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2,6-Dichloro-4-Methylnicotinamide

    • Product Name 2,6-Dichloro-4-Methylnicotinamide
    • Alias DCMNA
    • Einecs EINECS 695-670-1
    • 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

    679560

    Chemicalname 2,6-Dichloro-4-Methylnicotinamide
    Casnumber 111077-38-6
    Molecularformula C7H6Cl2N2O
    Molecularweight 205.04
    Appearance White to off-white crystalline powder
    Meltingpoint 153-156°C
    Solubility Slightly soluble in water; soluble in organic solvents such as DMSO
    Purity Typically ≥98%
    Iupacname 2,6-dichloro-4-methylpyridine-3-carboxamide

    As an accredited 2,6-Dichloro-4-Methylnicotinamide 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 sealed amber glass bottle containing 25 grams of 2,6-Dichloro-4-Methylnicotinamide, labeled with safety and handling information.
    Shipping 2,6-Dichloro-4-Methylnicotinamide is shipped in tightly sealed, chemical-resistant containers under ambient temperature conditions. The package is labeled according to international hazardous material regulations, including hazard and handling information. Transport complies with local and international guidelines for chemicals to ensure safety, stability, and integrity of the compound during transit.
    Storage 2,6-Dichloro-4-Methylnicotinamide should be stored in a tightly sealed container, away from direct sunlight, moisture, and incompatible substances such as strong oxidizers. Keep it in a cool, dry, well-ventilated area, ideally at room temperature. Label the container clearly and avoid exposure to heat or open flames. Follow local regulations and consult the safety data sheet for additional precautions.
    Application of 2,6-Dichloro-4-Methylnicotinamide

    Applications of 2,6-Dichloro-4-Methylnicotinamide in Industrial Manufacturing

    As a direct manufacturer of 2,6-Dichloro-4-Methylnicotinamide, we provide this specialty intermediate to downstream industries that demand controlled purity, reproducible performance, and strict compliance with sector-specific regulations in advanced synthesis processes.

    1. Agrochemical Active Ingredient Synthesis

    2,6-Dichloro-4-Methylnicotinamide acts as a key intermediate in the production of selective herbicide and pesticide molecules, especially for manufacturers engaged in the synthesis of chloronicotinyl insecticides. Our product ensures tightly controlled batch quality for consistent integration into multi-step organic synthesis routes, particularly where chlorinated pyridines form the central core of agrochemical actives. Our manufacturing customers use it at specific points to build molecular complexity while minimizing off-target impurities that compromise field performance and regulatory dossiers.

    Industry compliance standards

    • FAO/WHO Specifications for Pesticides
    • US EPA Registration 40 CFR Part 180
    • China GB 2763 Max Residue Limits for Pesticides
    • EU REACH (EC) No 1907/2006 for registered intermediates

    Typical usage ratio

    • 0.8–1.2 molar equivalents per batch, optimized based on target active synthetic yield and stepwise conversion rate

    Downstream process integration

    • Added during the nucleophilic substitution stage following pyridyl core construction, before downstream chlorination, methylation or amide hydrolysis as required by the target molecule

    Final product types

    • Thiacloprid technical concentrate (chloronicotinyl insecticide)
    • Acetamiprid active ingredient
    • Formulated agricultural pesticide solutions and granules
    • Pesticide bulk intermediates for further formulation

    2. Pharmaceutical Intermediate: Neonicotinoid-Like Drug Precursor

    Our material enters the supply chain of advanced pharmaceutical synthesis—primarily as an intermediate for the construction and functionalization of heterocyclic scaffolds similar to those used in neonicotinoid analogues under exploration for CNS indications. Pharmaceutical R&D and production teams value the reproducible physical characteristics and low residual solvent content that we consistently deliver, reducing revalidation and requalification needs during process scale-up and GMP validation.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP/NF and EP specifications for intermediates (as required by end-product monographs)
    • 21 CFR Parts 210/211 cGMP
    • National Pharmacopoeia specifications (JP, CP, Ph. Eur.) by customer region

