Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

4-(Trifluoromethoxy)Benzamide

    • Product Name 4-(Trifluoromethoxy)Benzamide
    • Alias 4-(Trifluoromethoxy)benzenecarboxamide
    • Einecs 401-620-9
    • 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

    174986

    Productname 4-(Trifluoromethoxy)Benzamide
    Casnumber 261762-38-7
    Molecularformula C8H6F3NO2
    Molecularweight 205.14
    Appearance White to off-white solid
    Meltingpoint 120-123 °C
    Purity Typically ≥98%
    Smiles C1=CC(=CC=C1C(=O)N)OC(F)(F)F
    Solubility Slightly soluble in water, soluble in organic solvents
    Storagetemperature 2-8 °C
    Inchi InChI=1S/C8H6F3NO2/c9-8(10,11)15-6-3-1-5(2-4-6)7(13)12/h1-4H,(H2,12,13)
    Synonyms 4-(Trifluoromethoxy)benzenecarboxamide

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

    Packing & Storage
    Packing The 25g 4-(Trifluoromethoxy)benzamide is sealed in an amber glass bottle with a tamper-evident cap and hazard labeling.
    Shipping 4-(Trifluoromethoxy)Benzamide is shipped in tightly sealed containers to prevent moisture and contamination. It is packaged according to chemical safety regulations, with clear labeling and documentation. The shipment is handled by authorized carriers, ensuring compliance with all relevant transportation laws for hazardous materials. Temperature and handling instructions are provided as needed.
    Storage 4-(Trifluoromethoxy)benzamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition and incompatible substances such as strong oxidizers. Keep it away from direct sunlight and moisture. Store at room temperature, but consult the material safety data sheet (MSDS) for specific temperature recommendations. Ensure proper labeling and access only to trained personnel.
    Application of 4-(Trifluoromethoxy)Benzamide

    Applications of 4-(Trifluoromethoxy)Benzamide in Industrial Manufacturing

    Our facility produces 4-(Trifluoromethoxy)Benzamide to reliably support key sectors where high-purity benzamide derivatives are integrated into advanced value chains. We engage directly with formulation scientists, process engineers, and product development teams to ensure consistent quality, compliance with downstream regulatory frameworks, and traceable ingredient sourcing for demanding industrial manufacturing scenarios. The following application pathways reflect the real downstream industries and processes where our material provides a defined role based on documented market use.

    1. Active Pharmaceutical Ingredient (API) Intermediate Manufacturing

    Pharmaceutical manufacturers utilize our product as a selective synthetic intermediate in small-molecule API routes, particularly for fluorinated drug candidates requiring advanced functional group incorporation. This application demands batch traceability for GMP validation steps and precision in stoichiometric charging during key amidation and acylation reactions, where side-product minimization is critical for downstream purification and regulatory release.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • FDA 21 CFR Part 210/211 (US)
    • European Pharmacopoeia monograph specifications for relevant APIs
    • USP <1078> Good Manufacturing Practices for Bulk Pharmaceutical Excipients

    Typical usage ratio

    • Usage typically ranges from 0.5 to 1.2 molar equivalents relative to the core reactant in amidation or coupling steps, adjusted according to target API throughput and impurity profile control requirements.

    Downstream process integration

    • Material is introduced during intermediate synthesis after initial aromatic substitution, prior to final cyclization or halogenation steps; added to pressurized jacketed reactors under nitrogen for high-purity reactions.

    Final product types

    • Small-molecule APIs such as CNS actives and anti-inflammatory agents with trifluoromethoxy aromatic motifs
    • Registered pharmaceutical intermediates for oncology or metabolic disorder pipelines

    2. Agrochemical Active Ingredient Synthesis

    Producers of specialty herbicides and insecticides use our material as a building-block intermediate for fluorinated benzamide core active ingredients, leveraging its electron-withdrawing properties to achieve high target selectivity in new-generation crop protection compounds. Process engineers systematically validate raw material specifications against both product registration dossiers and regional agrochemical approvals.

