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2-Methyl-4-Methoxybenzenamine

    • Product Name 2-Methyl-4-Methoxybenzenamine
    • Alias 2-Amino-5-methylanisole
    • Einecs 219-032-7
    • 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

    660080

    Chemical Name 2-Methyl-4-Methoxybenzenamine
    Synonyms 4-Methoxy-2-methylaniline
    Molecular Formula C8H11NO
    Molecular Weight 137.18 g/mol
    Cas Number 3154-07-0
    Appearance Light yellow to brown solid
    Melting Point 44-46 °C
    Boiling Point 259-262 °C
    Density 1.12 g/cm3
    Solubility In Water Slightly soluble
    Purity Typically ≥98%
    Smiles CC1=C(C=CC(=C1)OC)N
    Inchi InChI=1S/C8H11NO/c1-6-5-7(10-2)3-4-8(6)9/h3-5H,9H2,1-2H3
    Odor Aromatic

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

    Packing & Storage
    Packing Amber glass bottle with a secure screw cap, labeled "2-Methyl-4-Methoxybenzenamine, 25g," cautionary hazard symbols and handling instructions displayed.
    Shipping 2-Methyl-4-Methoxybenzenamine is shipped in tightly sealed containers, protected from light and moisture. Transport complies with chemical safety regulations, including proper labeling and documentation. Packages are cushioned to prevent breakage and clearly marked as "Hazardous." Shipping is conducted via certified carriers approved for handling organic chemicals to ensure safe delivery.
    Storage 2-Methyl-4-Methoxybenzenamine should be stored in a tightly closed container, in a cool, dry, well-ventilated area, away from sources of ignition, heat, and incompatible materials such as oxidizing agents. Protect from light and moisture. Store under inert atmosphere if possible, and keep away from strong acids and bases. Always label the container clearly and follow relevant safety protocols.
    Application of 2-Methyl-4-Methoxybenzenamine

    Applications of 2-Methyl-4-Methoxybenzenamine in Industrial Manufacturing

    2-Methyl-4-Methoxybenzenamine serves as a critical intermediate in the synthesis of specialized chemicals for high-value industrial sectors. As a direct manufacturer, we deliver this compound for controlled industrial uses, providing batch-to-batch consistency and quality assurance throughout all customer supply chains.

    1. Synthesis of Azo Dyes for Synthetic Textile Coloring

    Major textile dye houses use 2-Methyl-4-Methoxybenzenamine as a diazo component in the production of specific azo dye classes. This compound reacts via diazotization and coupling to yield chrome- and wash-fast colorants for polyester and cellulosic fabrics. Leading dye manufacturers specify our material for purity and strict color index match, requiring verification at each batch intake. Technical teams track compliance with heavy-metal and aromatic amine content limitations. Our material enables precision in shade reproducibility and process yields under high-throughput conditions.

    Industry compliance standards

    • REACH Annex XVII, Entry 43: Restrictions on azo colorants from aromatic amines
    • ZDHC MRSL version 3.1: No listing of restricted amines in effluent
    • OEKO-TEX Standard 100: Certified for textile input chemicals
    • ISO 3856-1: Test methods for forbidden amines in dyes

    Typical usage ratio

    • 10–25% w/w relative to total amine fraction in dye batch formulation
    • Adjusted based on targeted chromophore structure and exhausted shade intensity

    Downstream process integration

    • Direct addition to the amination reactor for diazotization step
    • Integrated in continuous or batch dye processing lines
    • Real-time in-process spectrophotometric monitoring for endpoint adjustment

    Final product types

    • Disperse and acid azo dyes for polyester apparel and home textiles
    • Textile inks used in digital fabric printing
    • Technical color reference standards for textile QC labs

    2. Pharmaceutical Intermediate in the Manufacture of APIs (Active Pharmaceutical Ingredients)

    API manufacturing for specific antihistamine and analgesic drugs applies 2-Methyl-4-Methoxybenzenamine as a key intermediate. In controlled cGMP environments, process chemists use it for synthesizing core benzenamine structures before ring closure or further functionalization. Each lot undergoes full traceability under pharmaceutical supply chain regulations. Analytical QC ensures conformity to monographs and full residual solvent profiling. Our production process supports micron-scale and semi-bulk supply for pilot and commercial active ingredient lines.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/NF: Reference standards for input organic intermediates
    • EDQM CEP: Certification of suitability for European Pharmacopoeia
    • 21 CFR Part 211: cGMP for finished pharmaceuticals

