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Methyl 4-Fluorobenzoate

    • Product Name Methyl 4-Fluorobenzoate
    • Alias methyl-4-fluorobenzoate
    • Einecs 217-986-6
    • 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
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    Specifications

    HS Code

    558976

    Chemical Name Methyl 4-Fluorobenzoate
    Cas Number 456-46-2
    Molecular Formula C8H7FO2
    Molecular Weight 154.14 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 210-211°C
    Melting Point 28-31°C
    Density 1.193 g/cm3 at 25°C
    Purity Typically ≥98%
    Solubility Slightly soluble in water, soluble in organic solvents
    Refractive Index 1.5020 at 20°C
    Smiles COC(=O)C1=CC=C(C=C1)F

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

    Packing & Storage
    Packing Amber glass bottle, 250g, sealed with a plastic screw cap. Clearly labeled with chemical name, formula, and hazard symbols.
    Shipping Methyl 4-Fluorobenzoate is shipped in tightly sealed containers, protected from moisture and light. It is typically transported as a liquid or crystalline solid, classified as non-hazardous for standard shipping. Packaging ensures stability during transit, following regulatory guidelines for chemicals, and includes clear labeling for identification and safety compliance.
    Storage Methyl 4-Fluorobenzoate should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizing agents. Keep the chemical away from direct sunlight and moisture. Store at room temperature and ensure appropriate labeling. Follow all relevant safety and regulatory guidelines for storage of organic chemicals.
    Application of Methyl 4-Fluorobenzoate

    Applications of Methyl 4-Fluorobenzoate in Industrial Manufacturing

    Methyl 4-Fluorobenzoate serves as a specialized chemical intermediate utilized in several demanding industrial sectors. As a direct manufacturer, we supply this critical raw material to advanced downstream production lines, strictly supporting compliance and high-value end product formulations. Each application described below is aligned with exacting sector requirements, integrating regulatory, technical, and process-specific data to meet contemporary B2B procurement standards.

    1. Pharmaceutical API Intermediate Synthesis

    Pharmaceutical manufacturers employ this compound chiefly in the multi-step synthesis of active pharmaceutical ingredients, where the fluorinated aromatic ester structure plays a crucial role in the construction of complex molecular scaffolds. The material’s use within GMP-certified environments demands exact batch traceability and purity controls, with ratio adjustments based on targeted molecule output and reaction conditions. API producers typically leverage its reactivity in esterification or amidation sequences, leading to specific antihypertensive or anticancer drug development pipelines.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 (cGMP for Finished Pharmaceuticals)
    • European Pharmacopoeia Monographs (synthesis and quality control)
    • REACH Annex XVII (if imported to EU for pharmaceutical processing)

    Typical usage ratio

    • Usually introduced at 0.5–2.0 molar equivalents relative to core coupling partners, adjusted according to yield targets and side reaction profiles documented during pilot trials.

    Downstream process integration

    • Dosed during initial or mid-stage coupling within multi-step synthesis, directly into the reactor charge, followed by workup and phase separation prior to downstream purification.

    Final product types

    • Small-molecule APIs including fluorinated aromatic drugs and specialty intermediates for contract manufacturing organizations (CMOs)
    • Pharmaceutical reference standards for in-house QC labs

    2. Agrochemical Active Ingredient Manufacturing

    In the agrochemical industry, Methyl 4-Fluorobenzoate is processed as a strategic building block within the synthesis of specific herbicide and pesticide active ingredients. The compound's fluorine atom increases biological activity when introduced into benzoate-based agrochemicals, often through substitution or condensation reactions. Industrial agrochemical plants integrate this material within highly regulated and scale-driven continuous processes, balancing cost, efficacy, and residue profile limitations in accordance with official residue and safety thresholds.

    Industry compliance standards

    • FAO/WHO Specifications and Evaluations for Agricultural Pesticides
    • US EPA 40 CFR Part 180 (Tolerances and Exemptions for Pesticide Chemical Residues)
    • ISO 9001:2015 Quality Management System for Agrochemical Production
    • China National Standard GB 2763 (Maximum Residue Limits for Pesticides)

    Typical usage ratio

    • Typically loaded at 1.0–5.0% (w/w) in pre-condensation charge, as determined by desired activity spectrum and downstream formulation pathway; can be optimized lower in high potency syntheses.

