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Methyl 3-Methoxyphenylacetate

    • Product Name Methyl 3-Methoxyphenylacetate
    • Alias methyl-3-methoxyphenylacetate
    • Einecs 401-230-3
    • 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

    417499

    Cas Number 7143-58-0
    Molecular Formula C10H12O3
    Molecular Weight 180.20 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 275-277°C
    Density 1.118 g/cm3
    Refractive Index 1.523
    Solubility Soluble in organic solvents, insoluble in water
    Smiles COC1=CC=CC(=C1)CC(=O)OC

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

    Packing & Storage
    Packing 500g amber glass bottle with secure screw cap, labeled “Methyl 3-Methoxyphenylacetate, 98%,” includes hazard warnings and batch information.
    Shipping Methyl 3-Methoxyphenylacetate is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. Packages are labeled according to chemical safety regulations, and typically handled as non-hazardous for transport. Shipping should comply with local, national, and international regulations, ensuring the chemical’s stability and integrity during transit.
    Storage Methyl 3-methoxyphenylacetate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from direct sunlight, heat, and incompatible materials such as strong oxidizing agents. Keep the container clearly labeled, and store it at room temperature. Ensure proper secondary containment to prevent spills, and follow standard chemical storage and safety protocols.
    Application of Methyl 3-Methoxyphenylacetate

    Applications of Methyl 3-Methoxyphenylacetate in Industrial Manufacturing

    Methyl 3-Methoxyphenylacetate provides critical functionality in several industrial sectors, particularly where specific aromatic esters enhance chemical properties or target synthesis steps. The following outlines real-world downstream application scenarios, describing process roles, regulatory demands, effective use ratios, and final product targets.

    1. Pharmaceutical Intermediate for Non-Steroidal Anti-Inflammatory Drug Synthesis

    Manufacturers use this ester as a building block during the multi-step synthesis of certain non-steroidal anti-inflammatory drugs (NSAIDs). The aromatic structure and selective functional groups enable reliable coupling and subsequent derivatization, forming advanced intermediates for active pharmaceutical ingredient (API) production. Strict quality protocols require validated input materials at defined stages to ensure reproducibility and GMP compliance throughout the synthesis chain.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • United States Pharmacopeia (USP) for raw material controls
    • 21 CFR Part 211 (FDA cGMP for finished pharmaceuticals)
    • European Pharmacopeia reference standards as applicable

    Typical usage ratio

    • 5–15 mol% relative to main synthesis stage, adjustable based on pathway yield optimization and reactivity profile

    Downstream process integration

    • Added at the controlled intermediate formation stage, followed by condensation or substitution steps under monitored temperature and pH
    • Quality-checked before isolation to minimize side-products

    Final product types

    • Ibuprofen and naproxen intermediate compounds
    • Bulk NSAIDs in tablet and suspension forms
    • Pharmaceutical grade intermediate APIs for contract manufacturing partners

    2. Fragrance Ingredient in Fine Fragrances and Personal Care Formulation

    Procurement and formulation teams in the fragrance and personal care industry select this ester to impart specific floral and balsamic notes in luxury perfumes, eau de toilette, shower gels, and creams. Its stability in alcohol-based and aqueous systems allows flexible dosage in top and heart note blends. Blending strictly follows international fragrance safety regulations for consumer health and environmental impact.

    Industry compliance standards

    • IFRA (International Fragrance Association) Guidelines and Standards
    • EU Cosmetics Regulation (EC) No. 1223/2009
    • REACH (Registration, Evaluation, Authorisation & Restriction of Chemicals, EU)
    • IFRA Transparency List compliance for market disclosure

    Typical usage ratio

    • 0.02–0.2% by total weight in finished fragrance concentrate, adjusted for olfactory impact and regulatory maximums

    Downstream process integration

    • Directly dosed in the oil phase during concentrate blending
    • Added post-filtration to maintain aromatic intensity before homogenization

    Final product types

    • Luxury and mass market perfumes
    • Personal care lotions and body washes
    • Fine fragrance bases for cosmetic brands

    3. Specialty Ester for Agrochemical Formulation (Herbicide Intermediate)

    Chemical synthesis plants in the agrochemical sector utilize the compound as an intermediate to design and scale up new selective herbicide molecules. The methoxyphenyl skeleton allows downstream chemical modifications, creating actives with enhanced activity spectrum and crop safety profiles. Product stewardship requires conformity to agricultural chemical manufacturing codes and environmental residue control during the upscaling of new formulations.