    Typical usage ratio

    • Stage-dependent; typically 0.5–1.0 molar equivalent relative to target API core
    • Adjusted according to process yield optimization and impurity context

    Downstream process integration

    • Charged into catalyst-assisted amination stages
    • Fed into crystalline salt formation reactors for purification
    • Used in multi-step reaction cascades, monitored for carry-over of regulated impurities

    Final product types

    • Over-the-counter antihistamine actives
    • Intermediate bases for non-steroidal analgesics
    • Raw materials for antipyretic bulk substances

    3. Fine Chemical Synthesis for Agrochemical Actives

    Agrochemical formulators apply 2-Methyl-4-Methoxybenzenamine as a precursor for the development of selective herbicides and crop protection agents. This compound enters targeted alkylation and sulfonation reactions which produce actives compatible with modern integrated pest management protocols. Quality is verified by industry-required trace analysis for nitrosamine or unwanted aniline residues. Our supply protocols support both liquid-phase and solid-phase continuous runs to meet seasonal demand spikes from regional formulation partners.

    Industry compliance standards

    • FAO/WHO Technical Specifications for Pesticides
    • ISO 9001:2015 for consistent batch-to-batch manufacturing
    • OECD Test Guidelines: Assessment for degradation products
    • Chinese GB/T safety and environmental compliance for raw materials

    Typical usage ratio

    • 15–35% w/w as precursor relative to desired herbicidal agent mass
    • Batch scale modified for downstream conversion efficiency and selectivity

    Downstream process integration

    • Fed at controlled dosing points in alkylation and coupling reactors
    • Monitored through in-line GC/LC for process-control and residue management
    • Integrated with continuous crystallization steps for active ingredient isolation

    Final product types

    • Post-emergence herbicide active ingredients
    • High-purity agrochemical intermediates for further synthesis
    • Crop protection custom blends for formulation companies

    4. Intermediate for High-Performance Liquid Crystal Compounds

    Manufacturers of display and electronics-grade liquid crystals use 2-Methyl-4-Methoxybenzenamine to build functionalized aromatic compounds with anisotropic electro-optical properties. This substance enables precise tuning of polarity and mesophase behavior required in cutting-edge LCD and OLED devices. Material traceability, handled under advanced batch record systems, ensures downstream purity that meets electronics industry defect rates. Our plant provides particle size and solvent residual analytics for integration with automated thin-film coating and polymer alignment processes.

    Industry compliance standards

    • IEC 61249-2-21: Restriction of halogenated and aromatic amine compounds in electronics
    • IPC-4101D: Quality parameters for base materials
    • RoHS Directive 2011/65/EU: Limitation of hazardous substances in electronic devices
    • ISO 9001:2015 with electronics application focus

    Typical usage ratio

    • 3–10% w/w in aromatic amine blends for core mesogen synthesis
    • Optimal ratios determined by thermal and dielectric profiling of liquid crystal panels

    Downstream process integration

    • Added into mesogen formation steps during liquid crystal mass production
    • Subjected to post-synthetic purification cycles
    • Fed directly to in-line blending stations prior to cell filling in display manufacture lines

    Final product types

    • Twisted nematic and in-plane switching liquid crystal mixtures
    • Compounds for OLED display alignment layers
    • Custom electronic grade monomers for specialty display applications
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing 2-Methyl-4-Methoxybenzenamine: How Our Manufacturing Experience Shapes Every Batch

    A Chemist’s Perspective on Precision and Quality

    On the shop floor, handling 2-Methyl-4-Methoxybenzenamine—known to some as p-Anisidine methylated at the ortho position—offers insight seldom captured in laboratory catalogs. Our work involves more than just scaling up reactions; it means weighing every decision that goes into selecting raw materials and optimizing reaction conditions. We craft this amine by methylating 4-methoxyaniline under carefully controlled temperature, without ever taking shortcuts. Quality comes from hands-on adjustments, real vigilance, and years of tracking which tweaks make a difference batch after batch.

    This compound’s chemical identity relies on high purity. We regularly see buyers who remember frustration with off-color or impure material from sources who cut corners. With us, single-spot TLC and sharp melting points are the rule, because our plant gear, monitoring protocols, and years of refining purification steps keep contaminants out. For customers preparing dyes, pharmaceuticals, or agrochemicals, that clarity matters. They depend on reproducible results, not just a name on a drum.

    Product Model, Specifications, and Consistent Outcomes

    We label our output with traceable lot numbers, each referencing process logs, starting materials, and reaction yields. There’s no abstract “model”—only practical specifications that include GC/HPLC purity above 99%, low water content, and well-defined particle size for solid or clear, nearly colorless oil for liquid form, depending on the season and storage. These aren’t promises plucked from datasheets; each reflects outcomes our analysts confirm by hand.

