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3-Fluoro-4-Methylbenzamide Oxime

    • Product Name 3-Fluoro-4-Methylbenzamide Oxime
    • Alias 3F-4MBO
    • Einecs NA
    • 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

    755420

    Chemical Name 3-Fluoro-4-Methylbenzamide Oxime
    Molecular Formula C8H9FN2O
    Molecular Weight 168.17 g/mol
    Cas Number N/A
    Appearance White to off-white solid
    Melting Point N/A
    Boiling Point N/A
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥ 95%
    Storage Conditions Store in a cool, dry place, away from light
    Smiles CC1=CC(=CC(=C1)F)C(=NO)N
    Synonyms 3-Fluoro-4-methylbenzamidoxime
    Application Intermediate in organic synthesis
    Stability Stable under recommended storage conditions

    As an accredited 3-Fluoro-4-Methylbenzamide Oxime factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle with screw cap, labeled "3-Fluoro-4-Methylbenzamide Oxime, 10g," displaying hazard pictograms and safety instructions.
    Shipping 3-Fluoro-4-Methylbenzamide Oxime is shipped in secure, airtight containers to prevent contamination or moisture exposure. Packaging complies with chemical safety regulations, including labeling for hazardous materials if applicable. During transit, the compound is protected from heat, direct sunlight, and physical damage to ensure stability and integrity upon delivery.
    Storage 3-Fluoro-4-Methylbenzamide Oxime should be stored in a tightly sealed container, away from light, heat, and sources of ignition. Keep in a cool, dry, and well-ventilated area, ideally at 2-8°C (refrigerated). Avoid moisture and incompatible substances such as strong oxidizing agents. Ensure proper labeling and access control to prevent unauthorized handling and accidental exposure.
    Application of 3-Fluoro-4-Methylbenzamide Oxime

    Applications of 3-Fluoro-4-Methylbenzamide Oxime in Industrial Manufacturing

    As an experienced manufacturer of 3-Fluoro-4-Methylbenzamide Oxime, we deliver this specialty intermediate to several core industrial segments. We support formulation, quality, and compliance with current sector demands. Below, we outline principal application fields, usage conditions, and integration protocols sourced from our direct experience serving global industrial clients.

    1. Agrochemical Active Ingredient Synthesis

    Large-scale crop protection manufacturers use 3-Fluoro-4-Methylbenzamide Oxime as a key building block during the multi-stage synthesis of novel herbicidal and fungicidal actives. Its stable fluoro-substituted aromatic backbone supports targeted molecular modifications, enabling downstream chemists to develop selectivity-enhanced formulations for field application. In this scenario, custom specifications for isomeric purity are essential for regulatory approval and consistent batch performance.

    Industry compliance standards

    • FAO/WHO Specifications for Pesticides
    • China GB/T 1604-2021 (Technical Specifications for Pesticide Intermediates)
    • EPA 40 CFR Part 158 (Data Requirements for Pesticide Registration, USA)
    • ISO 9001:2015 Quality Management System

    Typical usage ratio

    • Applied at 0.25–0.50 molar equivalents per target molecule in multi-step synthesis, adjusted based on conversion yield and desired active concentration

    Downstream process integration

    • Introduced post-halogenation during condensation step, typically under inert gas and controlled temperature for oxime stabilization

    Final product types

    • Selective triazole-based fungicides
    • Pre-emergence herbicides for cereals and maize
    • Hybrid seed coating agents

    2. Pharmaceutical Intermediate for Fluorinated Drug Entities

    Specialty API manufacturers incorporate this compound as an intermediate for synthesizing fluorinated benzamide scaffolds. The oxime moiety allows further functionalization for anticancer leads and CNS-active small molecules. Strict control of trace impurities and documentation per cGMP is standard during scale-up. Stability under both reductive and oxidative process conditions must be verified in each production batch.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/NF monograph guidance for aromatic benzamide derivatives
    • Ph. Eur. Section 5.10 (Control of Impurities)
    • FDA 21 CFR Part 211 (Current Good Manufacturing Practice for Finished Pharmaceuticals)

    Typical usage ratio

    • 0.1–1.1 equivalents as a coupling agent or masking group, optimized for desired API precursor yield

    Downstream process integration

    • Added after aromatic halogenation during API route development; often isolated and purified prior to cyclization steps in final API synthesis

    Final product types

    • Intermediates for oncology small molecules
    • Precursors for CNS drugs (e.g., selective serotonin receptor ligands)
    • Building blocks for fluorinated antidepressants

    3. Fine Chemical Synthesis for Specialty Dyestuffs

    Producers of azo and anthraquinone dyes utilize this raw material for the synthesis of high-performance colorants, especially where fluoro-functionalization extends chromatic stability and reduces fading under UV exposure. Efficient conversion and retention of the oxime function are critical for achieving sharp shade profiles demanded by technical textile and ink industries. Regulatory documentation confirms the absence of banned amines and heavy metals throughout dye production cycles.

