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4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate

    • Product Name 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate
    • Alias pirimicarb
    • Einecs 249-359-1
    • 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

    502806

    ChemicalName 4-N,N-Dimethylamino-3-methylphenyl N-methylcarbamate
    CASNumber 119-59-5
    MolecularFormula C11H16N2O2
    MolecularWeight 208.26 g/mol
    Appearance White to off-white crystalline solid
    MeltingPoint 85-87°C
    BoilingPoint Decomposes before boiling
    SolubilityInWater Slightly soluble
    Density 1.11 g/cm3 (approximate)
    HazardClass Toxic
    Usage Used primarily as an insecticide (acaricide)
    LogP 2.27 (estimated)
    Stability Stable under recommended storage conditions

    As an accredited 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging is a 100g amber glass bottle with a secure screw cap, labeled with chemical name, CAS number, and handling precautions.
    Shipping 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate should be shipped in tightly sealed containers, away from light and moisture, and stored at room temperature. Transport must comply with local, national, and international regulations for hazardous chemicals. Appropriate hazard labeling and safety documentation, including Material Safety Data Sheet (MSDS), must accompany the shipment.
    Storage Store **4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate** in a tightly sealed container, away from incompatible materials such as strong oxidizers and acids. Keep in a cool, dry, well-ventilated area, protected from moisture and direct sunlight. Ensure proper labeling and restrict access to trained personnel. Avoid sources of ignition and handle in accordance with standard laboratory safety protocols.
    Application of 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate

    Applications of 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate in Industrial Manufacturing

    Our factory supplies 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate to trusted partners in high-value industrial fields demanding stringent quality and process control. We focus exclusively on established applications, meeting both global regulatory requirements and the evolving needs of advanced manufacturing plants.

    1. Selective Insecticide Active Ingredient in Agrochemical Formulations

    This carbamate derivative functions as a crucial selective insecticidal agent, especially against resistant sap-feeding pests such as aphids and whiteflies in horticultural crop protection. Its narrow-spectrum activity and compatibility with integrated pest management have made it integral to commercial foliar sprays produced by leading agrochemical formulators.

    Industry compliance standards

    • FAO/WHO JMPR guidelines for pesticide registration
    • Residue limits: US EPA 40 CFR Part 180, EU Regulation (EC) No 396/2005
    • China GB 2763-2021 for maximum residue limits (MRLs)
    • OECD principles of Good Laboratory Practice (GLP) in toxicological data support

    Typical usage ratio

    • 2–10% as the single active component in concentrated emulsifiable or water-dispersible granule formulations, adjusted based on target pest spectrum, crop species, and field trials

    Downstream process integration

    • Our product enters the batch blending phase for pesticide actives, typically dissolved directly into organic solvent or granule carriers alongside surfactants and adjuvants, prior to high-shear homogenization and quality filtration

    Final product types

    • Commercial insecticide concentrates (EC, SC, WG)
    • Premixed foliar spray solutions for large-scale application in fruits and vegetables
    • Chamber fumigation packs focusing on greenhouse and high-value ornamental crops

    2. Synthesis Intermediate for Active Pharmaceutical Ingredient (API) Production

    Pharmaceutical manufacturers use this compound as an advanced building block in semi-synthetic API synthesis pathways, especially where a stable N-methylcarbamate moiety is essential to the molecule’s biological activity. It supports batch API facilities operating in compliance with regional and global standards.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • United States Pharmacopeia (USP) and European Pharmacopoeia (Ph. Eur.) reference quality monographs
    • Chinese Pharmacopoeia (ChP) substance guidelines
    • EU EudraLex Volume 4 Part II for API manufacturing

    Typical usage ratio

    • 0.5–5% by molar ratio as a step-specific intermediate; precise loading tailored to stoichiometric requirements in the carbamoylation or aromatic amination sequence

    Downstream process integration

    • Introduced during the core functionalization stage, this molecule reacts in a protected synthesis environment, typically before deprotection, salt formation, purification, and crystallization of the final API batch

    Final product types

    • Pharmaceutical intermediates for CNS-active drugs
    • Bulk APIs supplied to contract manufacturing organizations (CMOs) for formulation
    • Clinical research compounds

