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N1-(2,3-Dichlorophenyl)-2-Chloroacetamide

    • Product Name N1-(2,3-Dichlorophenyl)-2-Chloroacetamide
    • Alias DCAC
    • Einecs 259-631-7
    • 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

    297718

    Productname N1-(2,3-Dichlorophenyl)-2-Chloroacetamide
    Synonyms 2-Chloro-N-(2,3-dichlorophenyl)acetamide
    Chemicalformula C8H6Cl3NO
    Molecularweight 254.50 g/mol
    Casnumber 68677-86-9
    Appearance White to off-white solid
    Meltingpoint 142-144°C
    Solubility Slightly soluble in water
    Purity Typically ≥98%
    Storageconditions Store in a cool, dry place, tightly closed
    Hazardstatements May cause skin and eye irritation

    As an accredited N1-(2,3-Dichlorophenyl)-2-Chloroacetamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sealed amber glass bottle containing 25 grams of N1-(2,3-Dichlorophenyl)-2-Chloroacetamide, labeled with product information and safety warnings.
    Shipping **Shipping Description:** N1-(2,3-Dichlorophenyl)-2-Chloroacetamide should be shipped in tightly sealed containers, protected from moisture and direct sunlight. Transport under cool, dry conditions, in compliance with all local, national, and international chemical transport regulations. Ensure appropriate hazard labeling and include a safety data sheet with the shipment. Handle with standard safety precautions.
    Storage Store N1-(2,3-Dichlorophenyl)-2-Chloroacetamide in a tightly sealed container, away from moisture and incompatible substances, in a cool, dry, and well-ventilated area. Keep away from direct sunlight, sources of ignition, oxidizing agents, and strong acids or bases. Clearly label the container and restrict access to qualified personnel. Always follow local regulations and institutional safety guidelines.
    Application of N1-(2,3-Dichlorophenyl)-2-Chloroacetamide

    Applications of N1-(2,3-Dichlorophenyl)-2-Chloroacetamide in Industrial Manufacturing

    N1-(2,3-Dichlorophenyl)-2-Chloroacetamide is a specialized chemical intermediate widely adopted in specific sectors of the agrochemical and specialty chemical industries. Our manufacturing focuses on supplying material that directly supports industrial customers employing it in value-added, compliant downstream processes. See below for details on established applications, integration into various manufacturing flows, industry standard requirements, realistic formulation ratios, and typical finished goods.

    1. Precursor for Selective Herbicide Synthesis

    Crop protection manufacturers rely on N1-(2,3-Dichlorophenyl)-2-Chloroacetamide in the multi-step synthesis of certain acetanilide-based herbicide actives. Its role supports targeted weed management chemistries for cereals and row crops. Producers implement controlled batch dosing to ensure traceability and consistency aligned with both global and country-specific regulatory expectations around residues and environmental behavior.

    Industry compliance standards

    • FAO Specifications for Plant Protection Products
    • EU Regulation (EC) No 1107/2009 for pesticide authorization
    • US EPA 40 CFR Part 180 (Tolerances and exemptions for pesticide residues)
    • ISO 9001:2015 Quality Management for agrochemical intermediates

    Typical usage ratio

    • Typically 2.5-9% by weight within the key condensation or acylation step. Actual dose adjusts based on synthesis yield, target concentration, and co-reactant purity to control impurity profile.

    Downstream process integration

    • Charged as a limiting reagent in the early stage of active ingredient (AI) synthesis before further chlorination and catalytic transformation steps.
    • Introduced post-initial ring formation, preceding work-up and purification phases critical for active content specification.

    Final product types

    • Pretilachlor active ingredient
    • Formulated herbicide emulsifiable concentrates (EC)
    • Granular and suspension concentrate herbicide products for commercial agriculture

    2. Intermediate for Veterinary Pharmaceutical Actives

    Veterinary pharmaceutical chemists utilize this compound as a key intermediate in the stepwise synthesis of certain anilide-based agents for livestock and companion animal medicines. Manufacturers document each batch for compliance with trace impurity limits prescribed for veterinary drug APIs, especially for markets with restricted chlorinated residue thresholds.