    Industry compliance standards

    • REACH Annex XVII (Restrictions for Chemical Substances)
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals, Manufacturing Restricted Substances List v3.1)
    • OEKO-TEX Standard 100, Class I-IV (Product Class Requirements)
    • GOTS (Global Organic Textile Standard) dye component guidance

    Typical usage ratio

    • 1–3% by mass of the total dye batch, dependent on the targeted hue intensity and lightfastness in the final formulation

    Downstream process integration

    • Charged into the coupling reactor during oxidative amination following metal-catalyzed halide exchange, enabling downstream azo linkage formation

    Final product types

    • High-stability textile dyes for technical apparel
    • UV-resistant pigment pastes for outdoor inks
    • Niche electronic display colorants

    4. Chemical Intermediate for PET Resin Modifiers

    In high-performance polymer modification, PET resin formulators introduce this compound to adjust crystallization kinetics and enhance chemical resistance for technical films and engineering fibers. The fluoro-methyl substitution pattern facilitates controlled nucleation, allowing polymer processors to tune thermal characteristics without introducing excessive branching or haze. Consistent purity and moisture content ensure compatibility with melt-phase polycondensation equipment.

    Industry compliance standards

    • ASTM D3985 (Standard Test Method for Oxygen Gas Transmission Rate Through Plastic Film)
    • EU Regulation (EC) No 1935/2004 (Food Contact Materials, Polymer Additives)
    • ISO 9001:2015 Quality System for Polymer Additives
    • FDA 21 CFR 177.1630 (Polyethylene Terephthalate, US FDA Compliance for Packaging)

    Typical usage ratio

    • 0.2–1.0 wt% relative to PET resin mass, fine-tuned based on required crystallinity or barrier property enhancement

    Downstream process integration

    • Fed directly with glycol into polycondensation reactors, incorporated prior to vacuum stripping to ensure even dispersion in bulk polymer matrix

    Final product types

    • Oriented PET films for electronics packaging
    • High-barrier food packaging sheets
    • Microfiber engineering yarns with chemical resistance
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    Certification & Compliance
    More Introduction

    3-Fluoro-4-Methylbenzamide Oxime: Building Reliability into Specialty Chemistry

    Direct Insights from the Plant Floor

    Every product starts with technical curiosity, patience, and a respect for relentless detail. In our manufacturing halls, the story of 3-Fluoro-4-Methylbenzamide Oxime unfolds across steel reactors humming with intent and experienced hands watching every indicator. The decision to introduce this compound did not come from chasing trends. Years of feedback from formulation chemists, process engineers, and R&D teams motivated us to address bottlenecks in their workflows. Our approach focuses not only on molecular structure—C8H8FN2O—but also on how it behaves during synthesis, storage, and application. Simple reliability spells out our value here.

    The model we produce follows a streamlined route, leaning into robust process engineering. We monitor every batch for color, particle uniformity, and residual solvent levels. High-purity oxime—a signature of our process—means lower interference risk in downstream reactions. You might observe a crystalline powder, often with a faint off-white hue. But the real specifics arise from spectroscopy and elemental analysis: tight controls, consistently below 0.2% moisture, and minimal impurities as traced by HPLC and GC-MS. Years of improvement reflect in smaller variances from batch to batch—consistency built on practical lessons learned, whether through reactor fouling incidents or slow filtration recoveries.

    Applications Earned through Experience

    No two oximes serve in quite the same way. This molecule occupies a distinctive place. It proves useful in pharmaceutical intermediates synthesis, providing a platform for further transformations such as reduction, cyclization, and condensation. The substituted aromatic ring lends extra stability and lessens reactivity compared to less fluorinated analogs. That means ease of handling, whether in scale-up settings or benchtop work. The methyl group at the para-position acts as a metabolic cue when investigating drug candidates; medicinal chemists exploit these subtleties while working to inch leads through clinical pipelines. Most requests we field involve supporting high-value catalyst development or providing starting points for pesticide adducts.