    3. Precursor in Specialty Dye and Pigment Manufacturing

    The chemical structure’s electron-donating substituents are highly valued in the synthesis of amino carbamate-functionalized dyes for advanced textile, leather, and imaging applications. Downstream dyestuff companies rely on this material as a primary precursor, enabling molecular tailoring for shade selection, light fastness, and wash resistance.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for restricted substances in textile dyes
    • European Union REACH Annex XVII (restrictions on hazardous substances)
    • ISO 105 series for color fastness evaluation
    • ZDHC MRSL (Manufacturing Restricted Substances List)

    Typical usage ratio

    • 1–8% as the functional carbamate precursor component during diazotization or azo coupling stages, adjusted for target chromophore complexity and batch scale

    Downstream process integration

    • Fed in post-nitration or amination, the ingredient undergoes either sulfonation or metal-complex chelation; process engineers monitor nitrogen substitution for batch consistency before final filtration, spray drying, and packaging

    Final product types

    • Amino carbamate azo dyes for polyester and cellulose fibers
    • Specialty pigments for synthetic leather finishing
    • Heat and light stable toner colorants used in digital print media

    4. Intermediate for Photoresist and Electronic Chemical Manufacturing

    Leading microelectronics and photoresist suppliers integrate this compound within advanced lithography and printed circuit board chemical processes due to its high thermal stability and electron-donating profile, essential for fine-resolution patterning in next-generation mask and substrate chemistry.

    Industry compliance standards

    • SEMI S2 (Semiconductor Materials Safety)
    • RoHS Directive 2011/65/EU on hazardous substances
    • IPC-6012D (Qualification and Performance for Rigid PCBs)
    • ISO 9221 for photochemical process control

    Typical usage ratio

    • 0.2–2% per dry weight in proprietary photoresist or developer formulations; dosage tailored based on resist thickness, exposure method, and bake profile

    Downstream process integration

    • Integrated at the monomer or oligomer synthesis stage for resist/matrix formation, followed by blending with photoactive compounds and solvent carriers; incorporated ahead of spin coating, soft bake, and optical exposure on wafer lines

    Final product types

    • Positive and negative-tone photoresist coatings
    • Electronic-grade developer solutions
    • Thin-film patterning chemicals for high-density PCBs

    5. Additive in High-Performance Polymer Compound Synthesis

    Producers of engineered polymers and coatings incorporate this specialty carbamate to introduce controlled flexibility and amine reactivity in final composite materials. Its contribution to backbone modification grants improved impact resistance, controlled release, or thermal stability in resin systems for industrial and automotive applications.

    Industry compliance standards

    • ISO 9001:2015 for quality management in polymer production
    • ISO 1043-1 polymer identification and classification
    • EU Regulation (EC) No 1907/2006 (REACH) for polymer use
    • UL 94 flammability standards for finished plastics

    Typical usage ratio

    • 0.1–3% loading in the monomer blend for polyurethanes or polyvinyl carbamate copolymerization; formulation adjusted based on desired mechanical and thermal property targets

    Downstream process integration

    • Material is dissolved or melt-blended at the prepolymer synthesis phase, enabling covalent link formation with other monomers or chain extenders before casting, extrusion, or injection molding

    Final product types

    • Impact-modified thermoplastic resins for automotive trim
    • Specialty binder systems for industrial coatings
    • Polymeric matrix components in reinforced composite panels
    Free Quote

    Competitive 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate: A Direct Perspective from Our Production Floor

    A Practical Approach to 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate in the Manufacturing Process

    Producing 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate requires an understanding of both chemistry and real-world demands. Over the years, our in-house research and hands-on work with this compound have shaped not only our process, but also our views on what makes a product truly stand out in this category. Our experience tells us that beyond academic formulations, the practical elements define successful outcomes—purity, particle consistency, handling safety, and customer application feedback teach us what works and what causes problems. We have walked the production floor, tested samples, and listened to the steady hum of reactors and filtration units. Each batch represents hours of careful planning and on-the-spot troubleshooting, not just a page in a textbook.

