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2-Fluoro-4-(Trifluoromethyl)Benzamide

    • Product Name 2-Fluoro-4-(Trifluoromethyl)Benzamide
    • Alias 2-Fluoro-4-(trifluoromethyl)benzenecarboxamide
    • Einecs 245-897-0
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    564189

    Chemicalname 2-Fluoro-4-(trifluoromethyl)benzamide
    Casnumber 886370-44-5
    Molecularformula C8H5F4NO
    Molecularweight 207.13
    Appearance White to off-white solid
    Meltingpoint 85-89°C
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥98%
    Smiles C1=CC(=C(C=C1C(F)(F)F)F)C(=O)N
    Inchikey LHMJJKOFSGXWDH-UHFFFAOYSA-N
    Synonyms 2-Fluoro-4-trifluoromethylbenzamide
    Storageconditions Store at room temperature, dry, tightly closed
    Hazardclass Non-hazardous (reference only, verify before use)

    As an accredited 2-Fluoro-4-(Trifluoromethyl)Benzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 2-Fluoro-4-(Trifluoromethyl)Benzamide is supplied in a 5g amber glass bottle with a secure, tamper-evident cap.
    Shipping 2-Fluoro-4-(Trifluoromethyl)Benzamide is shipped in secure, chemically-resistant containers compliant with safety regulations. It is transported under ambient conditions, protected from moisture and direct sunlight. Proper labeling and documentation are included to ensure safe handling. Delivery adheres to national and international hazardous materials shipping standards.
    Storage 2-Fluoro-4-(trifluoromethyl)benzamide should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible materials such as strong oxidizers. Protect the chemical from moisture, direct sunlight, and sources of ignition. Store at room temperature and handle following standard laboratory safety protocols, including the use of appropriate personal protective equipment.
    Application of 2-Fluoro-4-(Trifluoromethyl)Benzamide

    Applications of 2-Fluoro-4-(Trifluoromethyl)Benzamide in Industrial Manufacturing

    2-Fluoro-4-(Trifluoromethyl)Benzamide serves as a highly selective intermediate for advanced chemical synthesis. Our consistent supply supports key segments of pharmaceutical and agrochemical manufacturing, as well as the development of specialized polymers and liquid crystal materials. Below, we present focused scenarios based strictly on direct, field-validated adoption of this raw material, supported by sector-specific regulatory frameworks, established dosage benchmarks, clearly defined process integration points, and representative end-use products.

    1. Pharmaceutical Intermediate for API Synthesis

    Major pharmaceutical manufacturers apply this compound as a core synthon in the preparation of fluorinated benzanilides and related structures, including several new generation antipsychotics and oncology therapeutics. Key process steps demand close attention to cGMP compliance and international pharmacopoeia standards due to stringent impurity and traceability controls. The input ratio hinges on the target molecular scaffold but remains defined for each API route through process validation studies and regulatory filings.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • Current Good Manufacturing Practice (cGMP, 21 CFR Parts 210/211)
    • Reference to monographs in United States Pharmacopeia (USP) and European Pharmacopoeia (Ph. Eur.) where applicable
    • Drug Master File (DMF) submission requirements (FDA/EMA)

    Typical usage ratio

    • Used at 0.2–0.8 molar equivalents relative to the target intermediate; amount is adjusted based on desired substitution and process yield, as determined by synthetic scale-up and optimization protocols

    Downstream process integration

    • Introduced at key amidation or halogen-exchange coupling stages of multi-step organic synthesis, with in-process analytical control ensuring structure-specific incorporation

    Final product types

    • Pharmaceutical active ingredients for antipsychotic agents
    • Oncology drug API cores
    • Central nervous system and anti-inflammatory drug intermediates