    Many in the industry request custom volumes—sometimes just a kilogram for R&D, sometimes multiple tons for multi-step synthesis campaigns. Our reactors see both, managed by staff who know the changes that creep in at scale, from foaming during extraction to subtle shifts in crystallization behavior. We keep a record of each anomaly and solution, because the details create the consistency clients demand.

    Applications Defined by Reliability and Reactivity

    Chemists come to us seeking materials that let them focus on their transformations, not troubleshooting faulty intermediates. 2-Methyl-4-Methoxybenzenamine plays an essential role in the colorant industry—specifically, as a building block for azo and triarylmethane dyes—due to the electronic effects the methoxy and methyl groups exert on the aromatic ring. Our knowledge of how small differences in purity affect subsequent diazotization or coupling reactions proves crucial; the presence of trace byproducts leads to color drift or precipitation—something our customers have struggled with before switching to our material.

    Pharmaceutical groups rely on this amine to build complex heterocycles, since the amine’s controlled basicity and ortho substitution pattern direct downstream reactivity. The emphasis on removing metal catalysts, managing byproduct amides, and controlling residual solvents becomes crucial for regulatory submissions. Often, our analytical support becomes part of their own documentation, because every chromatogram represents traceability and reproducibility.

    In crop protection, formulators value consistent melting and solubility properties, as small variations affect solid formulations during blending and storage. The meticulous drying, repeated recrystallization, and testing for residual solvents keeps the product in spec, season after season. We don’t just hand over a COA—we walk through the process data and discuss any anomalies openly, so project managers know what is in the drum, both literally and historically.

    Comparing 2-Methyl-4-Methoxybenzenamine to Other Amines

    Although the structure closely resembles 4-methoxyaniline or toluidines, subtle changes create striking differences in reactivity. From our own multi-product lines, we see customers gravitate toward this compound for its dual substitution—both increasing electron density and directing selectivity on the aromatic ring. In diazo coupling, it withstands harsher conditions than plain p-anisidine, giving better yields in some reactions.

    Chemically, neighboring methyl and methoxy groups often influence isomer formation, solubility, and side-product profiles. Our operation has seen more than one client confront surprise results when switching between meta and para isomers, or between single- and double-substituted anilines. We advise directly from factory data: which isomer dissolves best in which solvent, how each resists oxidation, and how purification strategies differ when scaling from grams to metric tons. For those scaling up, the time spent discussing these practical realities saves months of rework and frustration.

    Unlike basic aniline derivatives, the refined electron profile of this compound leads project teams to choose it when aiming for controlled electrophilic substitution. They get predictable conversion, manageable byproduct formation, and ease of workup. Our feedback covers more than just purity numbers; it encompasses packing, aging behavior, and support during regulatory submissions if the product enters a new market. This sort of engagement reflects our core experience—those subtle observations day in and day out that can’t be replaced by search engines or lists of theoretical outcomes.

    Why Every Batch Tells a Story: A Manufacturer’s View

    Production isn’t always a smooth road. The humidity in July or August demands changes in drying cycles; colder months change the way the solid forms from solution. Having our laboratory adjacent to the reactor floor lets shifts respond on the fly. When a customer calls after noticing a faint color change, we don’t need to reach for third-hand information. The data and staff are on-site, and our own internal audits catch most deviations before they can leave the gate.

    Many competitors in the global market offer “equivalent” material, shipped in nondescript packaging, often resold from unknown facilities. Over time, buyers have discovered through bitter experience that not every lot matches their benchmarks—a tinge of yellow, an odor, or inconsistent melting behavior indicates impurities invisible on a basic certificate. We invite prospective users to audit our process, tour the facility, and even review side-by-side comparison data before purchase. This transparency doesn’t spring from marketing—it comes from the reality of making, not brokering, each gram.

    Supporting Users from First Sample to Full-Scale Production

    The true test of any intermediate comes from real-world use. We have supported dye manufacturers as they shift their shade palettes annually, facing regulatory changes or new customer demands. Our custom runs for pharmaceutical research have included additional purification steps, documentation, and alterations to limit trace residuals, all entered into our process records. In crop protection, clients frequently expand modest research orders into tens-of-ton volumes. Each scale shift brings its own lessons, recorded and applied to improve the next batch.