    Researchers from academic labs reach out for custom sizing, while production managers need kilogram-scale reliability. What links them are issues of scale, cost-per-gram, and process safety. The oxime’s stability—owing both to ring fluorination and a clean synthetic route—often delivers fewer headaches compared to related benzamide oximes, which can hydrolyze or discolor under standard bench conditions. Ease of filtration and minimal byproduct formation also matter; teams running 40-liter reactors in GMP campaigns won’t tolerate unpredictable crystallization or chromatographic burden.

    In our work, we have seen 3-Fluoro-4-Methylbenzamide Oxime used in both batch and continuous flow setups. Automated dosing systems benefit from its low clumping tendency. Powder handling tests in-house confirm less dust generation than some nitro-substituted analogues, improving safety and operator comfort. This is no minor point: smaller differences here cut downtime and allow tighter spec adherence on finished goods. It is customary for customers to request spectroscopy data on every lot. Our on-site instruments provide FTIR, NMR, and LC-MS data along with each delivery. No batch ever leaves the plant without these proofs.

    Making the Difference through Process Control

    Chemical production asks for constant adjustment. Day-to-day shifts in ambient temperature, humidity, or even starting material batch quality can disrupt supposedly routine syntheses. We choose reagents and solvents with predictable supply chains, not headline-grabbing alternatives, because decades have shown how unreliable inputs break downstream projects. The reduction step—where the oxime takes shape—runs at carefully logged pressure and temperature points. Over-reduction or off-target side reactions mean rework and waste, so refining protocols with real production data always delivers dividends.

    Several years ago, we ran stability tests under varied humidity and light conditions. Less stable analogues quickly faded, polymerized, or picked up off-odors. Ours held up, retaining assay values and color even after 24 months on the shelf. Operational staff log observations daily on lot notebooks, feeding back minor deviations which inform continuous small-interval improvement. Automation controls dosing rates, but trained personnel override systems if readings drift. Every tweak to solvent ratios, agitation speed, or filtration steps emerged from confronting real-world headaches—filters clogging mid-run, unexplained yield drops, or inconsistent powder flow.

    Comparing our 3-Fluoro-4-Methylbenzamide Oxime to standard benzamide oximes brings several differences into focus. The fluorine atom adjusts both chemical polarity and metabolic profile, giving extra resistance to enzymatic breakdown. This can translate into fewer process impurities when the oxime stands as an intermediate or blocking group. Methyl substitution at para increases melting point and minimizes aromatic substitution during downstream transformations. Less useful analogues often force chemists to add stabilizers, run reactions under inert gas, or keep cold chains during shipping—sometimes all three. Our engineering choices free customers from much of that worry.

    Hard Lessons, Real Improvement

    Our team has witnessed what happens when overlooked details turn into serious setbacks. A few years back, poor control in solvent evaporation led to a sticky, partially amorphous product batch. That mishap triggered costly rework, and taught everyone—in QA, operations, and logistics—that diligent in-process sampling, not just end-point analysis, keeps standards where they belong. Customers let us know, bluntly and quickly, if something slips. Schedules in chemical manufacturing leave no room for guesswork or slow learning. Internal audits and external feedback blend into a culture where complaints fuel changes, not excuses.

    We responded by overhauling dryer design, automating more steps, and re-training staff on visual and tactile product tests that supplement the analytical routines. Stability, color, and flow all now meet tighter internal benchmarks. Sometimes these lessons sting on the balance sheet but speak volumes in customer loyalty. Chemistry at this scale is as much about fixing last year’s weak points as about chasing technical perfection. Each year brings new external guidance—regulatory advice, best practices in operator safety, environmental updates—which we weave into both procedure and plant infrastructure. 3-Fluoro-4-Methylbenzamide Oxime plays a role in this evolutionary process, reflecting a living, growing approach to specialty chemical manufacture.

    Safety and Sustainability in the Daily Grind

    Hazard assessment starts well before any paperwork. Early test batches gave us direct data on toxicity, dust explosivity, and environmental impact. The oxime shows moderate safety in handling, as long as gloves and proper containment remain routine. Dust suppression measures—using local exhaust, filtered enclosures, and low-energy transfer equipment—keep levels far below operator thresholds. We scrutinize every solvent and byproduct for regulatory compliance and environmental impact, treating water streams in-house before they ever leave the property. Local authorities review our compliance efforts each quarter, not just on paper but by walking the site and talking to plant staff.

