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HS Code |
449145 |
| Chemicalname | 3-(Trifluoromethoxy)Benzamide |
| Casnumber | 1739-84-0 |
| Molecularformula | C8H6F3NO2 |
| Molecularweight | 205.13 |
| Appearance | White to off-white solid |
| Meltingpoint | 122-124°C |
| Solubility | Slightly soluble in water; soluble in organic solvents |
| Smiles | C1=CC(=CC(=C1)C(=O)N)OC(F)(F)F |
| Inchi | InChI=1S/C8H6F3NO2/c9-8(10,11)14-6-3-1-2-5(4-6)7(13)12/h1-4H,(H2,12,13) |
| Purity | Typically ≥98% |
| Storageconditions | Store at room temperature, in a dry place |
| Synonyms | m-(Trifluoromethoxy)benzamide |
As an accredited 3-(Trifluoromethoxy)Benzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle with secure screw cap, labeled “3-(Trifluoromethoxy)Benzamide, 25g”, includes hazard symbols and safety information. |
| Shipping | 3-(Trifluoromethoxy)Benzamide is securely packed in sealed containers to prevent contamination and moisture exposure. Shipping is conducted in compliance with chemical safety regulations, using cushioned, sturdy packaging. All necessary documentation, including safety data sheets, accompanies the shipment. Transport may require labeling for hazardous material, depending on local and international guidelines. |
| Storage | **3-(Trifluoromethoxy)benzamide** should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and sources of ignition. Avoid contact with strong oxidizing agents. Store at room temperature (typically 20-25°C). Ensure proper chemical labeling and keep away from incompatible substances. Follow institutional guidelines for handling and storage of hazardous chemicals. |
Applications of 3-(Trifluoromethoxy)Benzamide in Industrial Manufacturing3-(Trifluoromethoxy)Benzamide functions as a key synthetic intermediate in several advanced sectors, including pharmaceuticals, agrochemicals, and specialty materials. Its unique benzamide framework and trifluoromethoxy group enable specific chemical transformations at industrial scale. Below, we detail major downstream applications with compliant standards, technical integration, and final end-use details. 1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredient SynthesisPharmaceutical manufacturers employ this compound in the multi-step synthesis of certain APIs, specifically in the production of selective serotonin reuptake inhibitors (SSRIs) and kinase inhibitors. It provides both reactivity and structural motifs needed for heterocycle formation. Integration into API syntheses follows protocols governed by cGMP guidelines. Our technical support ensures trace impurity analysis, ensuring regulatory acceptance during drug registration and bulk synthesis campaigns. Industry compliance standards
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2. Herbicide and Fungicide Active Ingredient Building BlockMajor agrochemical producers use 3-(Trifluoromethoxy)Benzamide as a functional building block in the synthesis of phenoxy-based herbicides and systemic fungicides. The trifluoromethoxy substituent enhances bioactivity and environmental persistence, which is essential for field efficacy. The material’s purity and compliance with agrochemical GMP systems allow downstream partners to meet global registration needs. Industry compliance standards
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3. Specialty Polymer Modifier and Monomer for Fluorinated Resin ProductionProducers of specialty polymers use this compound as a modifier in copolymerization. The fluorinated group imparts chemical resistance and modifies surface energy characteristics in finished resins. Technical teams at polymer plants dose precise amounts during the initial polymerization stage to fine-tune properties such as hydrophobicity and abrasion resistance, following strict industrial polymer standards for high-value materials. Industry compliance standards
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4. Advanced Material Precursor for Liquid Crystal and OLED CompoundsManufacturers in electronics and display materials synthesize high-purity small molecules using this benzamide derivative as a core starting material. The fluorinated aromatic ring enhances thermal stability and electron transport in liquid crystal mixtures and organic light-emitting diode (OLED) emitters. Production lines maintain strict material traceability for quality control, regulated by electronics-grade standards to ensure consistency in optical and electrical properties. Industry compliance standards
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Over the years, chemical manufacturing has seen a stream of innovation, born from curiosity, regulatory demands, and an unwavering need for reliability in fine chemistry. At the heart of this work, producing compounds like 3-(Trifluoromethoxy)Benzamide has become a staple for us. Experience shows that demand from agrochemical and pharmaceutical research keeps growing. Why? Research projects call for robust building blocks.
Production starts from high quality raw materials. Handling gaseous reagents and multistep purification, we see the side of chemical manufacturing that calls for daily skill and attention. Operators in our plant know well the care needed during the introduction of the trifluoromethoxy group, which shifts the reactivity profile in ways hydrogen or even methoxy constituents cannot match. Using our own reactors for scalable batch processing, the process must run smoothly, meeting specification after repeated scale-ups, not just at lab scale. Running several kilos isn't the same as a gram-scale prep; anyone that manufactures for discovery or industrial partners knows this first-hand.
In laboratory environments, chemists look for reliability in their intermediates. They expect clear identification – a compound should have a proper COA based on reliable analytical methods. For 3-(Trifluoromethoxy)Benzamide, we routinely use HPLC and NMR to trace impurities or confirm structure. Our analytical team refines these methods with every batch. Beyond the literature values, our own instrument results matter for every delivery.