    2. Agrochemical Synthesis (Herbicide/Pesticide Intermediates)

    Agrochemical formulators employ the material as a functional group source in the development of modern fluorinated benzamide herbicides and fungicides, selected for its impact on metabolic stability and target affinity. The process demands precise traceability and compliance with environmental and agrichemical standards, while the optimal addition level follows pilot plant verification to control cost and byproduct levels specific to each actives formulation.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides
    • OECD Principles of Good Laboratory Practice (GLP)
    • ISO 9001-certified manufacturing for downstream use
    • National registration under U.S. EPA FIFRA or EU Regulation (EC) No 1107/2009

    Typical usage ratio

    • Blended at 3–8% by weight in active ingredient synthesis streams; formulated ratio set by the desired level of fluorination and bioactivity in proprietary product designs

    Downstream process integration

    • Fed at the acylation or fluorination assembly stage, directly imparting electron-withdrawing character to emerging agrochemical actives during batch or continuous synthesis

    Final product types

    • Selective herbicide actives (e.g., fluorinated benzamide derivatives)
    • Fungicides targeting resistant crop pathogens
    • Seed treatment actives

    3. Advanced Polymer Modifier for Fluorinated Specialty Plastics

    Producers of high-performance fluorinated polymers introduce 2-Fluoro-4-(Trifluoromethyl)Benzamide as a monomeric modifier, fine-tuning physical and dielectric properties in tailored copolymer systems. Strict monitoring for residuals, along with adherence to polymer-grade QC systems, is maintained to ensure downstream usability in electronics and engineering applications requiring unique material signatures for demanding service environments.

    Industry compliance standards

    • ISO 9001 Quality Management for Specialty Polymer Manufacturing
    • REACH Annex XVII and SVHC assessments for monomer use
    • RoHS (Restriction of Hazardous Substances) compliance for electronics-related compounds
    • Customer-specific physical-chemical specification sheets and third-party test data

    Typical usage ratio

    • Introduced at 0.5–2% by mass within co-monomer feeds; the exact dose is selected following rheological analysis and QC data relating to polymer performance in end applications

    Downstream process integration

    • Added during bulk or solution polymerization, typically before polymer chain propagation, allowing direct incorporation of fluorinated aryl groups into polymer backbones

    Final product types

    • Fluoropolymer films for electronic insulation
    • High-durability engineering plastics
    • Specialty coating resins

    4. Intermediate for Liquid Crystal Material Development

    Manufacturers of liquid crystal compounds adopt this chemical as a specialty intermediate for the synthesis of novel mesogenic units used in advanced liquid crystal displays and optical devices. Comprehensive material investigation ensures consistent liquid crystal phase behavior, while strict adherence to materials purity and trace contaminant requirements facilitates downstream electronic-grade use.

    Industry compliance standards

    • IEC 61249-2-21: Halogen-Free Materials for Electronic Applications
    • Japanese Industrial Standards (JIS) for Liquid Crystal Materials (e.g., JIS C6106)
    • ISO 14001 Environmental Management for chemical processing
    • In-house QC standards on material purity, birefringence, and ionic contamination

    Typical usage ratio

    • Used at 0.1–0.7 molar equivalents as dictated by the desired liquid crystal phase transition profile and molecular weight target set during formulation trials

    Downstream process integration

    • Inserted at the arylation or amidation step in mesogen core assembly, followed by rigorous purification prior to blending into multi-component nematic or smectic mixtures

    Final product types

    • High-stability LC molecules for TFT-LCD manufacture
    • Polarizing films for display technology
    • Opto-electrical device materials
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    Certification & Compliance
    More Introduction

    Introducing 2-Fluoro-4-(Trifluoromethyl)Benzamide: A Practical Look from the Manufacturer

    Realities behind Production and Offering

    Every batch of 2-Fluoro-4-(Trifluoromethyl)Benzamide that leaves our reactors carries the story of the process that brought it there. Our facility specializes in aromatic amide synthesis, with a clear focus on fluorinated building blocks. This compound didn’t get its reputation by accident—it’s a direct result of informed choices about reagents and procedures. Through the years of handling these substances, we have learned that getting strong NMR results and high assay content is not just a point of pride, it’s a necessity for everyone down the chain, whether at the discovery level, during intermediate upscaling, or in formulation.