    Typical usage ratio

    • 1.0 equivalent per synthetic run, with process optimisation allowing for 0.95–1.05 equivalent to control stage yield and minimize side reactions

    Downstream process integration

    • Charged during the mid-step amide bond formation or amide-to-amine conversion in multi-step active pharmaceutical ingredient (API) routes, ahead of downstream ring closure or functional group modifications

    Final product types

    • Advanced API intermediates for CNS-targeted compounds
    • Research-stage drug candidate libraries
    • GMP KSMs (Key Starting Materials) for investigational drugs
    • Pharmaceutical reference substances for intermediate analysis

    3. Fine Chemical Synthesis: Specialty Pyridine Derivatives

    Specialty and fine chemical companies incorporate this compound as a controlled intermediate for the development of pyridine-functionalized speciality materials with applications in electronics, dyes, and functional monomers. The consistent lot-to-lot purity and tightly controlled moisture levels from our manufacturing lines reduce the risk of downstream processing complications or batch-to-batch performance discrepancies in the creation of high-value specialty chemicals.

    Industry compliance standards

    • ISO 9001:2015 certified production and QC
    • Chemical substance registration under national chemical regulatory frameworks (TSCA, IECSC, EINECS)
    • Specialty chemicals quality agreements (as per customer contract)
    • Manufacturer’s Certificate of Analysis (CoA) for impurity profile

    Typical usage ratio

    • Ranging from 2% to 8% w/w relative to batch substrate, determined by targeted derivatization and reaction stoichiometry

    Downstream process integration

    • Fed into amide or heterocycle substitution reactions after initial aromatic chlorination, prior to stepwise side chain modification or coupling reactions

    Final product types

    • Functionalized pyridine monomers for polymerization
    • UV-active dye intermediates
    • Phosphorescent materials for OLED and display manufacturing
    • Electronic specialty chemical bases for semiconductor etchants

    4. Crop Science R&D: New Formulation Testing

    Crop protection R&D labs utilize our material to synthesize novel analogues and evaluate SAR (structure-activity relationship) for next-generation plant health solutions. Researchers require batch traceability and high analytical purity to accurately assess bioactivity and environmental fate in regulated trial fields or laboratory settings, which we deliver through end-to-end control of our raw material supply chain.

    Industry compliance standards

    • OECD Guidelines for Testing of Chemicals
    • GLP (Good Laboratory Practice) Certification
    • EU 1107/2009 Plant Protection Products regulation standards (for R&D samples)
    • Chemical research safety compliance under local authorities

    Typical usage ratio

    • 0.01–0.2 molar equivalents in model synthetic routes; adjusted to ensure sufficient analog generation for screening while minimizing reagent wastage

    Downstream process integration

    • Added in the intermediate construction stage during combinatorial synthesis, preceding efficacy testing or HPLC characterization in the R&D workflow

    Final product types

    • Lead crop protection candidate libraries
    • Reference analogues for SAR studies
    • Bioassay standard solutions
    • Regulatory submission samples for early-stage field evaluation

    5. Custom Synthesis: Contract Manufacturing for Chemical Innovators

    We supply this amide as a starting block for contract custom synthesis projects on behalf of multinational chemical companies and start-up innovators focused on proprietary molecule discovery. Our ability to offer scalable manufacturing, full traceability, and consistent impurity control enables partners to validate their own downstream routes without cross-contamination risks or supply interruptions experienced with multi-sourced intermediates.

    Industry compliance standards

    • ISO 14001:2015 (Environmental Management) for contract manufacturing
    • Full batch documentation and raw material traceability per customer’s quality management system (QMS)
    • REACH/TSCA chemical inventory compliance (depending on country of destination)
    • Customer-specific NDA and confidentiality protection

    Typical usage ratio

    • 0.5–5 molar equivalents per order, calculated by designed quantity for unique synthesis routes, adjusted per agreed reaction pathway with project partner

    Downstream process integration

    • Provided as a stage-specific intermediate, introduced at a designated point in the multi-step route as per customer’s technical package and process flow