    Industry compliance standards

    • OECD Good Laboratory Practice (GLP) for study sample traceability
    • FAO/WHO specifications for pesticide ingredients
    • REACH Registration, Evaluation, Authorisation and Restriction of Chemicals (EU)
    • China GB standards for pesticide ingredient quality

    Typical usage ratio

    • In synthesis, typical charge ratio is 1.0–1.5 molar equivalents depending on the target substitution pattern, with process optimization performed for yield and downstream purification requirements.

    Downstream process integration

    • Material is charged during the amide coupling sequence after trinuclear aromatic construction, using agitation and temperature-controlled addition at 60–90°C under fume extraction.

    Final product types

    • Herbicide actives used in broadleaf crop protection
    • Selective insecticide intermediates with fluorinated aromatic scaffolds

    3. Specialty Material Monomer for Performance Polymers

    Materials science companies employ this compound as a monomer or chain-extender in high-performance polymers where the presence of a trifluoromethoxy functional group improves hydrolytic stability, alters dielectric properties, and enhances resistance to aggressive chemical environments. This role is specified in the synthesis of advanced engineering plastics and modified resins for electronics and high-end coatings.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • RoHS Directive (Restriction of Hazardous Substances) for electronics plastics
    • UL 94 Flammability Standard for plastic materials
    • IEC 61249-2-21 for halogen-free base materials

    Typical usage ratio

    • Incorporation levels range from 2% to 8% by weight of total monomer content in functionalized copolymer syntheses, adjusted for target mechanical properties and application-specific performance targets.

    Downstream process integration

    • Integrated during monomer pre-mix and polymerization feed steps, under inert atmosphere, with post-reaction devolatilization to ensure purity and functionality.

    Final product types

    • Fluorinated aromatic polyamides and polyimide resins for flexible circuit boards
    • Modified epoxies for chemical-resistant coatings and adhesives

    4. Advanced Dye and Pigment Intermediate

    The fine chemicals sector utilizes this molecule as a key precursor in manufacturing specialty dyes and pigments, especially where fluorinated aromatic moieties impart improved lightfastness, chemical resistance, and distinct color tuning. Custom synthesis teams monitor impurity profiles for regulatory submissions and downstream blending into masterbatch and ink systems.

    Industry compliance standards

    • EN 71-3 Safety of Toys – migration of certain elements (for colorants in toys)
    • REACH Regulation (EC) No 1907/2006 for pigment registration
    • OEKO-TEX® Standard 100 for textile dyes
    • California Proposition 65 for pigment ingredient disclosure

    Typical usage ratio

    • Chemical loading varies from 5% to 15% by weight relative to the downstream aromatic substrate, dependent on chromophore target and color intensity specifications for the intended application area.

    Downstream process integration

    • Material is introduced during condensation or coupling reactions for pigment precursor synthesis, followed by hydrogenation or sulfonation as appropriate for the pigment’s end-use profile.

    Final product types

    • High-stability fiber-reactive dyes
    • Specialty organic pigments for plastics, printing inks, and automotive finishes
    Free Quote

    Competitive 4-(Trifluoromethoxy)Benzamide prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Introducing 4-(Trifluoromethoxy)Benzamide: Precision Through Experience

    Expertise in Synthesis—From Raw Materials to Reliable Outcomes

    4-(Trifluoromethoxy)Benzamide stands out as a key intermediate rooted in both chemistry and industrial performance. Years of hands-on experience in multi-step aromatic amide synthesis taught our team to respect the fine line between reactivity and selectivity. A molecule like 4-(Trifluoromethoxy)Benzamide, with its distinctly electron-rich aromatic ring and steadfast benzamide group, proves its worth in demanding downstream applications—pharmaceuticals, crop protection, and specialty materials requiring high-purity for consistent yields. Supplying this chemical at or above 99% purity means taking nothing for granted, monitoring not only reaction conversion but also filtering and packaging with the same care we first put into our small-batch R&D days.