    Industry compliance standards

    • VICH GL3 (Stability Testing of New Veterinary Drug Substances and Medicinal Products)
    • China Veterinary Pharmacopoeia (specific for raw materials used in animal pharmaceuticals)
    • WHO Good Manufacturing Practices (GMP) for APIs
    • ICH Q7: GMP for Active Pharmaceutical Ingredients

    Typical usage ratio

    • Usage typically ranges from 1.2-5.7 molar equivalents in reaction mixtures, customized per target formulation and subsequent downstream functionalization algorithms.

    Downstream process integration

    • Added as an acyl donor in amidation stages, contributing to the pharmacophore structure of the finished API for further crystallization and formulation steps.
    • Undergoes controlled acid/base work-up and intermediate purification to meet veterinary-grade residue specifications.

    Final product types

    • Synthetic APIs for anti-parasitic or anti-inflammatory injections
    • Veterinary oral suspensions and pre-mixes involving anilide derivatives
    • Feed additive intermediates for livestock pharmaceutical products

    3. Building Block for Industrial Dye Intermediates

    Colorant industry producers use N1-(2,3-Dichlorophenyl)-2-Chloroacetamide as a precursor molecule in the manufacturing of chlorinated dye intermediates. Its introduction defines key chromophore properties, and process engineers closely manage input ratios to balance color yield, lightfastness, and regulatory compliance for commercial textile and polymeric dye systems.

    Industry compliance standards

    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals Manufacturing Restricted Substances List)
    • EU REACH Annex XVII (restrictions on certain dangerous substances in dyes)
    • Oeko-Tex Standard 100
    • ISO 9001 Quality Management Specific to Dye Manufacturing

    Typical usage ratio

    • Customary addition is 1-3% by mass of total batch, tuned according to downstream coupling agent excess and target chromogen output. Adjustment is documented per batch to meet shade and stability requirements.

    Downstream process integration

    • Reacted in condensation coupling steps with aromatic amines or phenols immediately preceding oxidation and isolation of dye intermediates.
    • Sampled in-process for compliance with purity and regulated impurity content before polymerization or dispersion formulation.

    Final product types

    • Chlorinated azo dye intermediates
    • Polymeric colorant precursors for plastics and fibers
    • High-performance textile dyes with improved fastness properties

    4. Synthesis of Specialty Agrochemical Additives

    Specialty additives manufacturers employ this amide compound to prepare tailored blends that enhance the stability and bioavailability of crop protection formulations. Its managed inclusion at precise levels supports compliance with increasingly strict maximum residue level (MRL) rules relevant to export crops and food safety regulations.

    Industry compliance standards

    • CODEX Alimentarius MRLs (Maximum Residue Limits)
    • Japan Ministry of Agriculture, Forestry and Fisheries Additive Standards
    • ISO 17025 for accredited laboratory testing
    • US FIFRA Labeling and End-use Product Registration Requirements

    Typical usage ratio

    • 0.5-2% w/w, depending on formulation type (suspension concentrate, wettable powder, flowable) and interaction with primary actives. Tuning based on required additive loading, downstream compatibility, and environmental persistence data.

    Downstream process integration

    • Blended into the pre-mix stage with adjuvants, dispersants, or solvents before homogenization and micronization.
    • Added to active ingredient carrier systems using continuous mixers to ensure homogeneity and regulatory batch traceability.

    Final product types

    • Advanced suspension concentrates (SC) for field applications
    • Crop protection wettable granules with performance-enhancing additives
    • Ready-to-use formulations requiring long shelf-life and agglomeration resistance
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    Certification & Compliance
    More Introduction

    N1-(2,3-Dichlorophenyl)-2-Chloroacetamide: A Closer Look from the Manufacturer’s Perspective

    Real Experience Working With Dichlorophenyl Chloroacetamide

    Years on the manufacturing floor have taught us a few core truths: consistency beats novelty, vigilance keeps business alive, and chemicals like N1-(2,3-Dichlorophenyl)-2-Chloroacetamide deserve genuine respect. Our team has handled this compound across multiple production lines, using direct feedback from seasoned technicians and demanding R&D teams. Instead of drawing from textbooks, our approach draws on the day-to-day realities—reactor temperatures, storage solutions, purification methods, and market requests—that build a reliable, repeatable product.