    Final product types

    • Confidential new-to-market organic molecules
    • Scale-up intermediates for proprietary specialty chemicals
    • Pilot quantities for industrial validation
    • Custom substance samples for patent support or regulatory evaluation
    Free Quote

    Competitive 2,6-Dichloro-4-Methylnicotinamide prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

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    Certification & Compliance
    More Introduction

    2,6-Dichloro-4-Methylnicotinamide: Practical Know-How from the Manufacturer’s Floor

    Our Take on High-Purity 2,6-Dichloro-4-Methylnicotinamide

    Manufacturing specialty chemicals brings unique challenges, and producing 2,6-Dichloro-4-Methylnicotinamide is no different. Our experience tells us that control of raw materials, reaction conditions, and purification steps makes a real difference in the final product. Lots of customers rely on this compound for its performance in downstream synthesis, especially in the field of crop protection and pharmaceutical intermediates. Over the years, we’ve honed our process to deliver a consistent, high-standard material, batch after batch, so clients upstream don’t grapple with surprises in their synthesis or formulation work.

    We typically produce 2,6-Dichloro-4-Methylnicotinamide with a chemical purity of at least 99 percent, based on HPLC analysis, and we keep the moisture content well under 0.5 percent. Particle size and bulk density come under close scrutiny, so when end users expect free-flowing, easily handled powder, the material arrives as promised. Trace metal content and residual solvents also get checked and documented. We know from our clients—the right physical properties and reliably low impurity levels mean minimized rework and higher yields downstream, so we keep tight control over all these parameters.

    Bridging Lab to Plant: What Sets Industrial-Scale Production Apart

    Some buyers ask why production at scale turns out differently than what smaller suppliers or labs offer. Ton-level synthesis pushes raw material quality and processing equipment to the limit. For 2,6-Dichloro-4-Methylnicotinamide, factors like exothermicity, mixing efficiency, and solvent recovery all deserve close attention. Small-scale batches often look perfect on paper, but in the real world, impurities or color bodies can sneak in when parameters drift. Controlling temperature and solvent ratios day after day, we pick up patterns that point to improvements—never leaving quality to chance.

    From firsthand experience, setting up a pilot run reveals surprises unnoticeable in flask-scale syntheses. Our operators keep records of yield losses, filtration efficiency, and shifts in material color—things that hint at hidden side reactions. We train staff not only to watch instrument readouts but to recognize subtle changes in cake texture or odor. It’s these human observations, along with systematic data tracking, that refine the end product to meet customers’ real-world needs rather than simply chasing numbers on a spec sheet.

    Why 2,6-Dichloro-4-Methylnicotinamide Matters in Modern Synthesis

    Production plants and research labs depend on building blocks like 2,6-Dichloro-4-Methylnicotinamide because its molecular structure supports tough chemical conditions without decomposing. Chemists choose this compound as a key intermediate, particularly in the preparation of nicotinamide-based fungicides, active pharmaceutical ingredients, and specialty ligands. What matters most in these contexts isn’t just raw purity but batch consistency, freedom from cross-contamination with similar congeners, and chemical behavior under actual process conditions.

    In almost every custom inquiry, questions arise about scalability and reactivity. By maintaining detailed production logs and real impurity profiles, we provide data-backed reassurance. Clients scale up with confidence, knowing the compound they receive acts the same way every time, speeding up their process development and validation work. In our view, convenience and performance are worth little without long-term supply reliability, something only manufacturers can back up with complete process histories.

    Working with the Realities of Production: Safety, Waste, and Upgrades

    Handling this compound at a thousand-kilogram scale sheds light on practical safety and environmental considerations. 2,6-Dichloro-4-Methylnicotinamide requires careful ventilation and dust control in handling areas, as its crystalline form tends to generate airborne fines during charging and packaging. Many years on the factory floor showed us that dust collection design can’t be left to textbook rules; small details—gasket integrity, transfer chute smoothness, filter cleaning intervals—add up to measurable safety improvements. Our feedback loop with plant engineers led to better air handling and maintenance routines, which now we treat as non-negotiables.