    Downstream process integration

    • Fed into automated reactor modules for nucleophilic substitution or hydrolysis steps, followed by extraction and formulation into technical concentrate blends.

    Final product types

    • Selective herbicide and fungicide actives for crop protection
    • Intermediate concentrates for emulsifiable agrochemical formulations

    3. Fine Chemical & Specialty Polymer Monomer Production

    This molecule provides a functional monomer precursor for specialty polymers where controlled incorporation of fluorine modifies polymer surface energy, chemical stability, or optical properties. Industrial application focuses on precision polymerizations or copolymerizations, especially in electronics and high-performance coatings. Quality control protocols ensure monomer purity and batch consistency, meeting the standards critical for technical grade films, resins, and electronics.

    Industry compliance standards

    • ISO 9001:2015 and ISO 14001:2015 for Specialty Chemicals Manufacturing
    • RoHS (Restriction of Hazardous Substances) Compliance for Electronics Components
    • UL 94 for Flammability of Polymer Materials
    • ASTM D256 for Impact Resistance in Polymer Testing

    Typical usage ratio

    • Added at 2–10 mol% in copolymerization feeds, with the incorporation level fine-tuned to reach specific surface and mechanical property targets required by end-user QC specs.

    Downstream process integration

    • Introduced during initial monomer feed to batch or continuous reactors, followed by post-polymerization purification and blending prior to extrusion or casting.

    Final product types

    • Functionalized engineering plastics and high-performance resins
    • Optical-grade films for electronics packaging or anti-reflective coatings

    4. Perfume and Aroma Ester Synthesis (Industrial Fragrances)

    In the fragrance and aroma chemical sector, this aromatic ester serves as a restricted-use intermediate for specialty fluorinated esters that impart distinctive olfactory notes or modify volatility in a controlled manner. Only industrial-scale aroma houses rely on advanced synthetic routes utilizing this compound; the process involves selective transesterification or further functionalization, all governed by strict IFRA and regional regulatory frameworks to guarantee safe end-use in consumer fragrances.

    Industry compliance standards

    • IFRA (International Fragrance Association) Code of Practice
    • EU Regulation (EC) No 1223/2009 on Cosmetic Products
    • ISO 9235 for Natural and Synthetic Aromatic Raw Materials
    • Hazardous Substances and New Organisms Act (HSNO, New Zealand) for imported aroma chemicals

    Typical usage ratio

    • Integrated at 0.05–0.2% of total formulation mass for aroma ester synthesis, with the proportion benchmarked against in-house GC-MS profiling and regulatory restrictions on final presence in formulations.

    Downstream process integration

    • Charged into reaction tanks for targeted esterification with alcohols or acids, followed by distillation and final fragrance blending under GMP-like conditions.

    Final product types

    • Industrial fragrance bases for functional consumer products
    • High-purity intermediate aroma esters for specialty perfumery supply chains

    5. Analytical Reference Standards Production

    Producers of analytical reagents and chemical reference standards utilize this fluorinated compound as a calibration substance and method verification tool for analytical laboratories performing trace detection of benzoate analogs. Manufacturing for this application demands ultra-high purity controls, cross-lot homogeneity, and validated documentation compliant with international analytical standardization frameworks. Downstream clients rely on the reference material for developing and validating detection methods in environmental, pharmaceutical, and food QC labs.

    Industry compliance standards

    • ISO 17034 General Requirements for the Competence of Reference Material Producers
    • ISO/IEC 17025 for Testing and Calibration Laboratories
    • USP General Chapter <11> Reference Standards
    • OECD Principles of Good Laboratory Practice (GLP)

    Typical usage ratio

    • Supplied at reference concentrations from 10 mg/L to 1 g/L solutions, or as high-purity solids, concentration determined based on analytical instrument detection limits or specific method validation plans.

    Downstream process integration

    • Portioned and packaged into ampoules, vials, or ready-to-use solutions; subjected to identity and purity analysis before release as finished analytical standards.