    N1-(2,3-Dichlorophenyl)-2-Chloroacetamide, sometimes simplified as 2,3-DCPC, has become a sought-after intermediate in both agrochemical and pharmaceutical synthesis. Handling every batch in-house allows our team to guarantee the solid phase purity and closely monitor trace byproducts. Lab staff analyze every reaction run; plant engineers tweak conditions to address last year’s yield bottlenecks. Plant operators have taught us more through their hands-on experience than a dozen journal articles ever could, especially when it comes to downstream purification and safe material handling. In short, the lessons we draw come from practice, not speculation.

    Structure, Appearance, and Material Handling

    Pure N1-(2,3-Dichlorophenyl)-2-Chloroacetamide appears as a white-to-off-white crystalline powder. This is a direct result of using high-quality inputs and controlling moisture at each stage. We maintain a controlled humidity and temperature throughout the process, as high-moisture environments promote clumping and degrade appearance. More importantly, keeping particles free-flowing reduces static and makes batch transfers both faster and safer for everyone.

    The molecular structure features a dichlorinated phenyl ring bound to a 2-chloroacetamide group. Technicians see the logical impact that these chlorine groups have: their presence can change downstream reactivity and alter how the molecule behaves in coupling reactions. In real synthesis work, these differences crop up in yield, solubility, and storage stability.

    Key Specifications and What They Mean in Production

    Most buyers want more than a general description. As a chemical producer, the top questions we get start with purity, stability, and how the product performs batch after batch. Our process delivers an assay value consistently above 99 percent, which minimizes process side reactions for the next user. Impurities—especially those related to unreacted acyl chloride or non-chlorinated phenyl derivatives—are kept firmly below one percent. These trace contaminants can complicate downstream synthesis, so we test each lot with HPLC and, for some clients, NMR or GC/MS, depending on the downstream requirements.

    Moisture content poses its own set of headaches. We’ve dealt with the fallout from poorly dried material on a few client lines: reaction stalling, decreased conversion rates, and extra purification steps. Because of that, drying cycles are conducted to achieve less than 0.5 percent moisture by Karl Fischer titration. Storing the compound in double-sealed bags inside lined drums has proved most effective for long-haul shipments and lean inventory cycles.

    What Sets 2,3-DCPC Apart from Similar Intermediates

    Comparing N1-(2,3-Dichlorophenyl)-2-Chloroacetamide to similar amides or less halogenated analogs, practical differences show up during both processing and subsequent reactions. The ortho and meta dichloro substitution provides increased hydrolytic stability compared to single-chloro or non-chlorinated phenyl acetamides. Those who run hydrolysis or nucleophilic substitution downstream experience far less degradation and side product formation. Less stable analogs require additional stabilizers or process tweaks, adding expense and complexity.

    The extra chloro group at the 2-position confers unique reactivity for further derivatization. Many of our customers in pharmaceutical and crop protection synthesis value the route flexibility this intermediate offers. We’ve tracked client feedback where running substitutions on differently halogenated amides changed not only the product profile but also the time to completion and overall throughput. Substituting with N1-(2,3-Dichlorophenyl)-2-Chloroacetamide has meant skipping extra steps or improving selectivity in their downstream chemistry.

    Many products with just mono-chloro or non-chlorinated phenyl rings lack this level of downstream utility. Their reactivity profile in nucleophilic aromatic substitution, for example, diverges enough to change yield and purity at scale. Those differences translate directly to greater efficiency and cost savings for users who know their chemistry.