    Process waste streams demand similar focus. Early on, we found that unoptimized solvent recovery caused unnecessary loss and increased effluent load, prompting investment in efficient distillation units. By tracking cumulative solvent use against recovered volumes, we’ve trimmed input costs and reduced hazardous waste disposal. This approach builds resilience against shifting regulations and rising input prices, while also keeping our environmental impact lower. These aren’t abstract ideals—we see bottom-line results and avoid future headaches by designing waste minimization into routine operations.

    Comparing Our 2,6-Dichloro-4-Methylnicotinamide to Alternatives: What Buyers Should Know

    Some buyers compare 2,6-Dichloro-4-Methylnicotinamide with similar nicotinamide derivatives or other functionalized pyridines, depending on their project goals. Several alternatives either lack the required substitution pattern or display less stability under process conditions. Chlorine atoms at the 2 and 6 positions strongly influence the reactivity, leading to valuable selectivity in further transformations—whether in nucleophilic aromatic substitution, coupling reactions, or direct amidation steps. The methyl group at position 4 further tailors the electronic properties, setting it apart from more common mono-chloro or non-methylated analogs.

    From production records and downstream customer feedback, we find that some generic versions on the global market fail to meet certain benchmarks around color, odor, and secondary impurity content. The production routes used by smaller-scale or less experienced synthesizers sometimes allow for unreacted precursors or unanticipated byproducts to remain—these escape casual analysis but can disrupt high-value syntheses. Because we run comprehensive batch analytics, including NMR, MS, and GC in addition to conventional wet chemistry, we spot and address deviation early.

    Differences between lots from us and other producers aren’t just academic. In multi-stage synthesis work, unnoticed impurities in core raw materials build up over steps, potentially causing unwanted side reactions or reducing final yield. We’ve encountered project teams who traced bottlenecks right back to subtle changes in input quality. Experience taught us that spending more effort on quality at source saves time and resources downstream, giving chemists greater control over their processes and fewer unpleasant surprises at scale-up or registration.

    Building Lasting Relationships in the Chemical Supply Chain

    As a manufacturer, we value open dialogue with clients. Our partners range from multinational agrochemical firms to niche contract synthesizers, each with distinct process needs and regulatory stakes. We routinely discuss project timelines, inventory planning, and compliance documentation, helping customers align procurement with their own schedules and audits.

    Long-term collaborations taught us not to rely on static product sheets but to listen for field reports—the realities faced during large-scale reactions, purification challenges, or evolving end-use requirements. These insights feed directly into production improvements. In one instance, a team flagged unexpected filter clogging at their plant. By adjusting our final drying conditions and refining our particle fractionation, we minimized fines and eliminated the issue in subsequent deliveries. This kind of direct feedback loop matters more than any theoretical claims of quality.

    Transparency and Traceability: More Than Just Buzzwords

    As scrutiny grows around supply chain risks and regulatory compliance, especially in pharmaceutical and agrochemical manufacturing, full transparency only becomes more important. Every batch of 2,6-Dichloro-4-Methylnicotinamide we ship carries complete traceability, from the original raw material supplier through production steps and release testing. Auditors and end customers ask for these records more frequently each year. Our investment in robust batch record systems and raw material evaluation reflects lessons learned through decades in the business—not just box-ticking but enabling root-cause investigation if the need arises.

    In the early days, we learned hard lessons about managing changes to processes. Even an unseen shift in a raw materials’ supply or a minor equipment modification ripples through the finished product. That’s why we maintain version control on process documentation and keep process chemists up to date with customer requirements. Lab-to-plant communication runs two ways: operators flag anomalies, and chemists develop corrective protocols, so both reliability and responsiveness remain high.

    Adapting to Shifting Regulatory and Quality Standards

    Compliance isn’t optional, no matter how efficient your process claims to be. Regular audits by customers and regulatory authorities reflect a broader trend: stricter quality expectations and more accountability for everyone in the supply chain. This requires documentation, but more importantly it demands a spirit of continuous improvement. For 2,6-Dichloro-4-Methylnicotinamide, clients often ask about residual solvent levels, trace metals, and statement of origin to fulfill REACH, FDA, or national crop protection standards. Staying ready for changing requirements makes us review not just final test data but ensure our whole production is locked down and auditable.