    Final product types

    • Certified analytical reference materials for instrument calibration
    • Method validation kits for HPLC and GC analysis
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    Certification & Compliance
    More Introduction

    Methyl 4-Fluorobenzoate: Chemical Manufacturing Perspective

    A Fresh Take on Aromatic Esters

    Over the past two decades, chemical synthesis has evolved in remarkable ways. As a core manufacturer investing in modern plant design, we focus on compounds that offer both reliability and forward-thinking versatility. Methyl 4-fluorobenzoate is one of such products. From an operator’s view, this methyl ester stands out not just for its molecular profile—a clear, slightly sweet-smelling liquid—but for its relevance across today’s most sophisticated synthetic sectors.

    Consistent Specification and Model Details

    We produce methyl 4-fluorobenzoate to tight specifications, as dictated by years of process refinement and customer feedback. Colorless or near-colorless liquid, GC purity exceeding 99.5% on every batch, moisture controls well below 0.2%, and careful account of trace byproducts form the backbone of our product release checklist. Each lot runs through in-line NMR and FTIR verification. Most chemical companies talk about clean batches; our technicians walk the floor and stand by every drum, real-time. Our archived data log for each batch doesn’t just tick compliance boxes—it lets clients trace outcomes back to a timestamp and shift supervisor.

    We maintain scales suitable for academic research or full tonnage output on commercial contracts. Our bottles, cans, drums, and bulk tank supply lines always reflect what matters upstream in pharmaceutical preparation, crop protection, and advanced material synthesis: repeatable, trustable chemistry with layered QA/QC.

    From Our Plant to Your Process: What Methyl 4-Fluorobenzoate Delivers

    In our experience, methyl 4-fluorobenzoate carves out a unique role as both building block and functional intermediate. Laboratories reach for it when developing fluoroarene libraries, not simply because of the fluorine atom but for the balance it provides between reactivity and handling ease. For other firms in the fluorochemicals value chain, this ester features in cross-coupling reactions, nucleophilic substitutions, and as a substrate for downstream halogenation. We know each scenario involves subtle needs; solvent residue levels matter, batch documentation determines regulatory ease, and lot-to-lot consistency saves every chemist time.

    We’ve watched custom synthesis ventures use methyl 4-fluorobenzoate for rapid analog screening. In scale, crop science giants prefer it as a key input for novel active ingredients. Electronics companies rely on us for its use in fine-tuned surface modifiers or specialty coatings. This is the kind of diversity that keeps our plant buzzing around the clock: not only in large campaigns but also fulfilling niche orders for R&D breakthroughs.

    Key Production Advantages: Not All Suppliers Stand on the Same Ground

    In practical terms, methyl 4-fluorobenzoate is not hard to find—what sets our output apart is how we control genesis and handling. Starting from pharmaceutical-grade 4-fluorobenzoic acid, our transesterification pathway features high-efficiency catalysts and solvent recovery, reducing both waste and environmental risk. Continuous-flow reactors let us control exotherms and avoid color body formation, so downstream purification gets simpler, faster, and more sustainable.

    Where many third-party traders or importers lack transparency, we open our laboratory for audits and routinely welcome client visits. We hear what end-users experienced from previous vendors: haze in drums, odd odors after air exposure, or residues that harm subsequent yields. Our measures—vacuum distillation, PTFE-lined transfer hoses, and dedicated storage—don’t just eliminate those headaches but allow our methyl 4-fluorobenzoate to outperform even in high-purity-demanding environments.

    Not all manufacturers can guarantee absence of chlorinated residues or specific aldehyde contaminants. Our analytics—every release run by experienced chemists—protect sensitive applications, whether you work with catalytic hydrogenations or develop diagnostic agents needing tight impurity profiles.

    Understanding the Compound’s Distinctive Features

    From chemist’s eyes, methyl 4-fluorobenzoate differs sharply from its analogs. Swap the para fluorine to ortho or meta, or trade the methyl for an ethyl group, and reactivity changes in significant ways. The para-fluoro setup modifies the aromatic ring’s electron density, tuning it for select nucleophilic attack that chemists favor in library design. At the same time, the methyl ester group shapes solubility and volatility—in lab and plant settings, this makes it a preferred candidate for streamlined isolation and process control.