Much of the unique value in 3-(Trifluoromethoxy)Benzamide comes from its fluorinated structure. Swapping an everyday methoxy group for a trifluoromethoxy counterpart creates changes in lipophilicity, electron distribution, and stability in the benzamide backbone. These properties are not theoretical — they matter to our clients whose lead molecules hinge on these tweaks. Project scientists see this compound as a key intermediate in synthesis, not just an end in itself. Having manufactured both non-fluorinated analogues and the trifluoromethylated version, the operational differences aren't lost on us. Yields shift, purification gets trickier, and waste management for fluorinated byproducts takes on new importance.
When reviewing recent customer specs for this compound, the top requests cluster around purity, moisture content, and solubility. In our experience, an HPLC purity above 98% meets the expectations in both pharmaceutical screening and agrochemical library creation. Typical physical form comes out as a solid, often needle-like crystals, and color varies from white to pale yellow depending on trace impurity levels.
Some users request low moisture content products, especially for moisture-sensitive routes, so we control residual water using drying ovens and Karl Fischer titration. Solubility drives protocol design downstream — with trifluoromethoxybenzamide, users dissolve it in DMSO, acetone, or acetonitrile, but water resistance is often noted in reports. These aren’t mere technicalities: we adapt our drying and packaging steps to limit unwanted hydrolysis and keep batch-to-batch variability at bay.
Unlike products coming from resellers, direct production lets us tailor to the high-purity fraction required for screening campaigns. Production scale sometimes tips over to several kilograms, but it rarely follows the tonnage scale typical of commodity materials. Lab-scale synthesis can skate over impurities or allow broader cut-points on specs; as manufacturers, we cannot. Every chromatogram, every melting point, every MS trace is checked with the understanding that this material may end up in a medicinal chemistry project under regulatory scrutiny.
There’s a tendency in the market to lump together benzamides as if all behave alike in development work. We see the practical gulf between their properties in daily operations. Non-fluorinated benzamides react with certain reagents faster, but the trifluoromethoxy group brings a stubborn inertness to the ring system, which sometimes complicates downstream chemistry. Some customers request a panel of related compounds (chloro, methoxy, methyl benzamides) and the lab bench tells its own story of reactivity, solubility, and storage needs.
3-(Trifluoromethoxy)Benzamide stands out for strong electron-withdrawing power, meaning that nucleophilic attack is suppressed versus its simpler cousins. In terms of stability, exposure to air and light generally isn’t a problem, but during synthesis, the intermediate steps can be more sensitive, especially if bases or strong acids are involved. Having the manufacturing know-how lets us minimize side reactions and sometimes coax higher yields out than expected from old literature protocols.
From an environmental perspective, the fluorinated byproducts generated in the manufacture of 3-(Trifluoromethoxy)Benzamide require segregation and specific waste handling that typical benzamide routes do not. We have partnerships with regional handlers for safe disposal and invest in solvent recycling programs. These back-end steps add cost and complexity but matter for compliance and our own environmental stewardship goals.
Most of the demand we see for trifluoromethoxybenzamide ties to pharmaceutical and agrochemical research teams. Its main role presents as a building block for active molecules in discovery libraries and patent filings. In pharmaceutical settings, the trifluoromethoxy group influences metabolic stability and often extends the half-life of drug candidates. For agrochemical uses, the same structural tweak shapes bioactivity, sometimes unlocking whole new classes of herbicides or fungicides.
Customers in these spaces rarely want off-the-shelf inventory. They value documentation, traceable batch records, and technical support on how the product behaves in new syntheses. Drawing on our own files, we've seen repeated requests for process development support: how to handle the solid form, how to avoid polymerization during storage, and what solvents suit initial dissolution best. It’s rarely the catalog number that closes a sale; it's the firsthand technical answers that matter.
Large-scale production involves more than reactants, glassware, or reactors. Plant operators watch for errant exotherms, keep an eye on color changes, and make judgment calls during solvent switches. We’ve learned that precipitation of the trifluoromethoxybenzamide from reaction liquor sometimes needs slow cooling, not just vacuum stripping. In a few batches, differences in nucleation led to variations in particle size, which in turn changed the handling characteristics during filtration.
Operators and QC staff exchange notes on recurring issues — static build-up on collection vessels, needle-like crystals sticking inside glassware, and rare cases of clumping during drum storage. Adjusting sieve mesh sizes and using upgraded packaging liners with antistatic properties made direct impacts on how smoothly downstream packaging ran. These aren’t details most academic papers mention, but production-scale manufacturing demands attention to these “small” factors.
Direct engagement with buyers shapes a big part of our workflow. Researchers expect fast answers when documentation lags or unusual results turn up in the lab. Sharing titration curves, sample spectra, and packing lot histories helps solve these problems. More than once, project chemists working on time-sensitive patent projects have needed overnight shipments or technical input at odd hours about solvent residues. Being the producer, not just a distributor, lets us respond with answers based on hands-on data, not speculation.
