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4-Amino-N-Methylbenzamide

    • Product Name 4-Amino-N-Methylbenzamide
    • Alias 4-amino-N-methylbenzamide
    • Einecs 214-728-8
    • 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
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    Specifications

    HS Code

    681795

    Productname 4-Amino-N-Methylbenzamide
    Casnumber 41039-99-4
    Molecularformula C8H10N2O
    Molecularweight 150.18 g/mol
    Appearance Off-white to yellowish crystalline solid
    Meltingpoint 152-155°C
    Solubility Soluble in organic solvents such as DMSO and methanol
    Purity Typically ≥98%
    Synonyms 4-Amino-N-methylbenzamide; p-Amino-N-methylbenzamide
    Smiles CN(C1=CC=C(C=C1)N)C=O
    Inchikey XZBKXRYQDNDEPC-UHFFFAOYSA-N
    Storagetemperature Store at 2-8°C
    Mdlnumber MFCD09052618

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

    Packing & Storage
    Packing White, sealed HDPE bottle containing 25 grams of 4-Amino-N-Methylbenzamide; labeled with chemical name, CAS number, safety, and handling instructions.
    Shipping 4-Amino-N-Methylbenzamide is typically shipped in sealed, chemical-resistant containers to ensure stability and prevent contamination. It should be transported according to local and international chemical safety regulations, with proper labeling. The package must be protected from moisture, heat, and direct sunlight, and handled by trained personnel using appropriate protective equipment.
    Storage 4-Amino-N-Methylbenzamide should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizing agents. Avoid exposure to moisture, heat, and direct sunlight. Ensure proper labeling and secure access to minimize accidental exposure. Store at room temperature, typically between 15–25°C (59–77°F), and follow all local safety regulations and guidelines.
    Application of 4-Amino-N-Methylbenzamide

    Applications of 4-Amino-N-Methylbenzamide in Industrial Manufacturing

    As a direct manufacturer, we serve high-purity 4-Amino-N-Methylbenzamide for specialized downstream industrial sectors. Our material supports advanced formulation and synthesis, driven by regulatory compliance, controlled process integration, and traceable logistics. Below we outline its proven uses in select manufacturing fields, with detailed integration for each downstream segment.

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

    Producers in the pharmaceutical sector utilize this compound as an intermediate in the synthesis of certain sulfonamide-based APIs. The amide and amino functional groups participate in condensation and acylation reactions during active molecule assembly. This step often follows primary amide protection and precedes N-methylation or further aromatic substitution, tightly controlled under GMP conditions to ensure impurity profiling and traceability. The integration occurs mainly in the multistep batch synthesis of antimicrobial, anti-inflammatory, or CNS-related compounds.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • United States Pharmacopeia (USP) for starting materials
    • EU EudraLex Volume 4 Part II GMP guidelines
    • FDA 21 CFR Part 211 (Subpart D - Equipment, Subpart F - Production and Process Controls)

    Typical usage ratio

    • Used at 0.5–2.0 molar equivalents relative to core API scaffold, based on route; ratio varies with downstream substitution pattern and yield requirements.

    Downstream process integration

    • Introduced during early-to-mid organic synthesis; follows initial scaffold construction, acts in amidation or nucleophilic substitution as a reactive intermediate.

    Final product types

    • Sulfonamide antibiotics (e.g., sulfamethoxazole analogs)
    • Pharmacologically active benzamide derivatives
    • Anti-inflammatory drug precursors
    • Central nervous system (CNS) modulator intermediates

    2. Key Building Block for Dye and Pigment Synthesis

    This material is incorporated in fine chemical operations as a building block for azo and anthraquinone dye molecules. Manufactured batches require precise quality monitoring to control amine content and avoid color variation. Dye makers use it in diazotization and coupling steps to introduce substitution patterns linked to hue intensity and fastness. The material enters the process during the soluble dye intermediate phase before final salt formation and spray drying.