    The model we follow for this compound is driven primarily by the needs of researchers and producers experimenting with novel pharmaceuticals and specialty agrochemicals. The CAS number identifies it, but the real difference comes from the purity and consistency built into our batches, which are prepared according to rigorous protocols. Each lot gets checked against set HPLC specifications, and FTIR spectra are recorded as part of our routine quality assurance.

    We've heard concerns over slight impurities—chlorinated analogs, unreacted starting materials, and trace moisture. We navigate those risks every day. On a technical level, the greatest difference between 2-Fluoro-4-(Trifluoromethyl)Benzamide and more standard benzamides comes from the unique electronic effects of the fluoro and trifluoromethyl groups. These functional groups shift reactivity in predictable and sometimes surprising ways, which matters dearly to those investigating receptor-ligand interactions or working through agricultural formulation problems. Having made both standard benzamides and fluorinated analogs side by side, we've seen how solubility profiles change abruptly, and how downstream reactions either proceed smoothly or stall entirely due to one substituent’s presence where another once sat.

    Specifications and Handling

    Laboratories and manufacturers come to us for 2-Fluoro-4-(Trifluoromethyl)Benzamide in ranges starting at grams and moving up to multikilogram orders. Our typical specification includes purity above 98 percent by HPLC, water content below 0.5 percent by KF, and single-digit ppm for heavy metal residues. We decided on this level after feedback from pilot plant managers and medicinal chemists, who run into bottlenecks when trace contamination shows up at inconvenient steps, costing days or even weeks off R&D timelines.

    The packaging reflects the true nature of the material. We use amber glass and lined HDPE drums, not to check a box, but because sunlight and moisture create byproducts that would otherwise undermine the compound’s value. Customers pointed to previous issues where subpar storage meant chasing down extra purification—something we address up-front with protective packaging and rapid shipping as part of our standard practices. No product leaves our site without individualized checks, and every drum or bottle includes a certificate correlating with the analytical lot file retained in our on-site archive.

    In production, we avoid commonly used chlorinated solvents unless absolutely necessary, both to comply with internal sustainability initiatives and because some of our downstream partners produce regulated final goods. Each process batch goes through an active monitoring routine, where reaction course, endpoint detection, and solvent recovery get reviewed by our process chemists. When a change arises, such as a supplier updating a raw material certificate or a handling property drifts over time, we react and adapt. There is no shortcut in continuous fine chemical manufacture.

    Distinctive Features and Application Insights

    Chemists who have compared a variety of substituted benzamides over the past decade will notice how the combination of a fluoro group and a trifluoromethyl moiety on the aromatic ring tips the balance. 2-Fluoro-4-(Trifluoromethyl)Benzamide introduces altered electron density, shifting interaction patterns both in synthesis and in biological screening. We see this reflected in the library requests we receive: where methyl or chloro analogs serve as broad reference points, researchers turn to this compound for deeper SAR exploration, especially when new patent space or innovative activity profiles come into play.

    The finished product appears as a white to slightly off-white crystalline solid at room temperature, with a melting point in the moderate range typical for amide derivatives. Its volatiles give a sharp, recognizable odor during synthetic workups, but proper venting and PPE keep our operation running safely and smoothly. One unique aspect of this molecule, confirmed through repeated recrystallization, lies in its resistance to solvating in standard alcohols and only partial solubility in common ethers. This property sometimes plays a role for customers, whose own solvent selection for subsequent transformations or formulations can change the outcomes of entire projects.

    We’ve watched the adoption grow across several sectors. Pharmaceutical research relies on benzamide scaffolds, often pushing substituent patterns as far as the synthetic chemistry can allow. Agrochemical innovators approach us with new active principle concepts, often seeking to extend persistence in field conditions where volatility and photodegradation typically narrow the playing field. The strong C–F bonds and the electron-deficient ring give 2-Fluoro-4-(Trifluoromethyl)Benzamide a key advantage for those needs.