    Specifications Forged by Demanding Applications

    The product comes as a faintly off-white crystalline solid, usually packed in tightly sealed containers to guard against moisture and contamination. Molecular formula is C8H6F3NO2, and its mass spectrometry data leave no ambiguity. Over a decade in the lab has shown that trace-level impurities—often ignored by less committed suppliers—lead to batch variability and troubleshooting down the line. This is why every kilogram leaving our factory is supported by detailed chromatography, water analysis, and confirmation of trifluoromethyl content. Whether someone blends it for API discovery or processes it through custom reagents, each lot reflects the reliability required in regulated industries, not simply a certificate in a folder.

    Recognizing Subtle Chemical Differences—A Manufacturer’s Perspective

    Many chemicals with a trifluoromethoxy group look the same in glass vials. The question isn’t just, “Does it have the right boiling point or melting point?” but “Will it behave the same every time, in every process we feed it into?” Over the years we learned that 4-(Trifluoromethoxy)Benzamide, compared to similar benzamides or para-substituted products, brings predictable behavior in acylation and amidation steps. The trifluoromethoxy group at the para-position moderates electron density, countering side-reactions that trip up less robust intermediates. This seems minor until an entire API synthesis loses a percent of yield in one run. Competing products, with ortho or meta functional groups, don’t reliably provide this subtle stabilization—or, in the case of non-fluorinated analogues, lack the ruggedness required for exploratory scale-up and production.

    Applications—Driven by End-User Problems and Product Consistency

    The main use cases for 4-(Trifluoromethoxy)Benzamide come straight from client discussions with pharmaceutical and agrochemical development teams. This isn’t an “off-the-shelf” molecule for casual buying. Most clients brought us a challenge: find something with higher metabolic resistance, or with a functional group pattern that doesn’t degrade during late-stage synthesis. The molecular stability owes much to the trifluoromethoxy electron withdrawal, which helps downstream partners dial in pharmacokinetic improvements and enhance agrochemical durability.

    In fields ranging from medicinal chemistry lead optimization to pilot-plant synthesis, requests focus on two aspects: purity (often above 99% confirmed by HPLC) and repeatability. Delivering on both means never relying on minimum spec. Over the years, we saw that process engineers—especially in pharmaceutical development—don’t tolerate drift in melting point, solubility, or impurity load. As a producer, we made it standard to back every batch with both in-process analytics and after-the-fact verification, so that downstream hazards get caught before scale-up, not during a pilot run when lost days or failed lots cost real money. Many teams come back after discovering that alternate sources vary from batch to batch, forcing costly purification or even abandoning projects halfway.

    Why This Molecule Commands Long-Term Loyalty

    We’ve worked with R&D groups who tested equivalent para-substituted benzamides from other sources. Where field reports showed problems, the stories matched: variable impurity levels, poor shelf stability, and even substantial differences in reaction profile when scaling up past a few hundred grams. Someone mixing an agricultural fungicide can’t afford uncertainty. Medical chemistry teams, likewise, risk failing toxicology if trace impurities show up unexpectedly. Product stewardship drives our process, rather than quarterly targets or shipment deadlines. Each stage, from raw materials to the final crystal structure, follows detailed protocols; we replicate successful results from one production run to the next and keep full traceability on every consignment shipped out.

    Learning from Setbacks—Refining the Process

    Early on, we tried to push yields by relying on shortcut reagents or relaxed dwell times. Every shortcut returned as inconsistency: unpredictable purity, unwanted byproducts, and dissatisfied clients who had to find alternative manufacturers. These experiences re-shaped the way we approached 4-(Trifluoromethoxy)Benzamide synthesis. Longer reaction monitoring, aggressive impurity profiling, and stepwise purification are now routine, not optional. It took time to align process improvements with up-to-date feedback from the field—analytical teams and chemists inside client labs gave us early warnings that certain impurities, even under 0.5%, affected bioassay or plant uptake studies. By using their reports, we invested in higher-precision analytical equipment, upgraded our process controls, and trained new team members in both lab and industrial settings to spot trouble before it reached a client’s door. Product reliability grew in step with hands-on learning, not just paper protocols.