    We often field questions about differences with non-fluorinated methyl benzoate or other halogenated benzoates. Customers working on new drug candidates or crop protection molecules need that precise para-fluoro substitution, which shifts downstream synthesis and properties. The physical handling also sets this product apart: storage stability rises, and the material profile supports longer shelf lives without significant degradation. In parallel, fragrance formulators pick up on its faint, nuanced aromatic note. We see growing demand on all these fronts, which drives us to keep improving both bench practices and plant design.

    Our Experience in Critical Usage Scenarios

    The journey of methyl 4-fluorobenzoate doesn’t end with the outgoing bill of lading. Clients bring questions back to our plant: Will the ester hold up under rigorous hydrogenation? Does it serve as a clean intermediate when pushing toward more complex fluorinated scaffolds or switching to amide/ester transpositions? As an actual producer, we own the answers drawn from pilot reactions, engineering-scale equipment, and feedback from chemists working in the field.

    If your synthesis steps call for clean fluorinated aromatics, you don’t want to lose time fighting batch variability. We manage trace metal residues to below quantification limits. Moisture controls, storage under nitrogen, and jar-by-jar inspection cut down risk of hydrolysis. Over the years, we have watched laboratories switch away from less-reputable suppliers after encountering redissolved solids or perennial stuck reactions. The gains from trustworthy production stack up in both monthly throughput and morale across QA labs.

    Current project pipelines keep stretching the boundaries: antiparasitic actives, photoluminescent dyes, and polymer end-group modifications. Our technical support doesn’t end at the sale. Each product comes with historic QC records and technical commentary tailored to your setting, based on what chemical engineers and research teams actually encounter. We avoid hiding behind data sheets—direct, two-way dialogue answers the realities of day-to-day processing.

    Why Specification and Handling Make a Difference

    Raw materials underpin reliability in every industry. From our position as manufacturers, this means keeping a watchful eye on what leaves our filling lines. Solvent residues often sabotage scale-up in pharmaceutical synthesis; what seems a minor inconsistency on paper can mean a failed validation batch or unexpected downstream impurity. We supply certificates of analysis backed up by real chromatograms and spectroscopic traces from our own lab, not generic supplier statements.

    We’ve been called by plant chemists working night shifts who find a mysterious haze or delayed reactivity—even after meeting general specs. Our on-call technical support and direct line to production engineers help resolve these hurdles without days of downtime. That’s the real difference between owning your product’s journey and just reselling someone else’s material.

    With methyl 4-fluorobenzoate, minute differences in byproduct levels—such as para-tolualdehyde or meta-fluorobenzoic acid—can accumulate over months of synthesis. By controlling both raw material sourcing and reaction conditions, we cut down such drift to below detection, building trust with every repeat order.

    Comparison With Other Aromatic Esters

    In our operations, comparison drives progress. Methyl 4-fluorobenzoate contrasts sharply with non-fluorinated analogs in both reactivity and end-use profiles. The singular placement of the fluorine atom shifts electron distribution, making this ester less prone to hydrolysis while better suited in modern ligand designs and specialty agrochemical syntheses. The increased thermal stability and unique NMR/IR fingerprints aid rapid QC—an advantage pharmaceutical firms value for regulatory audits and process monitoring.

    Swapping the methyl group for ethyl or higher esters can raise boiling points but often complicates isolation in multi-step syntheses. Our methyl ester’s volatility balances containment in the plant and convenience for downstream isolation. In fragrance and flavor chemistry, subtle differences in the ester group alter the material’s top notes; our product’s faintly pleasant aroma has sparked new niches among boutique perfumeries aiming for modern base compositions.

    Polychlorinated or other halogenated benzoates increase environmental burden and rarely show the same fine-tuned reactivity. Methyl 4-fluorobenzoate’s limited byproduct pathway makes it favorable for organizations under increasing regulatory oversight: less risk, easier compliance, and clear downstream documentation.

    Supporting Industry Standards and Evolving Needs

    Regulatory environments grow tighter every year. We invest in both analytical equipment and transparent operational records to keep pace. As downstream users strive for ICH, REACH, and other international compliance, upstream consistency pays off. Our production lines feature closed systems, solvent recycling, and batch archiving for traceability. By focusing on methodical, repeatable chemistry, we deliver to clients who put a premium on risk management, clean validation trails, and streamlined scale-up.