    Whenever guidance updates or new validation protocols drop, we roll these into our internal training and quality management system. Experience showed us that delays in adapting to new standards only cause disruption down the line. By keeping an ear to the ground on regulatory changes in primary markets, we deliver material that stands up to review, not just on paper but in real-world audit conditions.

    Investing in Process Innovation and Worker Training

    Remaining a reliable source for high-purity 2,6-Dichloro-4-Methylnicotinamide means more than running the old recipes. We invest in new reactor designs, waste heat recovery, and laboratory automation. These upgrades flow into better worker safety, more energy-efficient cycles, and tighter process control. Tapping into industry best practices keeps us nimble as customers push for higher standards and faster turnaround.

    Hands-on training for plant operators and laboratory analysts prevents many small issues from turning into larger ones. Workshops, procedural reviews, and process hazard analyses let us catch points of failure before they reach the customer. Workers share ideas about how to handle tricky filtration, new packing approaches, or quicker in-process sampling, and we put the best ideas into circulation. These investments show in the product: less downtime, fewer surprises, and consistently high-quality shipments.

    Supporting End-Users with Application Insights

    From the manufacturing side, we know 2,6-Dichloro-4-Methylnicotinamide acts as more than a chemical name or CAS number. For formulators and process chemists, small tweaks in production conditions or storage affect reactivity and purity. That’s why we openly discuss not just specifications but performance insights from other customer projects—always keeping confidentiality. Our team routinely collaborates on troubleshootings, including side-reaction inhibition, filtration difficulties, or scale-up guidance.

    Over years of partnership, we observed that proper storage—dry, low-light, and sealed containers—protects the product and ensures shelf life runs as expected. Customers sometimes overlook these practical steps, chasing after technical solutions for what turn out to be logistics issues. Sharing this practical know-how saves time and avoids unnecessary complications in synthesis or formulation.

    Another area often needing attention concerns compounding with sensitive actives or formulation agents. Even trace contaminants can affect reaction profile or stability in downstream use. Customers with specialized needs, such as low metal content for electronic materials or tighter limits on particular organics for medical projects, flag their requirements, allowing us to customize purification steps or offer targeted testing. This flexibility, backed by experience, leads to long-term trust instead of one-off transactions.

    Meeting the Future: Sustainability and Market Demands

    Manufacturers today work under tight scrutiny, not just from regulators but increasingly from customers who probe the sustainability of supply chains. This affects decisions across the 2,6-Dichloro-4-Methylnicotinamide lifecycle—raw material sourcing, process energy use, and packaging choices. We’ve shifted toward greener solvents and introduced heat integration to reduce fossil energy demands. Our procurement puts priority on consistent, vetted suppliers and renewable input streams where feasible.

    Operational efficiency alone doesn’t guarantee long-term relationships anymore. Buyers interested in sustainability ask deep questions on carbon footprint, local impact, and post-consumer packaging disposal. We answer with full audits and a willingness to adapt, bringing both experience and transparency to each project. The evolving market for high-purity intermediates means manufacturers stand out not by shortcuts, but by commitment to stable, responsible, and accountable production practices.

    Listening to the Industry: Continuous Feedback and Trusted Supply

    Many years in this business taught us that trust comes from performance, openness, and reliability. Whether the need is for 2,6-Dichloro-4-Methylnicotinamide in API synthesis, innovative agrochemicals, or specialty electronics, our job remains to keep delivering product that meets or exceeds what our partners expect. By seeing raw material sourcing, process execution, and delivery logistics through the eyes of both customer and maker, we align our offer with real industry needs.

    Feedback-driven change, honest conversation about limits and innovations, and investment in skilled people build the backbone of what sets established manufacturers apart. We’ve watched high-stakes projects succeed or struggle depending on reliability at the raw materials step. That responsibility shapes how we approach every batch, every shipment, and every discussion around improving outcomes for customers and society alike.