    Industry compliance standards

    • FAO/WHO Good Laboratory Practice (GLP) for pesticide intermediates
    • ISO 9001:2015 for agrochemical manufacturing process control
    • OECD Guidelines for the Testing of Chemicals (as applicable to intermediates)
    • National regulatory pre-registration (e.g., US EPA, EU Plant Protection Product Regulation EC 1107/2009)

    Typical usage ratio

    • 10–18 mol% incorporated in the key precursor synthesis, adapted to desired molecular scaffold and process yield targets

    Downstream process integration

    • Dosed during the controlled aromatic substitution stage to assemble the core herbicide molecule
    • Integrated via batch or continuous-flow synthesis lines, monitored for purity at each stage

    Final product types

    • Active herbicidal ingredient intermediates
    • Pre-formulated selective weed management products
    • Agrochemical technical concentrates for dilution by end-users

    4. Modifier in High-Performance Polymer Synthesis

    Specialty chemicals producers apply Methyl 3-Methoxyphenylacetate as a functional modifier during the synthesis of high-performance engineering polymers. The aromatic ester participates in step-growth polymerization, contributing to improvements in flexibility, thermal resistance, and processability of resins for advanced manufacturing. Producers maintain traceability and material consistency per industry quality systems, and residual contents undergo stringent release testing.

    Industry compliance standards

    • ISO 9001:2015 for polymer manufacturing quality management
    • ASTM D638 for polymer physical property testing
    • RoHS Directive (EU) 2011/65/EU for hazardous substance restrictions
    • ISO 14001:2015 for environmental management systems (where exported)

    Typical usage ratio

    • 0.3–1.7 wt% of monomer mix, adjusted based on polymer backbone design and end-use stress resistance demands

    Downstream process integration

    • Introduced during copolymerization step as chain-modifying monomer
    • Ensured uniform dispersion and monitored residual ester content in final polymer

    Final product types

    • High-performance specialty films
    • Engineering plastic components for electronics
    • Automotive under-the-hood molded parts
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    Certification & Compliance
    More Introduction

    Methyl 3-Methoxyphenylacetate: A Trusted Choice for Precision Chemistries

    Why We Manufacture Methyl 3-Methoxyphenylacetate

    At our core, we specialize in the synthesis of select aromatic esters. Methyl 3-Methoxyphenylacetate stands out in our lineup because it meets the practical demands of specialty chemical synthesis. Chemists look for molecules that deliver consistent results every batch. We put real attention into the control we exercise at each step of production. Our teams watch for trace contamination, batch-to-batch variance, and storage stability. These are the focus points that have pushed our product to the front of the market for customers who require a reliable building block for pharmaceuticals, flavors, and fine chemicals.

    We don’t make this compound simply because it’s easy. There’s no shortcut to quality. The aromatic structure of Methyl 3-Methoxyphenylacetate, featuring a methoxy group on the benzene ring, offers useful reactivity. Our facility is built with modern glass-lined reactors, closed transfer systems, and analytically driven batch release protocols. This approach has real consequences for our customers — purity holds steady at 99% or better, and residual solvents remain below detection. Stability during long shipping or storage periods presents no surprises, so formulation chemists can depend on their inventory.

    Practical Applications: From Lab to Large Scale

    The most common requests for Methyl 3-Methoxyphenylacetate come from research teams in pharmaceutical discovery. A recurring challenge across this field stems from minor impurities or incorrect isomer ratios. Even subtle changes can derail a multi-step synthesis. Our process uses precision temperature control and upstream purification steps to reduce process by-products. This translates into fewer surprises, improved yield downstream, and real savings in time.

    Flavors and fragrance developers approach us with a different set of concerns. They care about odor profile, color, and UV stability. The characteristic mild, sweet scent of Methyl 3-Methoxyphenylacetate traces back to its structure. Many fragrance blends falter when oxidized residues or residual acids remain. We eliminate these by careful monitoring of raw materials and use of high-vacuum distillation. This is not a routine run: we draw insights from every batch, knowing where sensitivity lies and where quality rests on fine margins.

