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2'Amino-4'-Methoxyacetophenone

    • Product Name 2'Amino-4'-Methoxyacetophenone
    • Alias AMAP
    • Einecs 253-800-1
    • 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

    252831

    Cas Number 7096-07-9
    Molecular Formula C9H11NO2
    Molecular Weight 165.19
    Iupac Name 1-(2-Amino-4-methoxyphenyl)ethanone
    Appearance Off-white to light yellow solid
    Melting Point 89-92°C
    Solubility Slightly soluble in water, soluble in organic solvents like ethanol and DMSO
    Smiles CC(=O)C1=C(N)C=CC(OC)=C1
    Inchi InChI=1S/C9H11NO2/c1-6(11)8-4-3-7(12-2)5-9(8)10/h3-5H,10H2,1-2H3

    As an accredited 2'Amino-4'-Methoxyacetophenone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White HDPE bottle containing 25 grams of 2'-Amino-4'-Methoxyacetophenone, labeled with product details, safety, and handling instructions.
    Shipping 2'-Amino-4'-Methoxyacetophenone is shipped in tightly sealed containers, protected from moisture, heat, and direct sunlight. It is handled as a chemical substance requiring standard precautionary measures. Shipping complies with relevant chemical transportation regulations, including labeling and documentation for safe delivery. Suitable packaging prevents leakage and ensures product integrity during transit.
    Storage 2'-Amino-4'-Methoxyacetophenone should be stored in a tightly sealed container, in a cool, dry, well-ventilated area, away from direct sunlight and sources of ignition. Keep it separated from incompatible substances, such as strong oxidizing agents and acids. Store at room temperature and label the container clearly. Follow appropriate chemical safety and local regulatory guidelines during storage.
    Application of 2'Amino-4'-Methoxyacetophenone

    Applications of 2'-Amino-4'-Methoxyacetophenone in Industrial Manufacturing

    2'-Amino-4'-Methoxyacetophenone serves as a specialized intermediate in several industrial sectors with stringent quality and compliance requirements. The following sections detail dedicated downstream applications in major chemical manufacturing tracks.

    1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredient Synthesis

    This compound plays a critical role in the multi-step synthesis of certain pharmaceutical APIs, primarily as a building block in the preparation of substituted benzamides and related therapeutic molecules. Manufacturers rely on its reactivity for controlled amination and acylation reactions, crucial in developing specific analgesic and antipyretic agents. Accuracy in stoichiometry and process sequencing directly impacts yield and purity, so precise analytical measurements and process controls are required at this stage of synthesis.

    Industry compliance standards

    • USP–NF (United States Pharmacopeia–National Formulary) for impurity profiling
    • ICH Q7 GMP guidelines for active pharmaceutical ingredient (API) manufacturing
    • EMA and FDA regulations on intermediates for registered drug substances
    • ISO 9001:2015 Quality Management Systems for documentation and batch traceability

    Typical usage ratio

    • Employed at 0.7–1.2 molar equivalents relative to the core precursor, with adjustments based on target product and route of synthesis

    Downstream process integration

    • Charged at the second-stage synthesis step, following initial coupling or acylation
    • Purification through crystallization or preparative HPLC before entering the final coupling or formylation stage
    • Comprehensive in-process HPLC/GC monitoring of transformation completion

    Final product types

    • Pyrazole and phenacetin derivatives for analgesic and antipyretic pharmaceutical formulations
    • Investigational drug substance intermediates
    • Finished drug substances for regulated global markets

    2. Fine Chemicals for Azo Dye and Pigment Manufacturing

    This intermediate supports azo dye synthesis for textile and paper industries. Its amino function enables diazotization and subsequent coupling with activated aromatic compounds, yielding highly stable colorants. Manufacturers carefully control reaction temperature and acid/base conditions to maintain target chromophore integrity and batch reproducibility. Strict waste management applies to by-products, aligning with environmental protection mandates.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 for chemical substance registration in the EU
    • OEKO-TEX® Standard 100 for allowable impurities in dyestuffs
    • EN 71-3:2019 for migration of certain elements in colorants used in toys
    • ISO 14001:2015 Environmental Management for process control