    Industry compliance standards

    • OEKO-TEX® Standard 100 Restricted Substances List (RSL)
    • EN 71-3 Safety of Toys (Migration of certain elements)
    • REACH Regulation (EC) No 1907/2006 for notified substances
    • ISO 9001:2015 Quality Management Systems for chemical production

    Typical usage ratio

    • Dosage levels at 5–15% w/w of total aromatic base mixture; adjusted based on target pigment structure, shade, and viscosity control during synthesis.

    Downstream process integration

    • Added in the coupling or condensation stage during batch production of intermediates; reaction sequence determines selectivity for azo or other dye classes.

    Final product types

    • Azo dyes for textiles and leather
    • Anthraquinone pigments for plastics
    • Inkjet printing dyes
    • Coloring agents for industrial coatings

    3. Intermediate in Agrochemical Synthesis (Herbicides and Fungicides)

    Leading agrochemical formulators rely on this raw material for constructing functionalized aromatic rings in modern herbicide and fungicide molecules. The compound enters amidation and methylation steps that precede ring closure reactions necessary for biological activity. Upstream quality assurance ensures absence of nitrosamine impurities and batch-to-batch analytical consistency, as required by agricultural product regulations. Integration occurs upstream of formulation and final granulation processes.

    Industry compliance standards

    • FAO Specifications for Plant Protection Products
    • EPA 40 CFR Part 158 (Data Requirements for Pesticides)
    • ISO 17025 Accredited Analytical Verification for process control
    • REACH Annex II Safety Data Sheet requirements

    Typical usage ratio

    • Incorporated at 3–10% by mass of total precursor mix; altered depending on specific herbicidal or fungicidal structure and final assay specification.

    Downstream process integration

    • Charged during early ring-functionalization in synthesis trains; processed further for derivatization or heterocycle assembly prior to technical product formulation.

    Final product types

    • Precursor to substituted benzamide-based herbicides
    • Intermediate for triazole fungicide synthesis
    • Aromatic base for phenoxyacid weed control agents
    • Raw material for new-generation crop protection solutions

    4. Monomer Component in Specialty Polymer and Resin Formulations

    Specialty chemical manufacturers employ this compound as a functional monomer or crosslinker in advanced resin and polymer matrices. It supports structural properties by enabling amidation or introducing aromatic rigidity into polyamide or polyurethane backbones. Batch-to-batch purity is critical to control molecular weight distribution and enhance downstream polymerization efficiency. The compound’s integration helps adjust surface reactivity, mechanical behavior, and chemical resistance in end-use resins.

    Industry compliance standards

    • ISO 14001 Environmental Management for chemical processes
    • EN 71-9 Organic Chemical Compounds in Toy Safety
    • UL 94 Standard for Safety of Flammability of Plastics
    • ROHS Directive 2011/65/EU for restricted substances

    Typical usage ratio

    • Integrated at 1–8% by monomer weight in copolymer or blend; dosage varies depending on network crosslinking density or desired thermomechanical characteristics.

    Downstream process integration

    • Fed during pre-polymer solution blending or reactive extrusion; participates in chain extension, end-capping, or branching reactions in resin production lines.

    Final product types

    • High-performance engineering plastics
    • Reactive resin matrices for electronics encapsulation
    • Adhesive and sealant polymers with tailored amide content
    • Specialty coatings for industrial and automotive use

    5. Analytical Reagent Precursor in Laboratory Chemical Synthesis

    Chemical laboratories and analytical service providers utilize this compound to prepare diazonium salts, derivatives, or marker molecules for chromatography, titration, or trace analysis. High material purity minimizes baseline drift and background interference in sensitive analytical workflows. The compound enters synthesis as a starting material in one-pot or multi-step reactions ahead of product purification and identity verification by LC/MS or NMR.

    Industry compliance standards

    • ISO/IEC 17025 General Requirements for the Competence of Testing and Calibration Laboratories
    • ASTM D6299 Quality System for Analytical Laboratories
    • GMP for analytical reagent production (where applicable)
    • GLP (Good Laboratory Practice) guidelines

    Typical usage ratio

    • Applied at stoichiometric levels (1:1 ratio) or as limiting reactant; quantity determined by experimental protocol, sensitivity, or tracer labeling strategy.