    Our Process and What Sets This Compound Apart

    In the lab and in large reactors, precise step control matters. Temperatures, pH balance, stirring rates, and timing directly affect the final product. 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate demands vigilance through each of its transformation steps. From raw input to finished solid, the margin for error is slim. We have observed that impurities, even at seemingly negligible levels, can alter performance—sometimes showing up as particulates, strange odors, or issues during downstream blending with other ingredients.

    Unlike standard carbamates or generic derivatives, this molecule’s design builds on the balance of hydrophobicity, reactivity, and molecular symmetry. Its unique dimethylamino group confers not just distinctive chemical resistance, but also influences its solubility and behavior in end formulations. The 3-methyl phenyl ring helps it fit well where a stable base structure is needed, while the N-methylcarbamate part keeps its reactivity predictable. Having handled both closely related and seemingly ‘identical’ chemicals, we’ve learned even tiny shifts in structure can change how a material behaves in the tank, in the mixer, or at the application site.

    Specification Insights: Purity, Particle Size, and Handling

    Running quality control for years has underlined the non-negotiables. Purity checks (using gas chromatography and HPLC) never stay theoretical for us—they translate into clearer solutions, less caking during storage, and smoother dispersion in the final application. A product that meets assay values on paper but clumps in the bag or leaves residues does not serve our customers or our reputation. We keep particle distribution tight. Less dusting means fewer chances for operator exposure, less loss of material during weighing, and reduced risks during downstream blending.

    Moisture control stands out as critical. Even low levels can degrade longer-term stability or increase the risk of unwanted reactions in storage and use. Monitoring humidity in storage rooms and fine-tuning the drying steps pays dividends downstream, especially in regions where climate shifts can magnify otherwise minor problems.

    Working with the Product: Direct Experience Shapes Perspective

    Nobody understands material quirks like those who weigh, pour, and stir it day in and day out. Through pilot runs, we have seen how 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate integrates with active ingredients or supporting carriers. It disperses rapidly in alcohols and organic solvents, resists hydrolysis better than less robust carbamate cousins, and stays consistent throughout long mixing times. This has value in applications needing a stable backbone molecule, where minor side reactions create headaches. Direct dialogue with users—whether in coatings, specialty polymers, or agrochemical intermediates—keeps our process nimble. We course-correct based on real questions: "Why did yesterday’s shipment behave differently than last month’s?" or "How does it compare to the sulfate analogue in harsh environments?"

    Applications in the Real World: Experience Outweighs Theory

    Research papers and vendor brochures often overlook the challenges of real usage. In coatings, our customers want low-tint materials that do not interfere with highly pigmented systems. Labs might highlight purity numbers, but our users focus on how well the carbamate supports long-term tint stability, shelf-life resilience, and compatibility with a wide spectrum of additives. Handling and storage headaches push demand for non-caking, dry-flowing solids. Customers appreciate our attention to particle-size management, especially when integrating into automated dosing systems. We have corrected shipment protocols based on feedback related to ‘bridge formation’ or bag compaction. This is the result of having teams in the yard and warehouse, facing the same packing, stacking, and stacking challenges as our customers.

    In specialty chemistry synthesis, the unique profile of 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate gives it an edge where secondary and tertiary amine functionalities matter. This allows for greater design flexibility, which connects back to our job—ensuring downstream syntheses happen without problematic byproducts or separation issues.

    Comparing with Other Carbamates: Lessons from Manufacturing Runs

    Carbamates as a class appear similar to the untrained eye. Each one, over months and years of production, reveals its quirks. The extra methyl and dimethylamino substitution in 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate translate to subtle but significant differences in reaction kinetics, storage behavior, and compatibility with catalysts or inhibitors. Less substituted carbamates often bring more hydrolysis or require tighter control on storage humidity, while bulkier analogues may resist dissolution or clog feed equipment. Our wrists, burned by clumpy batches or slow-dissolving powders in the past, know the difference on a tactile level, not just from lab notebooks.

    Downstream users usually notice that our material resists both discoloration and unwanted exotherms under standard blending conditions. Those in industrial resin production often report fewer off-spec batches. Buyers who have used generic imports, or those with inconsistent lot performance, regularly highlight the stability and transparency of our output. We attribute this not so much to a secret ingredient as to consistency, worker training, and a feedback loop between the plant floor and the lab bench.