    Typical usage ratio

    • Dosage between 8% and 15% of total batch mass in azo coupling reactions, variable depending on desired shade and chromatic intensity

    Downstream process integration

    • Enters production post-diazotization as the primary coupling component
    • Feeds continuous-flow reactors with monitored pH and temperature for color consistency
    • Downstream purification utilizes reactive filtration and deionization to remove trace metals

    Final product types

    • Sulfonated azo dyes for cellulosic textile dyeing
    • Solvent-stable pigments for packaging inks
    • Water-based printer colorants
    • High-resolution pigment dispersions for specialty coating applications

    3. Agrochemical Synthesis Precursor

    Industrial users in agrochemical active substance production employ this intermediate to generate substituted aniline and benzamide scaffolds for selective herbicides. No direct agro-formulation use applies; instead, it enables the molecular design of active substances with controlled field degradation and target specificity. Process design includes closed transfers and vapor control to prevent operator exposure and minimize API cross-contamination. Batch documentation tracks all sequential chemical transformations in line with regulatory traceability demands.

    Industry compliance standards

    • FAO/WHO Technical Guidelines for the purity of pesticide intermediates
    • ISO 9001:2015 for component traceability and documentation
    • GLP (Good Laboratory Practice) for manufacturing process validation
    • Local REACH-like standards for Asian agrochemical markets

    Typical usage ratio

    • Applied at 3–10% of total input for herbicide development chemistry, with precise ratio guided by specific synthetic targets and molecular weight design

    Downstream process integration

    • Introduced after initial aromatic substitution or as the acylation partner in final ring closure reactions
    • Purified through vacuum distillation or column chromatography before conversion to the formulated agrochemical
    • Process SCR (Self-Check Record) systems document all mass balances and transfers

    Final product types

    • Amide and anilide herbicide actives such as benzanilides
    • Intermediate scaffolds for higher-generation insect and fungicide compounds
    • Active ingredient stocks for bulk formulation

    4. UV Absorber Intermediate for Polymer Additive Production

    The structure’s aromatic core and functional substituents make it a valuable intermediate in producing specialty UV absorbers for plastics. Major polymer masterbatch producers leverage its ortho-amino and para-methoxy configuration to synthesize stabilizing agents, which protect polyolefin and PVC articles from photo-degradation. Batch synthesis involves high-performance condensation or etherification, with the intermediate introduced at a key stage following alkylation. End-use output requires rigorous migration and extractables testing before sale to film or fiber manufacturers.

    Industry compliance standards

    • FDA 21 CFR 177.1520 (for indirect food contact in polyolefins)
    • GB 9685-2016 (Hygienic Standards for Uses of Additives in Food Containers, China)
    • ISO 4892 for exposure of plastics to laboratory light sources
    • EU Regulation No 10/2011 for plastic materials in contact with food

    Typical usage ratio

    • Typically 4–6% of total UV absorber formulation mass, with exact value tuned for targeted migration, light stability, and end-use requirements

    Downstream process integration

    • Fed to the first or second condensation stage of UV absorber synthesis lines
    • Undergoes esterification or amide bond formation with other aromatic substrates
    • End-products filtered and micronized for compounding into polymer granules

    Final product types

    • UV absorber masterbatches for polyolefin sheet and injection molding
    • Anti-yellowing additives for PVC and synthetic fibers
    • Heat and UV stabilizer blends for extrusion-grade plastics
    • Polymer additives for food-safe packaging applications
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    Certification & Compliance
    More Introduction

    2'Amino-4'-Methoxyacetophenone: A Backbone for Advanced Synthesis

    Harnessing Years of Manufacturing Experience

    At our facility, we dedicate years of process optimization to developing reliable batches of 2'Amino-4'-Methoxyacetophenone. Over two decades, we have adjusted every stage, from raw material selection down to reactor temperature profiles. Seeing the chemical pass a final HPLC test, confirming purity above 99%, brings a familiar sense of satisfaction amongst our team. Strict control of humidity, isolation of the workspace, and validated solvent recovery systems keep each lot consistent. Our technicians keep records on every drum, allowing traceability from incoming aniline derivatives down to the last trace of methanol flush.