Through handling countless shipments, we listen when clients report odd smells, clumping, or unexpected NMR signals. Sometimes these flags tie back to subtle shifts in upstream raw material purity or to changes in solvent suppliers. We run extra analytical checks and communicate quickly about root causes. Our supply chain isn’t immune from shocks, but close monitoring and transparency help protect partners’ timelines and confidence.
Anyone in chemical manufacturing in 2024 can see that regulations tighten every year, especially on organofluorine compounds. Both REACH and various US agencies demand traceability and documented disposal practices for all process waste. We invest not only in incineration partnerships but also recovery steps for solvents to reduce landfill load and emissions. These efforts add operational costs but reflect the long view we need to take as primary industry producers.
Process safety sits close to the core of manufacturing such intermediates. All operators undergo annual hazardous material handling training, and we review process risk profiles after every significant batch revision or scale-up. This means pressure relief devices and gas scrubbing systems — born partly from incident reports across the industry — are now standard in our workflows. These aren’t just regulatory boxes to check; our team’s health and safety depend on these controls.
The push for greener routes doesn’t stop. Our technical team routinely runs pilot trials to explore solventless routes or to use less aggressive fluorinating agents, seeking to lower both emissions and raw material hazards. Progress takes time and often means incremental gains in yield or waste reduction, rather than headline-grabbing breakthroughs. From these efforts, operational knowledge accumulates. For example, one tweak in dehydration conditions recently trimmed 6 hours of downtime in the post-reaction dry step, letting us hit delivery cycles faster.
Customer feedback loops drive several of these improvements. When delivery times started stretching last year due to global supply chain crunches, we increased on-site inventory buffers and signed alternate contracts with raw material suppliers. Supply resilience, in our view, comes from layered redundancy and training new staff to run backup synthesis lines if needed.
Sourcing fluorinated building blocks puts stress on both procurement teams and plant schedulers. The cost of trifluoromethoxy precursors rises unpredictably with global supply swings. We hedge this by keeping close contact with upstream suppliers and sharing demand forecasts, which helps but never removes the uncertainty fully. For batch planning, flexibility wins: if a backorder hits, being able to swap in a slightly different route prevents production slowdowns.
Parallel to materials, talent shortages in chemical process operators and analytical chemists shape the manufacturing outlook. We invest in keeping our workforce skilled, offering incentives for training and cross-job skills sharing. In turn, this internal knowledge helps maintain consistency, especially when troubleshooting new synthetic issues or implementing new analytical routines for batch monitoring.
The value of purchasing directly from a chemical manufacturer runs deeper than pricing or quick delivery. A direct supplier includes decades of process insight, adaptation to client feedback, and the ability to resolve technical queries with data from real plant runs. For discovery-scale clients, being able to troubleshoot an unusual side reaction with process chemists, or to discuss alternate packaging for moisture-sensitive applications, frequently saves both time and budget.
Batch documentation — including full certificates with NMR, HPLC, sometimes even single-crystal X-ray confirmation — offers an extra layer of confidence when projects move toward pilot or regulatory review. These forms of traceability give end-users assurance that every delivery upholds standards from accredited manufacturing premises, not just repackaged bulk chemistry.
Investment in predictive process models, using AI and real-time sensor data, increasingly allows for faster troubleshooting and more consistent product quality, even as production lines scale up or switch between analogues. Early detection of out-of-specification conditions using in-line analytics helps reduce both waste and rework cycles, letting us ship only the best material.
On the environmental front, collaborative research into greener fluorination methods is gaining steam. Transitioning away from traditional, harsh reagents not only reduces hazards but could eventually cut overall cost profiles, especially as the price of compliance rises. Our ongoing in-house research feeds into broader industry partnerships, with early results from alternative reagent systems suggesting fewer emissions and lower waste volumes.
Internally, digitization of batch records and real-time quality dashboards improve transparency and expedite documentation, streamlining audits and compliance reporting. For clients, this means faster access to batch traceability when timelines for new molecule launches contract under competitive pressure.
Years in this field teach that every new route or process faces hurdles, whether in yield, impurity control, or process safety. What sets a manufacturer apart is the tenacity to analyze, adjust, and relay not just product but hard-won process insights to users. Direct involvement gives rise to a culture where continuous improvement is normal.
Clients benefit from this environment — they receive robust documentation, transparent answers to tough questions, and product experience rooted in hands-on batch records. Reliability isn’t something that emerges overnight, especially in fine and specialty chemical synthesis. It grows from routine, from attention to repeat small process steps, and from a willingness to revisit old procedures in light of new challenges. That’s how manufacturing resilience takes form and why end-users come back to producer lines for their supply needs.
The value of 3-(Trifluoromethoxy)Benzamide reaches further than most catalog descriptions suggest. Supporting next-generation drug and agrochemical products takes more than straightforward chemistry. Getting batches out on time, at specification, and with documentation that stands up to audit is a challenge that belongs to the manufacturer, not the trader.
Years of experience with related benzamides, observing firsthand the behavior of trifluoromethoxy substitutions, shape our commitment to reliability, technical transparency, and regulatory foresight. From reaction set-up through final shipment, every step shows the practical difference between a true producer and everyone else in the supply chain.