    In many regions, environmental regulators frequently audit chemical plants for waste, emissions, and material movement. Our hands-on approach—fume scrubbing, waste stream monitoring, and participation in green chemistry initiatives—keeps both local neighbors and commercial end-users confident in product stewardship. We build relationships by serving technical queries and regulatory audits personally, not through distant intermediaries.

    Education and training remain a central strength. Our engineers run cross-training sessions in safe material transfer, process optimization, and reaction troubleshooting. Where batch out-of-spec risks put projects on ice, our troubleshooting guides—developed in-house—get clients back on track fast. Our QC team maintains open lines for feedback and real-time remote support, ensuring that methyl 4-fluorobenzoate always arrives with both documentation and tailored technical answers.

    Driving Innovation and Sustainability

    We are not content to simply fill orders. Our R&D programs focus on catalyst innovation and novel flow reactor integration. We experiment with greener solvents and source raw materials from sustainable vendors. These efforts aren’t just box-ticking: lowering process temperature and recycling mother liquors have shrunk our waste generation over the last five years by 30%. This cascades down to our clients as fewer unexpected residues, easier environmental compliance, and lower carbon footprints attached to each shipment.

    Product development doesn’t happen in a vacuum. Our role as a manufacturer lets us trial alternative production strategies, from enzymatic approaches to tailored acid-activated resin cyclizations. We log every success and failure—so future generations of chemists can build on these lessons. Client requests have spurred us to develop new derivatives and specialty packaging. These innovations drive both product quality and broader chemical industry goals.

    Innovation also spans communication: our web portal features real-time batch availability, order tracking, and rapid document download. The shift toward digital ordering and transparent batch histories breaks down supply chain bottlenecks, which used to slow progress for research groups and high-volume plants alike. We view these improvements as essential to the modern chemical manufacturing landscape.

    A Manufacturer’s Commitment to Clients and Colleagues

    As an active producer, we value steady working relationships with clients. We listen to shifting industry demands, from emerging pharmaceutical targets to advanced material science trials. Our team, drawing on decades of floor experience and ongoing internal training, responds with the detailed support only a real manufacturer can give—not just a pricing sheet or product list.

    Our batch record archives run deep, supporting regulatory filings across the globe. We keep flexibility in packaging, embrace custom labeling when needed, and maintain direct technical dialogue from inquiry to delivery. Our focus isn’t on maximizing order volumes—our priority stays with proven, transparent, and reliable chemistry.

    Feedback cycles keep our operations grounded and guide continuous improvement. Field reports from client plants help shape preventive maintenance and guide improvements in filtration and handling processes. The result is a supply chain free from surprises and interruption, serving both research pace-setters and industrial mainstays.

    Adapting to Challenges and Building for the Future

    The chemical manufacturing landscape never stands still. Market volatility, shifting regulatory frameworks, and new technical demands crop up each month. As producers of methyl 4-fluorobenzoate, we invest in resilience—bolstering raw material stocks, maintaining redundant process lines, and updating compliance certifications without delay. Our team closely tracks regulatory trends and emerging safety guidance to stay ahead of curveballs.

    Environmental stewardship will only get more important. As urban development presses close, we uphold strict emissions monitoring. Solvent and acid recovery systems demonstrate that even specialty chemical manufacturing can reduce impact. Community engagement and open-house forums foster understanding and trust between plant operators and neighbors.

    Closing Remarks: Manufacturing Methyl 4-Fluorobenzoate with Trust

    We shape methyl 4-fluorobenzoate from the raw acid to final drum, with every step controlled and scrutinized by our in-house experts. This approach means more than compliance—it forms a guarantee for our clients. Pharmaceutical innovators, agricultural chemists, and materials developers trust us to deliver high-purity, low-residue, reproducible intermediates year after year.

    Our history with this compound and role in supporting countless synthesis projects underpin a commitment to integrity and improvement. Manufacturing chemistry isn’t just about process—it’s measured in honest support, technical partnership, and a shared drive for safer, more impactful innovation.