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5-Fluoro-2-Methylbenzamide

    • Product Name 5-Fluoro-2-Methylbenzamide
    • Alias 5-Fluoro-o-toluamide
    • Einecs 84648-78-2
    • 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

    456644

    Chemical Name 5-Fluoro-2-Methylbenzamide
    Molecular Formula C8H8FNO
    Molecular Weight 153.16 g/mol
    Cas Number 180356-96-3
    Appearance White to off-white solid
    Melting Point 108-112°C
    Purity Typically ≥98%
    Solubility Soluble in organic solvents like DMSO and methanol
    Storage Conditions Store at room temperature, protected from moisture

    As an accredited 5-Fluoro-2-Methylbenzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging for 5-Fluoro-2-Methylbenzamide (25 grams) is a tightly sealed, amber glass bottle with a clear hazard label.
    Shipping 5-Fluoro-2-Methylbenzamide is securely packed in sealed, chemical-resistant containers compliant with international shipping regulations. The product is clearly labeled, accompanied by a Safety Data Sheet (SDS). During transit, it is protected from heat, moisture, and direct sunlight, with all necessary documentation for safe handling and regulatory requirements.
    Storage 5-Fluoro-2-Methylbenzamide should be stored in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers. Store at room temperature unless otherwise specified by the manufacturer, and ensure proper chemical labeling for safe identification and handling.
    Application of 5-Fluoro-2-Methylbenzamide

    Applications of 5-Fluoro-2-Methylbenzamide in Industrial Manufacturing

    5-Fluoro-2-Methylbenzamide supports multiple specialized applications across chemical manufacturing, pharmaceutical intermediates, and agrochemical synthesis fields. As an experienced producer, we supply material meeting strict quality standards, aligning with the specific requirements of leading industry manufacturers.

    1. Pharmaceutical Intermediate in Active Pharmaceutical Ingredient (API) Synthesis

    Manufacturers use this substance as an intermediate in the production of select APIs including certain anti-inflammatory and oncology small molecules, where substitution on the aromatic ring is essential for pharmacological target binding. Material integrates at a key step, serving as a building block in multi-step organic synthesis for nitrogen- and fluorine-bearing drugs, with tight controls for impurity levels and trace organic residues. All production lots follow full traceability and process validation for pharmaceutical supply chain transparency.

    Industry compliance standards

    • ICH Q7 for Good Manufacturing Practice of Active Pharmaceutical Ingredients
    • 21 CFR Part 211 (US FDA Current Good Manufacturing Practices for Finished Pharmaceuticals)
    • EU GMP Part II requirements for intermediates
    • Ph. Eur., USP-NF, JP as applicable to downstream API registration

    Typical usage ratio

    • 5–30% by mole in reaction stages, varying by synthetic route and desired substitution pattern. Ratio optimized based on molar equivalency and target yield in each process.

    Downstream process integration

    • Charged to batch reactors during aromatic amide coupling or amidation stages; processed under controlled pH/temperature for maximum conversion; purification and isolation precede subsequent synthetic transformations.

    Final product types

    • API intermediates for fluoroaryl pharmaceuticals (e.g., kinase inhibitors, antiviral precursors)
    • NCE (new chemical entity) candidate compounds for early-stage pharma development
    • Pilot- and commercial-scale API batches under cGMP for global regulated markets

    2. Agrochemical Synthesis Building Block

    This compound functions in fine chemical synthesis of advanced intermediates for select herbicides and fungicides. Molecular fluorination plays a key role in boosting bioactivity and environmental stability for crop protection agents. Agrochemical formulators require consistent lot-to-lot purity and traceability to ensure reproducibility and compliance with downstream regulatory frameworks.

    Industry compliance standards

    • FAO/WHO Specification Manuals for Pesticide Products
    • REACH Regulation (EC) No 1907/2006 for European Union notification
    • China GB 2763 for pesticide MRLs in crops
    • ISO 9001:2015 Quality System for manufacturing sites

    Typical usage ratio

    • 3–15% by mole in stepwise synthesis, tuned by final technical grade requirements; increased loading for multi-site fluorination.

    Downstream process integration

    • Introduced at key condensation or substitution steps, reacting with chlorine- or alkyl-bearing partners; followed by downstream derivatization, crystallization, and technical active manufacturing.