    Differences That Matter

    Making and working with 2-Fluoro-4-(Trifluoromethyl)Benzamide differs from many other substituted benzamides in both production and practical application. From the synthesis side, direct fluorination strategies present unique challenges. The risk of overfluorination or ring substitution at unplanned sites means quality control catches minor deviations long before anything is ever shipped. We do not approach these reactions using recycled solvent streams or crude workups—our standard reminds us daily that control equals value, especially at scale.

    In actual lab use, end users notice differences during purification and functionalization. Fluorinated aromatics tend to possess lower nucleophilicity, altering reactivity in certain coupling or amidation steps. Some standard silica gel columns that work for methyl or chloro benzamides just do not cut it for this molecule, so careful chromatographic optimization is a advice we pass directly to our clients. Many who move from early bench work to pilot scale find that recovery rates change; high volatility solvents do not always bring this compound over during extractions, pointing toward alternative methods we have tested internally and are happy to share.

    From the perspective of a manufacturer who has spent long nights troubleshooting reaction progress, scaling up from a laboratory flask to reactor vessels, the biggest operational difference lies in waste management and recovery. Byproducts from these processes often need specialized handling, not just for safety, but to keep our shop running cost-efficiently. We maintain a solvent recycling loop, and hazardous waste is tracked in real time rather than quarterly, streamlining both costs and compliance. Colleagues in discovery-focused shops rarely see this, yet it matters each and every time the order form comes through.

    Working with Industry Partners

    The collaborative aspect of supplying 2-Fluoro-4-(Trifluoromethyl)Benzamide defines much of how we view its development cycle. This isn’t a brokered commodity. End users frequently reach out well in advance of a full-scale order, seeking insight on solubility, purification, and even intermediate handling tricks that might only show up in large batches. Our technical support line stays open not just for the sake of customer service, but because our chemists benefit too—each downstream challenge broadens our understanding, bringing process improvements for future lots.

    Partners in pharma and agrochemicals ask about stability under various conditions and how to integrate the compound into challenging synthetic routes. We share the practical lessons learned from experience: avoid using basic aqueous workups, select non-chlorinated solvents when possible, and always test small scale prior to main production. Several projects get their start in our on-site application lab, where custom protocols and reference samples are developed under NDA. This fine-tuned support, born from years spent on both sides of the bench, shortens development time for our partners and improves our manufacturing cycle predictability.

    On more than one occasion, regulatory reviewers have asked for full lifecycle traceability for batches of 2-Fluoro-4-(Trifluoromethyl)Benzamide. We maintain digital and paper records down to the gram for starting materials, finished batches, and laboratory samples. This includes chain of custody, analytical data, and reference spectra. We pursued this practice originally for our own peace of mind, but as regulations have mounted, it has proved essential for long-term relationships.

    Supporting Supply Chain Integrity

    Keeping the flow of raw materials steady requires attention. Weather delays, port slowdowns, or unexpected contamination in a precursor—all these can stop a production run. Our team built redundancy into sourcing routes based on experience, qualifying multiple suppliers wherever possible and maintaining on-site reserves for critical precursors. It is common sense for those who have lived through a lost batch or a stranded shipment.

    As for forecasting, we interact regularly with client planners to understand ramp-ups or slowdowns before they affect our operations. This enables our warehouse to remain responsive to both large recurring orders and spot market requests, even as other suppliers occasionally experience unplanned downtime. We don’t speculate on bulk markets or take shortcuts on shelf life or re-certification—every lot on offer has a living analytical file that connects with past and current performance.