    Downstream process integration

    • Added during analytical method synthesis, such as diazotization, amidation, or labeling; closely monitored under controlled atmosphere to prevent by-product formation.

    Final product types

    • Analytical reference standards
    • Chromatographic tracer compounds
    • Labeling reagents for protein/nucleic acid analysis
    • Specialty reagents for titration or endpoint determination
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    Certification & Compliance
    More Introduction

    4-Amino-N-Methylbenzamide: A Practical Choice in Modern Synthesis

    Our experience with 4-Amino-N-Methylbenzamide goes back to its early days in pilot-scale production. It quickly became one of those reliable building blocks that keeps chemists coming back, especially across industries tied to pharmaceuticals and advanced materials. Anyone working hands-on in real-world synthesis knows the challenge of balancing price, purity, consistent supply, and ease of handling. This compound has proven itself in each of those categories, and we've learned why small details matter at every production step.

    What Sets 4-Amino-N-Methylbenzamide Apart

    Compared with similar aromatic amides, 4-Amino-N-Methylbenzamide stands out for its clean profile and solid reactivity. Its molecular structure, featuring both an amino group and an N-methylamide function, brings a versatility that most standard benzamides or substituted anilines don’t match. In practical applications, this translates to fewer unwanted byproducts and a more predictable reaction path. We've seen how this makes it especially valuable in multistep synthesis where side reactions drive up costs and downstream purification workloads.

    Over the years, customers have raised concerns about batch-to-batch variability in many substituted benzamides on the global market. They report inconsistent melting points, off-odors, or unexpected impurities, all of which lead to costly failures at scale-up. Our investment in rigid process controls and careful solvent selection has played a major role in eliminating these headaches. When our chemists developed the current synthetic route, they prioritized not just total yield, but a repeatable ratio of product to trace side products. The results are clear every time incoming QC or a client’s HPLC data comes back: purity isn’t just about the percentage listed on a spec sheet—it’s about repeatable chemistry.

    Handling and Specifications

    Chemists who work in formulation, process scale-up, or pilot plant settings notice that 4-Amino-N-Methylbenzamide is one of those compounds that doesn’t demand special handling gear or elaborate safety training. The physical consistency stays constant from drum to drum. It packs readily into storage, resists caking or clumping, and pours smoothly for weighing. Even after exposure to moderate humidity in a plant lab, it holds its form. Storage doesn’t become a logistical nightmare—no need for inert gas or refrigerated rooms. These small details mark the difference between a lab-friendly chemical and a real bulk production staple.

    Our standard offering of 4-Amino-N-Methylbenzamide uses a model that reflects priorities set by process chemists in regulated environments. We stick with a particle size that balances high solubility and fast dissolution, keeping prep and filtration times low. The melting point stays tight, without drift from residual solvents or micro-impurities. Over the years, several clients in pharmaceutical synthesis highlighted the value of this tight specification: in robust impurity control, downstream purification becomes easier, documentation smoother, and regulatory compliance much less cumbersome.

    Why the Right Amide Matters

    There's no shortage of amide compounds, but experienced formulators know that structural differences ripple through a project. Swapping N-methyl for N-ethyl or using meta-amino instead of para-amino causes significant shifts in solubility, reactivity, and toxicity screens. In some pharmaceutical lead optimization, a single change can shift a process from water-washable to intractably sticky, or introduce metabolic issues downstream. Our historical supply records show a direct relationship between consistent structural fidelity and customer retention. Chemists don’t just want a chemical—they want specific performance tied to a well-characterized molecule.

    4-Amino-N-Methylbenzamide positions itself between two common product families. Unsubstituted benzamides often suffer from low reactivity or unpredictable crystallization when used as intermediates. Other N-alkyl-substituted variants bring bulkier side groups that increase cost and complicate waste treatment or emissions. This compound bridges the gap, offering high functional group accessibility without drifting into regulatory limbo or price spikes from less-common substituents. From a manufacturer’s perspective, this product rides right at the sweet spot for both bench chemists and process managers who want to avoid downstream headaches or budget overruns.