    Our customers often ask us why certain batches appear lighter or darker, or why crystalline patterns sometimes shift. The answer comes back to the raw sources and the rhythms of the production line. Even with the most stringently controlled environments, minor variations in starting reagent quality can change the appearance, but not the function. We constantly monitor both visual characteristics and chemical fingerprints to assure downstream chemists that their syntheses will behave as expected. 2'Amino-4'-Methoxyacetophenone, with the chemical formula C9H11NO2, often draws immediate feedback from R&D teams for its reactivity profile—a rare blend of amino and methoxy-based selectivity.

    A Chemical with Wide-ranging Applications

    The main reason our compound remains a staple on lab benches and in production streams comes from its dual substitution. The para-methoxy group on the acetophenone ring increases the electron density, which tilts the molecule toward nucleophilic aromatic substitution. Pharmaceutical teams regularly leverage this property when building more complex active ingredients. We have seen strong demand from generic drug makers, especially those developing analgesic intermediates where regioselectivity counts heavily.

    Historically, dye manufacturers showed strong interest due to the bright, stable colors possible when the compound is integrated into azo dye architecture. Over time, our interactions with pigment formulators helped us tweak our drying and milling steps. This avoided clumping and elevated dustiness—common complaints a decade ago. Today, we run finer sieves and check bulk density, aiming for a product that suspends well in aqueous media or organic solvents alike. Since 2017, perfumery intermediates have emerged as another growth area, with research teams developing musk analogues using our output.

    Comparison with Related Compounds

    Many buyers consider whether to use 2'Amino-4'-Methoxyacetophenone or simpler acetophenone derivatives. Acetophenone itself, lacking functional groups, delivers far less versatility. Products like 4-Aminoacetophenone support some similar reactions, but the absence of the methoxy group limits both electron donation and solubility in polar media. For projects seeking orthogonal reactivity, our compound easily outperforms 2'-Aminobenzophenone due to better balance between steric bulk and electronic tuning. The extra methoxy makes nucleophilic attacks more practical, especially for formylation sequences.

    Chemists from custom synthesis companies often share feedback during technical visits. They comment that switching to our product shortens several reaction cycles, reducing waste and minimizing hazardous by-product formation. We attribute this not only to the intrinsic properties of 2'Amino-4'-Methoxyacetophenone, but also to decades of refining crystallization, washing, and drying. Single-point improvements, like upgraded chillers or better nitrogen purging, eventually deliver meaningful results at larger scale, and we see these reflected in our customers' feedback, especially in specialty medicine applications.

    Tackling Sourcing and Manufacturing Challenges

    Global supply chains can lurch or grind, especially with fluctuations in raw benzene-based chemical availability. We learned long ago that simply scaling up isn't enough. Instead, our approach features dual sourcing of critical aniline derivatives and replacement routes ready to pivot if suppliers experience outage. By building excess inventory of the most time-sensitive precursors, we shield our partners from interruptions, even as freight or customs create sudden bottlenecks. During the peak years of unpredictable shipping rates, some overseas clients wrote to us, saying consistent delivery kept their pilot plants running. This reinforces our message that strong relationships with key suppliers matter as much as process technology.