    Continuous Improvement and Technical Learning

    Staying relevant with 2-Fluoro-4-(Trifluoromethyl)Benzamide means checking assumptions year after year. Analytical technology doesn’t stand still, nor does regulatory scrutiny. Our QC chemists revisit each NMR and mass spectral library update, not just to check for compliance, but to pinpoint trace contaminants that might become relevant in new applications. We regularly review instrument calibration logs—GC, HPLC, FTIR—and take part in cross-lab validation studies when introducing changes to our methodology.

    No story about fine chemical manufacturing is complete without talking about people. Our staff trains on active feedback, on calibration procedures, on PPE changes—anything that produces a safer, more transparent operation. Safety isn’t handled as an afterthought. Several process improvements, from dust containment to process cooling, came directly after line technician suggestions. This keeps our batch losses low, product throughput high, and quality incidents nearly nonexistent.

    External audits, from those in the regulatory community or our large customer base, are welcomed as growth opportunities rather than just obligations. Documented findings turn into improved SOPs, cleaner paperwork, and ultimately, a better product. We understand that each change—a tweaked reaction temperature, a new drum liner, a revised solvent schedule—directly impacts what our customer receives, and we build those lessons into each future lot.

    Practical Application Scenarios

    Feedback from users keeps our understanding current. One major pharmaceutical partner flagged a subtle byproduct in their HPLC trace that led our team to further purify a related intermediate, improving both their yield and our long-term lot quality. An agrochemical developer highlighted field stability concerns, prompting us to run additional photostability tests. Even academic collaborators, while small in purchase order size, often offer new reaction ideas or analytical methods that improve application scope.

    Beyond the role as a starting material or intermediate, 2-Fluoro-4-(Trifluoromethyl)Benzamide sometimes serves as a reference standard. Our lab routinely archives samples not just for compliance, but for external round-robin studies where third-party labs check compound identity, solubility, and analytical response. Over the years, we have confirmed how seemingly minor process changes—like water removal at a new temperature profile—can cause nontrivial effects in downstream user workups.

    As customer needs evolve, so does our support. Some need smaller, highly pure reference samples for calibration; others request bulk quantities with matched supply for multi-year campaign projects. Experience shows bulk orders aren’t just about cost—they need clear labeling, batch uniformity, and on-time delivery. We plan these orders far ahead, with each customer inquiry prompting an internal review of scheduling, inventory, and logistics.

    Real-World Challenges and Solutions

    Not every run goes smoothly. Reactor fouling, off-spec analytic signals, unexpected supply chain interruptions—these happen no matter how many preventive steps are in place. We foster a culture of openness about failures, seeing them as training opportunities rather than setbacks. Sometimes, a batch recovers through careful reprocessing; at other times, product must be scrapped, with full transparency back to the customer. Over time, these experiences strengthen both our operation and the credibility of our offering.

    Improvement comes from honest assessment and practical changes. We run post-mortem reviews after every deviation or complaint, taking input from plant operators, QC staff, and even downstream labs that catch residue or drift outside our spec. These reviews have led to important changes—additional filtering, longer drying times, or tweaks in reagent addition protocols. The result is a supply of 2-Fluoro-4-(Trifluoromethyl)Benzamide that not only meets published parameters but often outperforms those standards when implemented in a user’s environment.

    Looking Ahead

    Innovation in fluorinated building blocks drives continual revision of both chemistry and operations. Our ties with researchers and major commercial users support our efforts to refine not just process chemistry but also application guidance, packaging, and analytical support. As regulatory landscapes tighten, traceability and documentation weigh heavier. We prepare for that by doing the detailed work upfront, so customers never struggle to trace a batch’s history or retrieve a spectrum for review.

    A manufacturer’s perspective is shaped by experience: what has been tried, what has failed, and what ultimately delivers value to the end user. With 2-Fluoro-4-(Trifluoromethyl)Benzamide, every drum or bottle we ship carries the results of years spent refining methods, responding to challenges, and learning from both large and small partners. Our commitment drives continuous improvement at every step—from raw materials to final QC—ensuring our partners trust in the product they receive.