    Final product types

    • Technical active ingredients for selective herbicides
    • Formulated crop protection products (liquid or granule)
    • Advanced intermediates for fungicide molecule synthesis
    • Chemical standards for residue analysis in regulatory labs

    3. Specialty Chemical Intermediate in Liquid Crystal Material Manufacture

    Research and manufacturing for advanced liquid crystal (LC) materials utilize aromatic amides with ring-fluorinated motifs to tune dielectric anisotropy, viscosity, and operating temperature ranges. The compound fits into LC monomer production pathways where precise substitution is necessary for targeted optical or electronic features in display panel applications. Ultra-low metal and halogen impurities are critical for electronic grade output.

    Industry compliance standards

    • RoHS Directive (2011/65/EU) for hazardous substance control
    • IEC 61249-2-21 (halogen-free criteria in electronic assemblies)
    • ISO 14001:2015 for environmental management in electronic material production
    • Company-specific purity and reliability testing protocols for LC component suppliers

    Typical usage ratio

    • 5–18% by mole, depending on molecular architecture of the target LC mixture; modified according to end-display requirements for contrast and switching speed.

    Downstream process integration

    • Added to synthesis reactors for monomer functionalization; post-reaction purification and blending precede final LC formulation; quality control samples analyzed for batch uniformity and impurity profile.

    Final product types

    • Advanced LC monomers for flat-panel display applications
    • Electronic grade intermediates for TFT LCD and OLED displays
    • Specialty mixtures for precision optical devices

    4. Intermediate for Performance Polymer Additive Synthesis

    Producers of performance polymers, especially those for specialty coatings, rely on functionalized aromatic amides to introduce specific chemical resistance and thermal stability. The fluorinated and methylated structure offers performance enhancement through improved hydrophobicity and compatibility with high-performance matrix resins. QC requires batch traceability and verification of thermal behavior to ensure final additive function in high-value thermoset and thermoplastic materials.

    Industry compliance standards

    • ASTM D5630 (standard for residue on ignition in additive testing)
    • ISO 9001 for additive quality consistency
    • REACH Annex XVII for use of fluorinated organics
    • Applicable end-use specific standards, such as UL 94 for flame retardancy when required

    Typical usage ratio

    • 2–10% by weight with thermoplastic or thermosetting resin batches, adjusted for targeted property profiles (e.g., surface energy, tensile strength, or resistance metrics).

    Downstream process integration

    • Blended into masterbatch or dissolved in solvent prior to polymerization or extrusion; sometimes applied in in-situ functionalization reactions for direct grafting onto polymer backbone.

    Final product types

    • High stability polymer blends for automotive and electronics
    • UV-resistant industrial coatings
    • Fluorinated additive masterbatches for melt blending with engineering plastics
    Free Quote

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    Certification & Compliance
    More Introduction

    5-Fluoro-2-Methylbenzamide: A Closer Look From the Manufacturing Floor

    Bringing a specialty chemical like 5-Fluoro-2-Methylbenzamide through production takes real experience and constant attention to quality. As manufacturers, we’ve handled every step of its journey—from raw material procurement to the final sealed drum—so we see well beyond a set of numbers or a casual online listing. Our experience matters because this compound doesn’t come about by chance. Precision and process rigor define its success at all stages. Drawing from years spent refining our production workflow, we know the ins and outs of what makes a batch not only pass the lab tests but also stay consistent in real-world applications.

    The Chemical Itself: Structure and Background

    5-Fluoro-2-Methylbenzamide belongs to the family of substituted benzamides, featuring a fluorine atom at the fifth position and a methyl group at the second position on the benzene ring. This design gives the molecule unique physical and chemical characteristics that show clear advantages in select synthesis routes. Our batches are typically offered with a purity above 99%, measured by HPLC and verified with advanced analytical techniques. While some manufacturers focus on basic compliance, we focus on keeping batch-to-batch consistency tight—even minor variances in the synthesis route or purification step change the final product’s performance dramatically.

    Real-world Manufacturing Insights

    Once, early in our process history, an unexpected temperature fluctuation during the amide formation stage led to a subtle spike in impurities. The learning here shaped our batch control policies ever since, tightening the monitoring and automating feedback loops. Each kilo now produced in our reactors benefits from actual lessons learned on the job, not just theory lifted from textbooks or public patents. This shows up in purity and reliability, which matter far more than Excel charts ever could when the downstream synthesis depends on this building block.