    Use in Pharmaceutical & Fine Chemical Applications

    Most of the 4-Amino-N-Methylbenzamide we produce ends up as a key intermediate in active pharmaceutical ingredient synthesis and in several dye manufacturing processes. Over the last few decades, demand has only grown as drug pipelines branch into more structurally diverse compounds. Synthetic routes involving direct amide coupling, diazotization, or selective acylation perform better when the starting material doesn’t bring along an excess of residual mineral acid, unconverted amine, or extra water. We’ve spent years narrowing the impurity profile so downstream reactions hit higher yields and cleaner isolation, a detail highly valued by pharmaceutical process engineers.

    On the regulatory side, we’ve worked with both European and North American manufacturers whose requirements go far beyond a vendor’s basic certificate of analysis. They send out-of-spec batches straight back, and rightly so. We keep the documentation clean for each lot, providing analytical reports that meet the strictest pharma standards, with full traceability on raw materials. This isn’t marketing—our batch records get pulled during customer audits and regulatory inspections, and we’ve learned that nothing beats raw, verifiable data.

    Batch Consistency and Scale-Up Concerns

    The scale-up from lab to production scale exposes every weakness in a synthetic route. In the early days, uncontrolled exotherms or subtle pH drift introduced color, odor, or even stability issues in some specialty chemicals, including earlier generations of substituted benzamides. Through dozens of optimization cycles, we’ve tuned the process for energy balance, waste minimization, and purity, leading to a stable, scalable route. In daily operation, this means our kilo-scale batches behave like gram-scale lab samples. Customers can write protocols based on our product specs and see the same results, whether they scale from one flask to an entire plant reactor set.

    Adherence to rigorous in-process controls reduces the chance of batch contamination or out-of-spec results. Any deviation in raw material sources, solvent grades, or reaction conditions gets caught early, so no subpar material leaves the site. In today’s climate, with tighter safety and environmental oversight, traceability and proactive compliance mean less disruption for everyone in the chain.

    Environmental and Regulatory Aspects

    Every chemical manufacturer faces growing pressure to cut down on emissions, hazardous waste, and unmanageable risk. 4-Amino-N-Methylbenzamide’s physical and chemical properties lower the environmental burden across both use and disposal. Waste streams stay manageable, no persistent or bioaccumulative breakdown products appear in standard fate testing, and customers can ship, use, and dispose of material with confidence. We maintain up-to-date regulatory support for all major jurisdictions, and our environmental controls exceed the strictest sector standards. Over our years producing this molecule, the absence of reportable incidents tied directly to the product supports both our confidence and our clients’ comfort.

    Packing, Storage, and Shelf Life Observations

    Our experience in long-distance and bulk shipments shaped every detail about packing choices. 4-Amino-N-Methylbenzamide holds up during global transit—no loss of quality, clumping, or label-fading. We use high-integrity woven liners, tamper-evident seals, and durable drums or cartons that take real-world abuse. This prevents contamination from transport mishaps and cuts down on product loss. Even after months in ambient storage, material quality checks out, with consistent flow and appearance.

    Chemists running inventory know the frustration of a product that “matures” on the shelf—turning tan, growing lumps, or acquiring a chemical smell that ruins titrations. Over a decade of retained sample analysis, this compound holds a reliable shelf life with no drift in analytical testing. Many customers order surface lots months in advance, confident the product will perform exactly as intended. For operations balancing lean inventory with high just-in-time demands, this reliability becomes a major advantage.

    Why Consistency Beats Cutting Corners

    The price of commodity chemicals swings all year, tempting some buyers to seek out cheaper alternatives from less-established producers. Fast turnaround and rock-bottom quotes draw attention, but the true cost comes out during actual use—unexpected crystal morphologies, new side reactions, or contamination with process chemicals used as shortcuts upstream. We have witnessed dozens of projects derailed because a “B grade” substituted benzamide passed spec on paperwork but failed in actual synthesis. A single hiccup in a key step upends whole supply chains, delays regulatory filing, and triggers costly plant shutdowns.