    One persistent pain point in the sector remains environmental compliance. The traditional path to synthesizing 2'Amino-4'-Methoxyacetophenone involves strong acids and excess organic solvents. Some competitors cut corners to improve throughput, but we saw this backfire in the long run. By investing in closed reaction vessels, solvent recycling, and advanced effluent treatment, our facility now meets or exceeds the latest emission standards. Early on, this meant higher costs, but later, our customers recognized this as a mark of reliability, not just compliance. Newer projects continue to push for improved atom economy and green chemistry, and we participate actively in such collaborations with academic groups.

    Quality Assurance Born from Generations on the Shop Floor

    Rather than just chasing certifications, our focus rests on reproducible performance from lot to lot. Over years, operators trade hints and spot early warning signs that don't show up in lab reports—a slight miss in melting point, a trace haze in filtrate, or a faint odor shift. These hands-on checks, combined with analytical tools like GC-MS and FTIR mapping, let us consistently turn out batches free from residual solvents and problematic by-products. Every year, we review customer complaints and discuss them at plant meetings. Avoiding high residual acidity especially guards against batch-to-batch reactivity swings in API intermediate production.

    Not just numbers, our QA practices create peace of mind. When customers run scale-up reactions, they want to see reproducible yields and predictable impurity profiles. Our technical experts often visit industrial partners to observe pilot trials. If something goes wrong, we don’t just read data sheets. We pull process parameters, discuss conditions on the ground, and walk through adjustments that could address hot spots, cold zones, or unexpected emulsions that show up during workup.

    Practical Aspects Specific to 2'Amino-4'-Methoxyacetophenone

    On the plant floor, handling and storage calls for careful temperature and moisture monitoring. The molecule takes up water vapor readily. Keeping it sealed in lined drums, not just bags, proves essential in humid climates. Operators keep silica or molecular sieve sachets in every container, especially during shipping in summer. Chemists working in scale-up environments often report that our product dissolves quicker than other analogues—this pays off in time savings during charging of reactors.

    Transporting 2'Amino-4'-Methoxyacetophenone safely means attention to packaging standards. In our plant, we avoid contamination by dedicating certain filling lines exclusively to this compound, never alternating between similar aromatic ketones. Routine environmental monitoring, with in-line dust sensors, reassures both workers and visiting auditors. Since this material often acts as a handle onto more complex building blocks, chemists appreciate knowing that their input material won’t introduce variability during late-stage functionalization or coupling steps.

    Serving the Pharmaceutical Industry

    Drug innovators rely deeply on the purity and performance of input chemicals. In synthesis of analgesics, anti-inflammatories, or targeted agents, the wrong impurity, even at low levels, can derail months of process development. Our experience partnering with API manufacturers showed that early-stage process data often masks impurity formation, only visible at kilogram scale. We now share detailed impurity reference spectra on every batch, letting customers screen for outliers before risking bigger investments. Incremental process tweaks—for example, in drying temperature—suppress side-products like hydroxy- or demethylated variants, common offenders during downstream crystallizations.

    Our chemists developed strong relationships with QA managers at contract manufacturers. Together, we investigate any anomalies, often sending teams to labs in person to audit analytical equipment, reagents, and labware. Mutual trust builds as both sides see tangible improvements. Several pharmaceutical partners continue to order 2'Amino-4'-Methoxyacetophenone year after year, not because it’s the only available compound, but because its reactivity and impurity profile remains stable from project to project.

    Enabling Advanced Material Research

    Polymer and dye researchers value the specific electronic effects of our product. In the world of high-performance coatings, the amino and methoxy substituents direct the molecule toward targeted linkages and crosslinking reactions. Research institutes have used our output for initiator development in radical polymerizations and custom conjugated resins. Long-term collaborations with university labs gave us a front-row seat into emerging material classes—especially as sustainability and biodegradability claim more attention.