    Manufacturing isn’t just about mixing chemicals together. It turns on a combination of access to high-purity 5-fluoro-2-methylaniline, precise control over temperature and pH, and a firm hand on reaction timing. By keeping the entire process under one roof, we keep timelines predictable and contamination risks low. This direct control gives end users a final product that stars in both proprietary research and scale-up work, with none of the guesswork that can plague unproven suppliers or traders.

    Specification Matters: Quality From Source to Ship

    End-use applications in pharmaceutical research, agrochemical development, and material science demand tight control over key specs—moisture, heavy metal trace contaminants, and solvent residuals. Every lot is tested at several stages: post-synthesis, post-crystallization, and again after drying. Our lab staff track even the faintest deviation, and no material leaves the factory floor without a matching certificate of analysis. Companies relying on our 5-Fluoro-2-Methylbenzamide often push the limits in their own R&D, so we never cut corners on diagnostics. By sharing our own best practices and even opening our processes to audits, we build real trust instead of hiding behind vague product sheets.

    Not All Benzamides Are Created Equal

    New customers ask us how 5-Fluoro-2-Methylbenzamide stacks up against the more traditional benzamides or even simple methylbenzamide derivatives. The short answer comes down to the electron-withdrawing effect of the fluorine atom, which alters reactivity and often leads to cleaner intermediates with sharper yields. Fluorinated compounds usually offer a leap in metabolic stability, especially in medicinal chemistry programs. This specialty product allows researchers to explore analogues or active pharmaceutical ingredient precursors that regular methylbenzamides struggle to match.

    From the manufacturer’s seat, producing 5-Fluoro-2-Methylbenzamide brings its own hurdles, which set it apart from more common ring-substituted amides. Handling fluorinated intermediates safely requires specialized gear, careful waste treatment, and seasoned operators who know what to expect at every distillation and filtration checkpoint. The sulfuric odor of impurity byproducts, so distinct during early experimental batches, lingers in memory and drives home the need for stringent process management. Many competitors outsource or partially contract out sensitive synthesis steps, but our team keeps everything in-house so nothing gets lost between stages or vendors.

    Usage Across Research and Industry Sectors

    In our customer feedback loops, chemists from pharma and agrochemical discovery labs share success stories of using our 5-Fluoro-2-Methylbenzamide as an intermediate in more complex molecular assembly. Medicinal chemists value its role in the synthesis of heterocyclic compounds, notably in small molecule development targeting central nervous system disorders. Beyond mere ingredient sourcing, our technical support team actively digs into reaction troubleshooting when clients encounter unexpected side reactions or lower-than-expected yields, offering advice grounded in our own pilot-scale learning curve.

    Researchers dealing with fluorinated scaffolds often point to the purity of our benzamide as a key variable behind their successful late-stage functionalizations. Slightly lower quality materials often generate more process impurities—an issue we identified early and solved by stricter purification methods. Our chromatography and crystallization sequences were developed not just for regulatory box-ticking, but to solve real-world contamination threats that can derail a synthesis campaign.

    Differences That Count: Why Our Manufacturing Model Beats Commodity Sources

    Any lab can order 5-Fluoro-2-Methylbenzamide from traders who simply resell uninspected imports. What sets our product apart boils down to hands-on oversight and a rigorous process ethos. Lesser suppliers sometimes rebrand material from fragmented supply chains, resulting in unpredictable assay values, off-spec melting points, or solvents carried over from last-minute storage tweaks. We run side-by-side tests against market samples, and those who have tried our direct-sourced product routinely report cleaner NMR spectra and fewer by-product peaks in their LC-MS assays.

    Another tangible difference shows up in shipment reliability. Large chemical projects rarely stop for paperwork delays or shipment mishaps. We coordinate our own logistics to avoid customs traps or warehouse bottlenecks. Returns and investigations into customer complaints have dropped to almost none after we overhauled our outbound inspection protocols. This brings our customers closer to the source of the material, with real responsiveness instead of an endless game of telephone with distant brokers.

    We know quality demands resilience beyond the production line. For example, we worked with a European biotech startup that needed several kilos fast-tracked to support an urgent project. Our in-house batch and shipping flexibility let us cut lead time by days, not weeks. Their chemists finished their planned library expansion before their main competitor sourced their first kilo from a generic distributor. That kind of responsiveness takes more than a simple inventory system; it’s built from the mindset of a company that owns its process and stands behind it without excuses.