    Usage in Real Production Lines

    Several end-users in agrochemical sectors use 2,3-DCPC as a core building block for fungicide and herbicide synthesis. Our product passes the scrutiny of multi-ton reaction scale-ups, not just lab-bench speculation. The compound’s clean profile and consistent melting point are what R&D chemists want, but the process engineers—constantly battling scaling issues—require even more: tight tolerance in both particle size and lot-to-lot reactivity.

    Pharmaceutical teams have requested tailored specifications, particularly for high-potency intermediates where any trace impurity increases purification costs downstream. Feedback circles back from client QA/QC departments, prompting us to adjust our recrystallization protocols or invest in higher-resolution analytical equipment. Experience shows that even small variances in starting material quality ripple forward, increasing costs well down the value chain.

    Application feedback from pilot plants and commercial reactors pointed us toward small but critical changes in filtration and drying. A sub-optimal filtration rate once held up a full day’s production at a client plant. Reworking particle distribution and tightening our control on endpoint dryness fixed that: less downtime, cleaner filtrate, fewer headaches for plant managers. These concrete changes only come from direct engagement with those who use the product, not from consultants separated from the true process challenges.

    Quality, Trust, and the Evolving Marketplace

    Buyers are increasingly wary of supply chains that stretch beyond a few direct relationships. Our company’s ability to demonstrate genuine oversight and process control draws the line between us—a true manufacturer—and any loose network of brokers or third-party traders. Decisions about process modifications and upgrades come directly from what happens in our plant, driven by feedback from people who use, handle, and ship the real chemical.

    Third-party testers sometimes show up to verify our results. We invite it. Years ago, this openness revealed a contamination issue missed by a batch QC check. Since then, we doubled our routine batch testing and put all purification steps under camera and log review. Even harsh feedback sharpens our practice and improves what lands on the customer loading dock.

    Market volatility and changing regulations only reinforce the need for manufacturing accountability. Our teams keep an eye on evolving international transport regulations—especially those that affect shipping of substances with chlorinated aromatic rings. Increased scrutiny around safety and waste disposal led us to revisit our solvent recovery and effluent control strategies. Engineers introduced improved wash stages and adopted closed-system transfers to reduce aromatic emissions and safeguard worker health, going beyond regulatory minimums.

    Storage Solutions Shaped by Real-world Constraints

    Chloroacetamide intermediates like this one do not tolerate heat and moisture well. Storing the product under inert gas has paid off many times, especially for shipments running through humid months or regions with irregular power supply. Our team trains warehouse staff in simple countermeasures: desiccant checks, routine drum inspections, and thermometer placement inside bulk containers for high-sensitivity batches.

    A few years back, we shipped a large order to a new client in Southeast Asia. Their warehouse, lacking climate control, faced ambient humidity swings from 40 to 85 percent. This resulted in partial caking of product after just a few weeks. We worked with them on three fronts: modifying packaging insulation, scheduling deliveries in cooler months, and providing guidelines for short-term use and storage. Problems like this rarely come up in controlled settings, so direct manufacturer-to-user dialogue remains the best line of defense.

    Process Adjustments and Practical Lessons

    Each production run has its own quirks. Some lots show slower filtration; others develop trace coloration hinting at minor impurities. Instead of ignoring these issues, we run immediate root-cause investigations—checking everything from incoming material quality to process temperature logs. Pulling a small team from different plant shifts usually helps. This hands-on approach saves time and makes incremental improvements that stick.

    Staff turnover in many facilities can hurt institutional knowledge. To counteract this, our senior operators host regular in-house workshops, demonstrating process nuances, troubleshooting common error patterns, and sharing stories around “problem runs.” This kind of on-the-ground expertise can’t be outsourced or replaced by software, and it forms the backbone of consistent product quality.

    Product Consistency: What Customers Report

    Direct feedback tells a more vivid story than any product brochure. One of our larger agrochemical clients reported a significant drop in their batch failures after switching to our 2,3-DCPC. They noted fewer issues with foaming, easier separations, and more predictable reactor behavior. This saved them days of effort per month, translating to lower costs and increased market responsiveness.