    Model and Available Deliveries

    Our main model offers Methyl 3-Methoxyphenylacetate with a minimum purity of 99%. Material comes as a clear, colorless liquid under proper storage. We store the bulk product in stainless steel tanks or certified HDPE containers, with smaller packages in sealed amber glass to limit light exposure. Each order ships with full chromatographic and spectroscopic analysis, performed by trained analysts using both HPLC and NMR techniques. Over years of operation, we’ve reduced lot variation to below 0.5%, a figure that continues to drop with ongoing investment in instrumentation.

    We fill drums, carboys, or smaller vials according to actual usage volumes — not to arbitrary sales units or minimums. There’s no point in shipping more than a project demands. Researchers who work with complex syntheses sometimes request material from the same mother batch over multiple months. We plan for that stability and keep reserve lots, supporting customers through extended development cycles. These logistical choices don’t just reflect supply chain discipline; they also reflect our respect for the discipline of formulation chemistry.

    Key Differences: What Methyl 3-Methoxyphenylacetate Offers

    Customers familiar with other substituted phenylacetates notice the difference. Compared to its sibling, methyl phenylacetate, our product carries a methoxy group at the meta position. This ensures both higher polarity and increased electron density on the aromatic ring. Such changes matter in the hands of experienced synthetic chemists. Some downstream reactions proceed faster, others display improved regioselectivity, and the compound’s solubility profile adapts better to diverse solvents.

    We’ve worked with formulators who spent months troubleshooting crystallization or volatility issues linked to missing the methoxy substitution. Over time, this specificity has made the difference between products now on the shelf and abandoned projects. When production scale-up begins, incremental changes in structure reveal their effects on product stability, process times, and even regulatory filings. For example, the methoxy group on our compound can change metabolic pathways in pharmaceutical APIs, resulting in more favorable impurity profiles or improved pharmacokinetics. Clients who have navigated complex regulatory approval appreciate these details.

    Why Quality Oversight Shapes Us

    Consistent manufacturing in aromatic chemistry depends on raw material sources, operator skill, and careful process control. We’ve rejected entire lots of input chemicals based on minor deviation in assay — a frustrating choice, but necessary to avoid downstream failures. This dedication is not marketing flourish. It is a function of lived experience, after having seen what happens when process shortcuts lead to product recalls.

    Each campaign begins with rigorous compatibility checks. Our production planners work with R&D to verify that a new synthesis run will not introduce incompatibilities when switching from one batch to another. We invest in high-resolution analytical equipment, which lets our QC team spot both known contaminants and trace-level novel by-products. We can point to cycles where this attention avoided customer production delays, especially when end uses involve low-level impurity thresholds in APIs or specialty agri-chemicals.

    Practical Realities: Handling and Use

    As a liquid ester, Methyl 3-Methoxyphenylacetate pours cleanly and handles well throughout scale-up. In pilot plant settings, operators frequently comment on its lack of residue build-up and low volatility loss, even at elevated temperatures. Material adheres tightly to the specified boiling and melting points, supporting predictable fractionation or distillation steps if customers require purification tweaks.

    Long-term customers have drawn our attention to another property: low tendency to polymerize or discolor under standard conditions. Other aryl esters show more sensitivity. We select antioxidants and stabilizers, not as a catch-all, but based on the actual risk profile of each shipment. We track feedback closely. If a new process variable from our customer alters storage or blend conditions, we adjust protocols at our end, aiming to avoid off-odors, precipitates, or surprises in physical form. This practice springs from experience, not theory.

    Safety and Compliance: Real-World Practice

    Everyone in this sector knows that regulatory oversight on aromatic esters grows harder every year. We run each lot through both internal and accredited third-party labs, reporting any deviations immediately. Customers expect up-to-date safety data, transport documentation, and substance origin records. Our approach starts with source verification at the first point of input — there’s no point chancing non-traceable starting materials, especially with ever-shifting chemical standards worldwide.

    We know well the implications of regulatory missteps. In past years, we worked with several customers who faced delays when imported material could not pass customs checks due to ambiguous synthetic routes. That can grind an entire project to a halt. Our documentation runs deeper than just a paper trail; it reaches into isotopic analysis, trace element profiles, and chain-of-custody checks that chemists and supply chain managers can trust. We have adjusted procedures to meet changing standards and audit requirements year after year, learning from each inspection and compliance cycle.