    Formulators report that our product’s predictable melting range simplifies blending into masterbatches during pilot extrusion. Changes as minor as tweaks to effluent decolorization in the production process can lead to performance differences in finished products. We often conduct joint studies—measuring how subtle shifts in our process can cascade into polymer color stability, shelf life, and mechanical properties. The ability to offer quick technical support drives innovation, particularly in sectors where the boundary between specialty and commodity chemistry blurs.

    Supporting Academic and Industrial Collaboration

    By working alongside university researchers and pilot plant managers, we stay current on both classic and emerging synthesis methodologies. Acylation, amination, and cross-coupling protocols constantly evolve. Academic groups frequently trial our 2'Amino-4'-Methoxyacetophenone in discovery-stage chemistry. Rather than just shipping samples, we host technical sessions and hands-on workshops, discussing practical aspects like stock solution stability and compatibility with sensitive reagents. Our staff brings years of scale-up experience, highlighting how bench-top yields may shift during larger production runs.

    Occasionally, academic labs experience drift in reactivity due to differences in lab vs. industrial purification. We’ve helped resolve such issues by providing detailed batch records and analytics, showing how minor impurities or residual solvents might influence post-alkylation crystallizations. Researchers value having a consistent baseline, letting them focus on mechanistic insights, not troubleshooting reagent variability.

    Advancing Safety with Real-World Practice

    Safe handling of aromatic ketones calls for more than generic guidelines. Over years, we saw plant incidents triggered by simple lapses: an open container in a damp storeroom, insufficient PPE, or poor coordination during drum unloading. We implemented training modules driven by real-life scenarios, equipping both new and veteran staff with actionable know-how rather than numbers or theory alone. Real risks drive practical controls, like dedicated spill kits and exhaust hoods at every transfer point.

    Visitors to our plant often point out our high level of engagement with safety protocols. For us, this never becomes a check-the-box exercise. Operating with methoxy-substituted aromatics, we face specific fire and inhalation hazards. We conduct drills simulating both minor and serious incidents, working closely with local authorities. Lessons from these exercises feed directly into process improvement. For our customers, this underpins stronger confidence in both short- and long-term supply.

    Continuous Improvement from Factory Floor to Research Bench

    Chemical manufacturing thrives on ongoing iteration, not just the status quo. Each feedback loop—discussions with end-users, new purification technology, or hands-on troubleshooting—pushes us to search for marginal gains. Over the past decade, digital process monitoring and big-data analytics became integral to our plant. We trace batch histories to spot subtle process drift well before it impacts product quality. Once, an unnoticed chiller malfunction led to a dip in product purity. Data flagged this faster than manual rounds, and we quickly swapped in redundancy.

    Customers want each lot to perform just like the next, no surprises, no excuses. Our technical support line runs around the clock to help resolve production issues at short notice. Rapid response matters, especially for partners with strict project deadlines. We circulate technical bulletins when process upgrades occur, sharing analytical benchmarks so clients can update their internal controls. This tight feedback cycle helps boost mutual trust, lowering operational risk for all involved.

    Looking Forward—Anticipating Tomorrow’s Demands

    The future of fine chemical manufacturing revolves around continuous process upgrades and closer integration with downstream users. With stricter regulations on both process emissions and end-product purity, we stay focused on technology adoption—green reagents, solvent-free reactions, and digital monitoring all shape our roadmap. Our ongoing trials with alternative synthetic routes aim to lower waste, cut emissions, and broaden supply options for our partners. Each year, we explore catalyzed and bio-inspired reaction paths that might one day replace traditional approaches.

    As new application fields open, such as advanced diagnostics or smart materials, the demand for tightly specified intermediates like 2'Amino-4'-Methoxyacetophenone only grows. We keep investing in staff training, plant safety, and strategic partnerships. Listening to the needs of formulators, process scale-up teams, and R&D chemists remains at the core of how we operate. By channeling decades of hands-on learning into everything from sourcing to delivery, we provide more than a simple aromatic ketone. We support the ideas, the ambitions, and the breakthroughs that our customers pursue, one reliable shipment at a time.