    Transparency Drives Trust—Our Manufacturing Philosophy

    Over the years, technical teams shared frustrations about not knowing what actually arrives in a drum. Some suppliers provide vague batch data or shy away from full impurity disclosure. We run things differently. Every shipment of 4-(Trifluoromethoxy)Benzamide comes paired with a robust analytical report, including detailed chromatograms and impurity profiles. Field partners appreciate that there’s no need for guesswork or second-guessing before beginning downstream work. Our batch sheets don’t embellish results or soft-pedal limits; if an unexpected impurity approaches the detection threshold, that data is included. No product moves toward shipping without confirmation from our analytical chemists. The simplicity and honesty of our data integrity cut out confusion before it disrupts a client timeline or project milestone. In practical terms, this has prevented needless retesting, repeated QA cycles, and the frustration of incomplete information sharing.

    Toughness Under Pressure—Storage and Handling Insights

    Feedback from process engineers and warehousing staff shaped the way we package and store 4-(Trifluoromethoxy)Benzamide. Years ago, standard packaging wasn’t enough to prevent atmospheric moisture from slipping inside and affecting the product’s flowability and shelf life. Today, multi-layered, tightly-sealed containers keep unwanted water out and maintain the solid crystalline state for extended periods. This comes from loss-in-weight testing and storage simulations that go beyond simple specs. Our logistics staff unpacked and repacked hundreds of test samples to ensure no “hidden” product alteration during global transport, especially under fluctuating conditions common in long-haul shipping and customs clearance. We learned that even one missed protocol step can mean product aggregation or subtle hydrolysis—not visible at first, but fatal during formulation or chemical modification.

    Solving Real-World Challenges—Function Over Form

    Some synthesis routes demand more than just an “active” intermediate: they need absolute predictability, high thermal stability, and clear documentation to pass rigorous audits. We learned early not to cut corners on chemical work-up or filtration, as even small left-over solvents or byproducts tend to accumulate during scale-up. Customers experimenting with late-stage synthesis for high-value products often want real-time feedback from the factory. Our project chemists built a routine for rapid response: photographic documentation, real-time analysis updates, and even side-by-side sample comparisons when alternative suppliers underperformed. By collaborating openly, we’ve moved beyond the level of anonymous supply. Clients ask for our 4-(Trifluoromethoxy)Benzamide by source name, not just CAS number or spec sheet, since experience has proven that actual batch performance—not theoretical values—makes the difference between a smooth or chaotic project outcome.

    It sounds simple, but the effect on clients is deep. Labs using our product for Discovery Chemistry report easier optimization cycles because they don’t chase their tails around solvent recovery, wasted pilot runs, or inconsistent endpoint testing. Mainline production partners measure lot-to-lot variability not in percentages, but as absence of failed runs and surprise troubleshooting. These are consistent field results stemming from quiet, everyday gains on our plant floor—analytical cycles run a little longer, reactors cleaned more fully between batches, staff trained to catch even faint off-notes in aroma or color during QA checks.

    What Makes 4-(Trifluoromethoxy)Benzamide Different From Similar Intermediates?

    Three key attributes distinguish 4-(Trifluoromethoxy)Benzamide in practical synthesis use: electronic stability, straightforward scale-up, and consistent impurity containment. Compounds with meta or ortho trifluoromethoxy positioning struggle with reaction control during functionalization, based on feedback from development labs and informed by our own bench chemistry. In aromatic chemistry, every functional group placement changes electron distribution, which means seemingly small differences explode into major reactivity gaps during process optimization. Para-substitution in our product maintains reactive pathways without slipping into competing side reactions or clogging up with byproducts. This pattern holds no matter if you’re handling 10 grams in a research lab or scaling to 50 kilos in a commercial facility—a fact verified by repeated outcomes and minimal deviation between batches.

    On the practical side, purity makes or breaks application value. Non-fluorinated or mono-fluorinated analogues, although easier to produce, can’t match the toughness against hydrolysis and environmental wear-and-tear seen in trifluoromethoxy compounds. We’ve watched alternative products cause headaches down the pipeline— API developers discover unwanted degradation, and crop science teams face breakdown issues under stress conditions. See enough field returns and technical complaints, and you eventually recognize how product differences emerge less from published specs and more from hard-earned experience with actual manufacturing and user data.