    Meeting National and International Needs

    Supplying carboxylated organics brings unique regulatory and shipping challenges. Some markets tighten purity and traceability requirements each year. Our manufacturing approach accounts for this, and even small batch runs for pilot customers meet the same threshold as full production. This has encouraged clients from varied regions to return year after year, recognizing that local tweaks—such as minor solvent residue limitations or specific particle top-cuts—can be achieved with coordination, not last-minute heroics.

    In several regions where humidity swings wildly, we adapted packaging. Multi-layer liners, valve-bag tech, and batch coding allow greater confidence on the receiving dock. Not every customer wants identical packaging, which has led us to invest in both standard drums and smaller, easy-open bags for those without bulk handling equipment.

    Environmental Considerations: From Waste Minimization to Worker Health

    Manufacturing any specialty chemical requires attention to more than the product itself. Our employees and neighbors expect us to minimize waste, control emissions, and reduce on-site hazards. 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate demands specific attention due to the amine and carbamate moieties present, which can present exposure risks if mismanaged. We install real-time air monitors during charging and emptying, enforce strict PPE protocols, and maintain rapid-response procedures for spills or leaks. The benefits reach beyond compliance, resulting in safer shifts and a culture where experienced staff stay engaged for the long term. Teams tasked with cleaning or maintaining equipment appreciate knowing exactly what residues they face, due to low-impurity runs and detailed production logs we keep for each lot.

    Waste minimization goes hand in hand with production yield. By focusing on conversion efficiency and better condensation steps, we reduce byproduct load in wastewater and solvent recovery operations. Customers who ask for environmental profiles receive honest data, not just certificates. Having our own in-house analytical resources means we can back up statements about trace impurities or non-target residues with hard numbers and spectrometer printouts.

    Technical Service and Long-Term Support: Learning from Field Experience

    We believe long-term relations flow from direct problem-solving, not brochure promises. When batches fluctuate or special requirements come up, we pull in staff with decades of experience both in labs and on the production line. Troubleshooting questions—such as why a mixture failed to clear, or why the final color shade was off—often come down to minute details not visible in basic QC. We offer guidance based on both typical use and outlier cases, tracking customer results alongside our own batch logs to spot trends or potential new usage modes.

    Sometimes, end users discover applications we never anticipated. By keeping technical channels open, customer ideas often shape how we refine our drying steps, packaging, or even the way we run certain purification cycles. When feedback indicates a recurring challenge, the entire chain benefits, from shift operators in blending to clients using the material in all-night production campaigns.

    Challenges and Solutions: What Production Really Looks Like

    Even with careful planning, unanticipated problems occasionally arise. Our years in the business taught us that quick communication and honest reporting matter far more than sales talk. Tracing the source of off-odor complaints, for example, sometimes requires backtracking through weeks of raw material deliveries and reactor logs. Adjustments often involve both technical fixes and procedural changes, rather than simple replacements or returns.

    Scaling up a successful lab batch to industrial scale shapes our understanding. We have seen easy lab methods result in slow filtration, inconsistent yields, or blocked transfer lines at industrial volumes. Each upscaling lesson improves our process, yielding not just higher output but a cleaner, easier-to-use product for those downstream.

    Looking Ahead: Cultivating Expertise for the Next Generation

    Manufacturing is more than the sum of its output. Every day brings new regulatory, technical, or customer-driven requirements. Our response is to keep investing in training, from safety drills to hands-on analytical classes. The transfer of know-how from senior staff to newcomers does more for production reliability than new equipment alone. Process nuances, such as optimal reactor charge rates or ideal evaporation temperatures, do not live in manuals. They survive through lived experiences, mistakes analyzed, and successes shared. As environmental and performance standards move forward, so does our focus on continuous improvement across all aspects of 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate production and delivery.

    Conclusion: Perspective Built by Real-World Production

    Our story with 4-N,N-Dimethylamino-3-Methylphenyl N-Methylcarbamate is not just about chemistry. It’s about the value of hard-earned experience, the cycle of feedback between plant and customer, and the small details that set a quality product apart. Whether serving the coatings, specialty chemical, or other advanced manufacturing industries, we stand behind our work and the compound’s unique place in the toolbox—because we know every test, every improvement, and every direct conversation with users builds a better product for everyone.