    Supporting Research and Development

    It’s not enough to supply high-purity product if that’s the end of the relationship. Too often, manufacturers become invisible after the first shipment ships out. We try to break that cycle through dialogue with researchers and technical clients. Whether a batch needs a bespoke certificate of analysis or advice on reaction optimization, our chemists and engineers collaborate directly with end users.

    This product’s utility as an intermediate means customers often need guidance on downstream transformations: reduction, alkylation, etherification, or coupling reactions. Our team draws on decades of experience troubleshooting bench- and plant-scale reaction schemes. Specific obstacles — slow conversions, color changes, unexpected byproducts — may arise from trace metals or equipment idiosyncrasies. We walk through these issues, sharing data, helping identify sticking points, and tweaking production as needed.

    Organizations pushing on green chemistry and waste reduction come to us with requests for solvent-free production or energy-efficient synthesis. We have run pilot trials replacing traditional solvents and adjusting catalyst systems for greater selectivity and fewer emissions. These are not hypothetical victories — actual clients have been able to demonstrate reduced process hazards and win internal investment for scale-up, citing our technical guidance and empirical feedback.

    Comparison With Related Compounds

    Many newcomers to phenylacetate derivatives ask about differences with methyl 2-methoxyphenylacetate or simple methyl phenylacetate. It’s tempting to view the options as interchangeable, but the reality plays out in downstream chemistry. Shifting the methoxy group to the meta position influences electron delocalization and nucleophilic attack positions on the ring, which can accelerate or inhibit certain routes.

    We’ve worked alongside academic research groups designing new ligands and coupling agents. A recurring observation from pilot runs: minor structural differences lead to measurable shifts in product yield, isolated purity, and reaction time. Choosing the correct positional isomer can avoid weeks of unproductive bench work. In fragrance production, the specific aroma profile changes not just in intensity but in quality — subtle, yet noticeable to trained sensory testers.

    These differences shape our manufacturing planning. Scheduling the same reactor for ortho, meta, or para isomer production requires alterations in cleaning protocol, raw material staging, and side product management. The operational effort is worth it, as customers benefit from receiving exactly the compound that unlocks their next innovation.

    Supply and Trust: Why It Matters

    Reliability in specialty chemical supply chains matters most under pressure. Customers with development timelines measured in weeks can’t afford variance or delay. We understand that flexibility and support can be as important as technical specifications. Small batch requests, expedited deliveries, and custom packaging spring from our appreciation for the unpredictable rhythms of chemical R&D.

    Raw inventory capacity, real-time quality analytics, and transparent communication help us deliver on promises. We set aside reserve stock when notified that a project may extend beyond its initial sample order. Expanding global reach means we also handle the full range of export documentation, regulatory statements, and safety declarations — not as afterthoughts, but as core deliverables that keep customer projects moving.

    Continuous Improvement: The Manufacturer’s Path

    We’ve walked the long road of iterative process optimization. Each campaign provides feedback, and our data-driven approach lets us fine-tune reaction conditions, purification options, and energy inputs. Innovation doesn’t stop once a product meets specification. Upgrades to reactor design, solvent recovery, and waste minimization have translated into cost reductions and smaller environmental footprints for our entire portfolio. We draw pride from an environment where operators, supervisors, and lab staff all suggest ways to improve efficiency or product quality.

    Methyl 3-Methoxyphenylacetate is more than just a catalog item. Its story comes from dogged attention to detail, countless learning experiences at scale, and the direct collaboration with specialists who convert this building block into the finished chemicals that shape lives and markets. Every improvement in purity, every boost in yield, and each hard-won solution to a customer’s problem expands our expertise. The learning never really ends, and that’s something we embrace at every level.

    Conclusion: Why Our Methyl 3-Methoxyphenylacetate Sets the Standard

    Manufacturing comes down to a blend of science, leadership, and experience. Sustained quality arises from practical oversight and constant communication between teams — from sourcing to R&D to logistics. Our track record with Methyl 3-Methoxyphenylacetate stems from a habit of asking how every variable affects our customers' outcomes. Technical performance, clean documentation, and transparent service aren’t empty words, but daily practice for us. Whether intended for pharmaceutical synthesis, fine fragrance, or advanced materials, our compound consistently earns the trust of leading innovators. That trust is built batch by batch, with no shortcuts.