    Some pharmaceutical clients, running pilot lines for a new active ingredient, encountered challenges with competitive materials—all attributed to contaminated inputs and off-spec melting points. After swapping to our material, they reported sharper, more repeatable yields and less batch-to-batch variance. Real results matter more than hypothetical advantages.

    Future Outlook: Responding to Market and Regulatory Shifts

    As the demand shifts and regulatory scrutiny grows, we invest in upstream documentation and downstream transparency. We continually refine our process control systems and documentation, ensuring full batch traceability and ready-for-inspection records. Our commitment to compliance goes beyond paperwork; it means routine internal audits, surprise QA spot-checks, and rapid implementation of lessons learned from both near-miss incidents and successful runs.

    Green chemistry pressures will only intensify over the next decade. We’ve started tracking our energy usage and solvent recovery rates for all chlorinated intermediates. Recent process upgrades have reduced waste output by nearly a third, mostly by recycling process water and recuperating solvents once considered too “dirty” for reuse. Plant engineers redesigned key steps to use more efficient catalysts, slashing both material costs and environmental impact. Teams openly share data, breaking down performance targets by shift—everyone watches improvements in production statistics, not just management.

    Customer Relationships: Long-term Dialogue over One-off Transactions

    Decades of manufacturing experience convinced us to prioritize long-term relationships. Clients benefit from transparent conversations about their process goals and challenges—helping us anticipate needed process adjustments and component shifts. Several partnerships started from troubleshooting a single shipment or working through an on-site issue; these often evolve into ongoing collaboration with mutual benefit.

    Supporting R&D clients by offering small lot split deliveries, technical discussions, or tailored particle size distributions pays off for everyone. Adjustments in synthesis, purification, or analytics improve our internal process while also advancing the customer’s project. This collaborative feedback cycle has solved more real problems than generic sales or marketing promises ever could.

    The Role of Skilled Operators and Technical Expertise

    Technology advances quickly, but the skill of plant operators—recognizing abnormal foaming, controlling process rate, identifying hazardous volatility—has no replacement. We trust the instincts of those monitoring the reactor at 3AM or checking sample color and texture by hand. These details may seem small to outsiders, but they differentiate the best plant runs from inconsistent or failed attempts.

    We invest in ongoing skills training, especially for handling chlorinated organics safely and efficiently. Processes that look flawless on paper unfold differently on the plant floor, where unforeseen reaction intermediates, off-spec feedstock, or minor temperature shifts cause real-world impact. Sharing lessons learned across shifts, reviewing past incidents in detail, and promoting safety as a shared value keeps our operation strong.

    Straight Talk on Sourcing and Accountability

    Plenty of marketplace actors describe the same compounds with the same reference numbers, yet sourcing from a direct manufacturer means every kilogram derives from a process under internal control. We welcome site visits and technical audits, and we back product integrity with transparent record-keeping and immediate corrective action whenever new issues surface.

    Clients place disproportionate trust in direct manufacturers for a good reason: outcomes depend on the actual molecules, not claims found in third-party data sheets. Anyone can broker a shipment. Only hands-on manufacturing teams bear responsibility for every step—from procurement of starting materials to final drum loadout. Accountability and quality control are not marketing catchwords for us; they represent daily decisions with far-reaching consequences for everyone in the supply chain.

    In Summary: Why N1-(2,3-Dichlorophenyl)-2-Chloroacetamide Matters

    Manufacturing N1-(2,3-Dichlorophenyl)-2-Chloroacetamide means more than filling out technical data sheets. It demands a detailed appreciation of its structure, purity, reactivity, and safety implications at every stage. All practical experience shared here highlights what matters most—batch consistency, clear material appearance, on-time delivery, and responsiveness to specific industry problems. Each lesson drawn from years of production reinforces our belief that quality and integrity originate on the plant floor, not just from management decisions or regulatory pressure.

    More than just molecules in a drum, 2,3-DCPC represents the combined effort of operators, engineers, analysts, and feedback-driven improvements that translate into better chemistry, stronger relationships, and safer outcomes every day. True value comes from sustained diligence—on the line, in the lab, and through honest dialogue with those who rely on this key intermediate in their own processes.