    Safety, Compliance, and Responsible Manufacturing

    Decades of regulatory change raised the bar for specialty chemicals. 5-Fluoro-2-Methylbenzamide has a production flow tied to health, safety, and environmental controls at every step. From solvent recovery to effluent treatment, nothing leaves our facility unless it meets or beats local compliance standards. We regularly upgrade plant equipment and refine our environmental monitoring, spurred in part by direct dialogue with regulatory bodies. Compliance lessons aren’t filed away for annual audits—they show up daily in process tweaks, operator briefings, and emergency drills.

    We bring this discipline to our QA/QC metrics. Analytical results aren’t window dressing; they inform constant process improvement, and every employee learns how his or her station feeds into the broader safety culture. This isn’t about posturing for visitors—it touches raw material storage, waste segregation, and real-time sensors that flag deviations before they grow into bigger threats. Our record reflects a history of uninterrupted inspections, thanks to thorough training and a willingness to adopt smarter controls and greener solvents as better options become available.

    Supporting the Scientists Who Rely on Our Work

    All feedback, from the largest pharmaceutical partner to a single-lab research institute, adds direct momentum to our manufacturing improvements. If a user in a medicinal chemistry lab encounters an unplanned side product during their coupling step, our team traces that signal all the way back to changes in our own reagent sources. We share real yields and impurity schemes with our customers, not just marketing blurbs or cherry-picked examples. Scientists aren’t interested in mystery compounds that force them to spend extra effort on purification. Our goal is to let them put their time into molecular innovation, not rescue missions for unreliable materials.

    We have partnered with university groups on spectral tracing, helping them nail down stray peaks by providing historic data from multiple runs and crystallizations. This partnership is a return on the investment we make in analytical rigor—and it’s the clearest sign that expert manufacturing support goes well beyond shipping out a box of material.

    Working With Us: Shared Interest in Excellence

    The relationship between producer and end-user runs on mutual accountability. Downstream reliability grows from predictable process management upstream. For 5-Fluoro-2-Methylbenzamide, the leap from gram-scale project to repeatable kilo-scale campaign means nothing unless every flask starts and ends with the same compound profile. Our routine engagement with customer technical teams, shared troubleshooting datasets, and open invitations for audits all tie back to a belief: true chemical manufacturing doesn’t hide the details. We’ve learned from supplying analytical standards and process intermediates that open-door communication solves more headaches than marketing promises can ever hope to.

    We invest in staying close to the latest analytical best practices—adding high-field NMR and mass spectrometry cross checks, tuning detection thresholds, and bringing in reference standards as soon as they are available internationally. This equipment helps us spot even trace-level side products, which can become much bigger headaches when scaled up. We offer not just documentation but the actual data behind every certificate, empowering customers to ask questions and request additional analytics when their research demands it.

    Looking Ahead: Evolving With Industry Needs

    As the wider research community pushes into unexplored territory, 5-Fluoro-2-Methylbenzamide will see new roles and synthetic pathways. We keep our chemists in the loop on evolving synthesis techniques and the demand drivers for this specialty amide. By drawing on production notes and real output metrics, we stay prepared for requests outside the ordinary. For long-term customers, this spirit of adaptation means we can tweak synthesis scale, moisture control, or even packaging on short notice. If a pharma partner has moved into continuous manufacturing or is exploring green chemistry initiatives, we stand ready to adjust our own processes so that the material arrives both on time and on spec—with the sustainability profile to match industry ambitions.

    No two applications use 5-Fluoro-2-Methylbenzamide the same way, and we see our job as enabling that diversity without sacrificing predictability. By owning every step from raw material to final analytics, we remain a steady partner in a fast-moving landscape. Our promise isn’t only that you get a certain assay or melting point but that you gain a partner who values your challenges as highly as our own production goals.

    Conclusion: More Than Just a Chemical—A Commitment to Excellence

    Over time, the real test of specialty chemical manufacturing comes from researchers who return again and again, using our 5-Fluoro-2-Methylbenzamide as the jumping-off point for their next achievement. By focusing on in-house production control, open technical dialogue, and a shared drive for reliability, we offer more than a molecule—we deliver a partner’s commitment to the next breakthrough. Through every batch, every scale-up, and every analytical challenge, our factory stands ready—measuring success not in sales, but by the hard-won trust of scientists worldwide.