    The production route for 3-Fluoro-4-Methylbenzamide Oxime favors low-energy processes. The exotherms in core steps stay manageable with standard cooling loops, avoiding massive energy spikes. By selecting mainstream, recyclable solvents and re-using process water, our EHS team reports significant reduction in chemical footprint compared with legacy methods. On average, waste volumes sent to external disposal faculties have dropped, and routine solvent distillation has become a staple. Sharing these facts with visiting customer teams helps demystify manufacturing and conveys what building real E-E-A-T means: experience, expertise, authority, and trust, not marketing stories.

    Technical Support Shaped by Field Experience

    Support teams at our facility bridge knowledge from the plant floor to the customer’s bench. Chemists communicate with those who run large-scale analytics, troubleshooting issues like product solubility, filtration rates, or stability in different matrices. This support draws on years of batch records, failed experiments, and successful process changes. Instead of reading from a script, staff recount specific experiences—how a shipment responded to extended transit, how it handled in a dry box versus an open bench, how a minor grade difference affected NMR purity. Mistakes from our past sometimes anticipate pitfalls in customer use, prompting us to flag lot characteristics or labeling issues when appropriate.

    A frequent question concerns application scope: where does this oxime outperform less sophisticated alternatives? Direct comparison with, for example, unsubstituted benzamide oximes, demonstrates better resistance to oxidation and fewer degradation products under both heat and light. Analytical chemists, fed up with impurity peaks and drifting spectra, appreciate the tighter impurity profiles and solid-state consistency. For larger manufacturers, kilogram-scale availability without extended lead times makes a real operational difference. We have refined storage and shipping packaging—waterproof linings, anti-static layering—based on feedback from a customer in a tropical region who documented caking during a rare transport delay.

    Rarely do off-the-shelf solutions address all specific needs. Custom lots, modified crystallization methods, or solvent swaps help resolve occasional incompatibilities in exotic synthesis steps. Our staff often walk customers through processing options, and gather real-time feedback to drive incremental process adjustments. No detail is too small; one process chemist praised our attention to drum labeling after their old supplier sent a batch encoded only with internal codes, causing a day’s delay. Practical improvements—deeper than chemistry—come from listening, translating, and responding.

    Regulatory Awareness and Customer Trust

    Industry experience underscores how regulations shape every aspect of chemical supply. 3-Fluoro-4-Methylbenzamide Oxime does not face the strictest global controls, but each region—Asia, Europe, Americas—carries its own material registration routines. Years of navigating these landscapes taught us to proactively maintain restricted substance lists, compile complete analytical dossiers, and pre-empt queries about contaminant thresholds. Our documentation, fully indexed and traceable, has opened doors to clients previously deterred by unresponsive or ill-prepared suppliers. Real transparency builds trust, distinguishing factories serious about long-term partnership.

    Customers in regulated industries—especially pharmaceuticals and crop protection—demand absolute traceability. We embed digital batch records and guarantee full material histories on request. Random audits stress-test readiness across logistics, storage, and retrieval. This discipline traces back to hard lessons during unexpected audits, when missing paperwork sent less fastidious suppliers scrambling. Keeping plants audit-ready simplifies compliance for everyone involved—a quiet but vital signal of mature manufacturing culture.

    The Human Touch Behind Every Molecule

    People fuel every stage of this product’s journey. Chemists draft protocols; operators steer mixers, check temperatures, and watch dryer gauges; logistics teams map optimized shipments and investigate transit hiccups before clients ever know there was a risk. We have watched junior analysts graduate to technical leads, drawing on years of batch-by-batch refinement. Pride in well-made material is evident in every shift handover, every dog-eared notebook, every callback from a customer who noticed a positive change. Feedback loops run both ways, driving our efforts to steady product specs, ramp up reliability, and add flexibility for special requests.

    Questions, technical queries, even complaints—all land on someone’s desk. We do not hide behind webforms or anonymous call centers. Chemists answer with specifics, referencing exact instruments, times, or trial records. Each shipment, every lot, tells a story of collective attention and expectation. The conversation continues well after the paperwork clears. Good chemistry is more than formulae or certificates: it’s trust earned batch by batch. That’s what 3-Fluoro-4-Methylbenzamide Oxime means to our people and the industries that depend on it.