something runs outside the lines. If customers mention a new application, that gets built into our review cycle, so consistency evolves with each real-world need.
Practical storage matters more than any storage spec sheet. Moisture drift can turn a high-purity product into one that throws off HPLC profiles, especially where amide hydrolysis threatens the outcome. Our staff packages this compound to rigorous standards, using moisture-barrier materials and labeling every batch with the relevant handling guidance. Transfer processes at customer sites have flagged new risks — so we often advise on container types, weighing stations, and in-line drying. The handling of fluorinated intermediates takes extra care: even users familiar with standard benzamides see differences in volatility and odor profile. We regularly review feedback from both internal scale-up and customer use, adjusting batch sizes or pack-out formats if required. Labs with limited ventilation or smaller pilot lines request smaller bottle sizes, which we fill directly at our line to prevent cross-contamination.
Working under evolving local and international chemical regulations, we go well beyond the paperwork. The use and disposal of fluorinated organics face increasing scrutiny. That has shaped not only our production protocols but our waste handling, emissions monitoring, and even the design choices on process oxidation. All effluents run through on-site treatment, separating fluorinated by-products for approved offsite destruction. We work closely with environmental officers and chemical safety teams, auditing our facility and keeping customers updated on any shift in regulatory status. Markets in the EU and North America have shown increasing preference for supply partners able to provide traceability and compliance evidence on demand. Environmental reporting and safe shipping have evolved into a daily part of life for our plant operators and logistics partners.
Repeatability underpins every successful project involving 3-(Trifluoromethyl)Benzamide. Whether a customer is establishing SAR libraries or working toward a process validation run, the cost of failure grows with every kilogram. Batch variation not only threatens downstream quality but can also stall entire development programs. Our scale-up management is built for full traceability: logbooks are updated after every run, and deviations are flagged for root-cause review. Physical properties such as melting point, particle size, and color are standard checks, but the checks go further into NMR, FTIR, and GC-MS profiles. We track trends in impurities, not just release specs, giving us a history that helps spot and correct systemic problems fast. As a manufacturer, our reputation depends on this diligence; shortcutting these steps is not an option.
We have witnessed too many projects stumble due to disconnect between producer and user. Our approach welcomes direct engagement, whether by sharing reaction optimization data or adjustment advice for specific batch behaviors. Customers developing a new synthetic pathway contact us for early-stage feedback — and we review their protocols in house, checking for potential off-path reactions or issues with solubility. It is not only about the powder or solid that leaves our site, but how well we can help it perform where customers apply it. Technical support does not remain a call-center afterthought; our R&D chemists work with client teams to troubleshoot and adapt as process needs evolve.
Direct control over production stands miles apart from catalog procurement. We manage each step of sourcing, synthesis, purification, and packaging under strict, recorded protocols. This control means modifications are possible on client request, whether for unusual solvent systems, alternate pack sizes, or performance-linked modifications in impurity thresholds. As industry demand for fluorescence, labeling, or specialty organofluorine chemistry has grown, this flexibility has become a key advantage. Our staff has faced and solved the issues that come from process troubleshooting — whether a failed catalytic reduction or an unplanned crystallization problem — and that experience gets embedded in each new batch.
Long-term manufacture of 3-(Trifluoromethyl)Benzamide has taught us that no two campaigns run quite the same. Feedstock variation, seasonal temperature swings, and equipment wear each leave a subtle mark on process outcomes. We have records on incident investigations, batch recalls, and even corrective process development steps, all feeding back into process improvements. Customer feedback rarely goes ignored. A single report of off-spec odor or solubility challenge triggers a format review and, when needed, changes to process or packaging. The best results come from this culture of continuous hands-on improvement, not simply adherence to a one-size-fits-all process schematic.
Workplace safety around trifluoromethylated organics cannot be left to generic protocols. Process engineers and operators face exposure not only to the end product, but to intermediate reagents like trifluoroacetic acid or oxidants. Every campaign benefits from a safety-focused pre-run check: PPE, fume hood render, and emergency practice sessions are the rule, not afterthoughts. We keep routine logs on air quality, exposure incidents, and all staff undergo regular training on best practices for handling both the final product and the associated wastes. For the users of 3-(Trifluoromethyl)Benzamide, we make sure key safety data sheets and guidance notes come with each release, prioritizing open communication if a hazard changes due to process revision or new regulatory information. Our priority remains keeping everyone, from the plant to the bench, fully protected.
The chemical landscape is evolving rapidly as both product developers and end-users demand greener chemistry and lower environmental impact. 3-(Trifluoromethyl)Benzamide presents challenges — disposal of fluorinated waste, minimizing solvent use, and lowering energy input all demand ongoing attention. In-house, we continue exploring continuous processing techniques, which cut down on solvent consumption and enable more efficient heat management. Our R&D division evaluates potential alternatives for hazardous reagents, adapting new catalytic methods to replace traditional approaches. Every improvement, large or small, reduces not only production cost but the environmental load per kilogram of product. This drive for sustainability is shaped by experience — mistakes, solutions, and ongoing customer dialogue.
Chemical manufacturing comes down to trust and transparency built through years of outcomes, not promises. Choosing 3-(Trifluoromethyl)Benzamide from an actual manufacturer rather than a reseller pays dividends: full process visibility, true batch customization, and open technical support. Our experienced team does not just read SOPs — they live them, adapting and innovating as situations demand. Batch records, analytical spectra, and process logs are accessible, not gatekept, because credibility grows from openness and the resolve to learn from every batch. While traders and intermediaries link supply chains, manufacturers accept responsibility for outcome, safety, and reliability. Every kilo that leaves our plant comes with the assurance that it reflects not only technical specification, but the mindset and diligence of the hands that made it.
The role of 3-(Trifluoromethyl)Benzamide in today’s R&D scene cannot be overstated. Our partners use it to unlock new classes of active pharmaceutical compounds and more resilient agrochemicals. As molecular design grows more complex, availability of high-quality intermediates determines both speed and success in getting to the patent or product launch finish line. Research teams that once tolerated variance in their starting materials now take stock of the difference made by tight controls over purity, moisture, and impurity profile. The technical leap from ordinary benzamide to the trifluoromethylated variant does not just represent a synthetic choice, but a strategic commitment to higher reliability, reproducibility, and innovation.
From the manufacturer’s perspective, 3-(Trifluoromethyl)Benzamide reflects far more than a chemical name or inventory code. It embodies the years spent understanding fine points of synthesis, the countless checks and tweaks built into every run, and the collaboration forged with users out at the edge of their fields. Our journey with this compound is ongoing, shaped by every new challenge, partnership, and advancement in synthetic chemistry. The commitment to manufacturing excellence, safety, sustainability, and open support remains as strong as ever — with every gram made, shipped, and applied in new chemistry, we build on that promise.