    Clients commonly comment on low solubility drift and easy integration into targeted reactions, features that arise from both molecular structure and thorough drying/final handling. Those working under tight regulatory or documentation scrutiny regularly note the ease of passing audits with our detailed trace records and robust certificates.

    Incremental Improvements—No “Set-and-Forget” Approach

    Predictable quality is a moving target, not a finish line. Industry demands evolve, and so does our approach to producing 4-(Trifluoromethoxy)Benzamide. By investing in new process controls—pressure-reactor upgrades, more sensitive chromatography lines, and batch data mining—we catch even the lowest-level variability before it can cost anyone downstream. The supply chain is more interconnected than ever. Starting material fluctuations arrive quickly, and only engaged process monitoring can keep end-quality reliable. Where some might fear additional effort, our team found it essential; failure to catch small problems early never stays small for long. This discipline grew over time, learned from actual setbacks and passed on through daily practice at the plant and in QC offices. When new application areas popped up, such as veterinary drug synthesis or advanced monomer research, the groundwork we laid in tough analytical standards paid off with rapid qualification and customer approval.

    Dialogue and Feedback—Plugging Real-World Learning into the Process

    No one in manufacturing succeeds alone. We’ve had years of frank, sometimes difficult conversations with chemists, engineers, and regulatory managers from partner companies. Plenty of first-time buyers arrive unsure of what their downstream process will demand, but become long-term partners once they see the traceability and reproducibility in every package. Batch records, detailed impurity lists, and flexible delivery options come from these conversations—not directives from a handbook, but codified real-life lessons.

    Case studies from past projects regularly shape present production. Unexpected performance issues traced to minor process adjustments on the manufacturing side; for example, switching to a slightly more water-rich solvent led directly to one shipment with off-standard melting point. Instead of hiding from the problem, we documented the solution—tighter solvent screening, cross-checked by hand and instrument. Clients who faced delays the first time came away with renewed confidence in both correction and communication. Every set of results, friendly or frustrating, joins a cumulative dataset we use to tweak and upgrade protocols and staff training – not just “problem-solving,” but real process and trust building in chemical supply.

    Maintaining Value: Why Purity, Documentation, and Process Rigor Count

    As the world moves to stricter regulations around chemical intermediates, only those manufacturers who can guarantee, not just promise, purity and process control will stay relevant. 4-(Trifluoromethoxy)Benzamide continues to anchor demanding synthesis steps precisely because of these traits. It isn’t about offering a catalog product, but about supporting real projects with everything learned from manufacturing setbacks, user complaints, and downstream surprises. Offering a single, clear point for data, shipment, and feedback streamlines projects and highlights gaps we can fill—often through simple, direct dialogue.

    People using our aromatic amide products know the difference between “close enough” and “truly reliable.” Daily improvement means open doors for feedback from every link along the chain—from plant operators and logistics to the chemists and technicians who will use each drum.

    Commitment to Continual Improvement—A Continuing Story

    Every kilogram of 4-(Trifluoromethoxy)Benzamide produced carries behind it thousands of hours of bench chemistry, plant runs, QA reviews, and field user feedback. Clients return not just for purity, but for sharp communication, batch-level transparency, and a refusal to trade reliability for margin or speed. The lessons learned, the protocols refined, and the willingness to admit, share, and solve process setbacks drive our story. These choices show up tangibly in every shipment: more robust endpoints, higher confidence numbers during downstream testing, and a reputation built not on buzzwords or mere branding, but on factual, traceable, outcome-oriented supply.

    For anyone considering 4-(Trifluoromethoxy)Benzamide in their chemical synthesis plans, our doors stay open—not simply for order-taking, but for honest conversation about solving project challenges, unlocking performance gains, and shaping the next chapter of what reliable chemical manufacturing should look like. The next batch, like every batch before, will reflect not just what we know, but what we’ve learned, backed by the lived realities of laboratory and industrial partners at every stage of the journey.