    In over 15 years shipping to markets with strict import controls, we learned that consistency always outpaces bargain-bin pricing. End users need predictable outcomes, both in product and process performance. Our role as a direct producer goes beyond filling orders—we shoulder the responsibility for every kilo that leaves our plant. If a batch falls short, it reflects squarely on us. Repeat customers who build products on our amide rely on that trust, not just a spec line on a certificate.

    Supporting Innovation and Custom Needs

    We work alongside research chemists exploring new heterocycles, solid-phase linkers, and fragment libraries incorporating 4-Amino-N-Methylbenzamide as a starting point. Custom projects sometimes ask for variation: tighter melting range, bespoke solvent exclusion, or surface treatment for more niche formulations. Our direct involvement in every phase—sourcing, reacting, work-up, packing—lets us address requests with both flexibility and technical insight.

    Startups and established firms alike ask for rush lots or sample support for proof-of-concept feeds, with the expectation that future orders will match the pilot batch exactly. Unlike brokers or resellers, we don’t rely on a shifting inventory or opportunistic offers. Every run follows a validated, repeatable protocol, giving us direct control over small- and large-scale lots alike. This approach builds the foundation for lasting partnerships, accelerates project timelines, and brings down total development costs when time and reliability become critical.

    Lessons Learned from Decades in Production

    Manufacturing any chemistry at scale puts a spotlight on the smallest imperfections. In the plant, we’ve seen how even a slight slip in temperature control or solvent dryness affects overall outcome, sometimes more than theoretical yield calculations suggest. Operators remember which batches presented sticky residues, odd-colored crystals, or off-odors, and their field notes feed right back into process improvements and customer recommendations.

    Guided by these lessons, we built in redundancy, regular cross-checks, and operator training that makes every batch a learning opportunity. This continuous improvement loop translates to fewer surprises for our customers and fewer frantic phone calls from QC labs. We keep direct lines open with our partners, responding to real-world questions, and adjust process or shipment plans where needed. Experience on the floor matters as much as data on paper.

    Comparing 4-Amino-N-Methylbenzamide to the Broader Market

    From a chemist’s perspective, the jump from generic benzamide derivatives to 4-Amino-N-Methylbenzamide feels subtle at first—but the difference turns up during scale-up. Other amides drift in and out of stock, shift bulk density, or bring byproducts that change isolation yields with every purchase. Our product draws repeat business specifically because it lowers the number of unexpected variables, both in chemical makeup and in physical handling. Market feedback highlights the peace of mind that accompanies a molecule made in a facility dedicated to quality control rather than lowest supplier price.

    Regulatory agencies, too, take notice. Supplier qualification checks gravitate toward robust analytical packages, clear traceability to raw materials, and transparent corrective action history. Our track record stands up to tough inspection and customer audit, and we make all relevant documentation visible to new and returning partners. No workaround or fancy marketing language replaces real chemical knowledge or hands-on experience.

    Supplying the Future of Synthesis

    Global demand for reliable intermediates like 4-Amino-N-Methylbenzamide isn't letting up. New therapeutic agents, smart materials, and specialty dyes need starting points that don’t suddenly change after years on the market. Our role as producer means committing to sustained quality, transparent practices, and a willingness to solve real-world problems as they come. Each lot is the product of rigorous oversight, lessons drawn from previous failures and successes, and direct feedback from chemists using the material in critical applications.

    We know the realities facing buyers and researchers: tight timelines, unforgiving budgets, surprising technical obstacles, and rising regulatory scrutiny. Through all this, compound reliability becomes a foundation for trust. Our direct production, tight process control, and responsiveness to evolving requirements allow us to support both established leaders and new innovators. 4-Amino-N-Methylbenzamide isn’t just another chemical—it’s a tool built for real problem-solving, tested in the field by those who depend on every detail working as promised.