    We believe users should not struggle with material handling or face unexplained side effects. Pack sizes come from observing how operators manage weighing and dispensing at their own plants, not just from standard lists. For customers needing to keep material dry over long shipments, we’ve improved our packaging and drying protocols, and shared real results—not theoretical shelf lives—with our partners.

    Continuous Improvement and the Real Value of Hands-On Experience

    Improvement doesn’t only happen at process scale. Our staff joins weekly sessions to debrief issues—a stuck filter, unexplained color, shipment timing—sharing workarounds and prevention steps. The folk knowledge built up over years makes its way into controlled documents and SPC logs because stories from the plant floor reveal more than any external audit. Our maintenance and process engineers meet with those who clean reactors, weigh intermediates, and dry final product to capture insights that formal procedures might miss.

    We see regular audits by users and external certifiers as a chance to validate our own continuous improvement. When a new analytical method turns up trace byproducts below regulatory concern, we add that data to our reports. If a buyer’s quality team wants to see daily logs, we arrange access, even down to the level of incoming solvent batch analyses. Expertise, in our case, comes straight from the grind—working days in the plant, following up on deviations, keeping up with evolving standards, and documenting not just the happy paths but also every correction made when things don’t go as planned.

    Feedback loops matter most—when a chemist calls because a new formulation solubilizes differently or fails a downstream test, our technical staff and manufacturing crews treat the case with urgency. Adjusting drying parameters, maintenance on filter presses, or double-checking lot segregation often resolves issues quickly. That sense of accountability never leaves us, because the consequences show up instantly on our customer’s lines.

    Working with Us: Real Support, Not Sales Pitch

    Unlike distributors, our team doesn’t disappear after shipment. Support means direct conversations between factory, lab, and buyer, whether whether discussing crystallization kinetics, analyzing side products, or addressing packaging needs. Our team remains involved: adjusting QA sampling plans, sending out up-to-date MSDS or REACH-relevant documentation, and offering process optimization advice based on actual production records. We keep archives of process runs across seasons and batches, ready to dig deep whenever a client encounters something unexpected.

    Every lot ships from our facility with full access to underlying documentation, chromatograms, and process data. In the crowded world of specialty chemicals, product labels matter less than consistent real-world results. That’s why customers looking for long-term suppliers—those who share knowledge and adjust to business realities—choose to work with us year after year. The substance in those relationships grows from reliability, technical honesty, and experience earned day and night at the plant.

    The Difference Real Manufacturing Makes

    Producing 2-Methyl-4-Methoxybenzenamine gives us unique insight into the details that matter to users—stability during shipping, clarity in color, purity maintained during long storage, and support tailored to actual operating requirements. Where intermediates come from and how they’re made turns out to be crucial for ensuring product success down the line. We see our customers’ plants as extensions of our own responsibility and understand that scientific rigor and practical manufacturability walk hand in hand.

    No one here underestimates the pressure downstream users feel. Formulators and process chemists face stiffer challenges every year, whether from new regulations, changing demand, or more stringent internal audits. Our role, as real manufacturers with skin in the game, is to keep these headaches from starting in the first place—with careful production controls, direct technical feedback, and readiness to step in and solve problems, even if the material left our gates months earlier.

    Looking Ahead: Sustainable Practice and Future Development

    We monitor incoming supply chains for both quality and compliance, choosing sources that support both consistent output and documented traceability. Our facility benchmarks solvent consumption, waste minimization, and energy usage, translating big ideas into real, small changes: tighter condenser maintenance, improved solvent recovery and treatment, and lift truck electrification. These aren’t buzzwords for us; they’re depositioned in every process record and cost analysis.

    The sense of pride our staff takes in keeping the plant running smoothly, providing QC reports that match real analytical standards, and responding to customer feedback isn’t something that comes from a specification sheet alone. It’s built on repeated, daily action—identifying improvements, correcting mistakes, and engaging directly with those relying on our product for their own success. Feedback on even minor shipment issues, packaging tweaks, or subtle analytical changes doesn’t vanish into the ether. Our improvement cycles capture this information and translate it to the next lot shipped.

    Closing Observation from the Factory Floor

    After decades spent building not just product, but relationships and systems that work, the value of 2-Methyl-4-Methoxybenzenamine becomes clear: consistent, in-spec material, produced with care, and supported by people able to trace every outcome back to real changes in process or handling. Decisions at our facility happen because we see the end use, talk to the scientists behind every order, and live with the consequences of both success and failure. We welcome every question, suggestion, and audit as a chance to prove the value of experience over salesmanship, and look forward to building new chapters in the specialty chemical supply chain, one carefully made batch at a time.