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2,6-Dichlorobenzamide

    • Product Name 2,6-Dichlorobenzamide
    • Alias BAM
    • Einecs 220-864-4
    • 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
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    Specifications

    HS Code

    908513

    Name 2,6-Dichlorobenzamide
    Cas Number 2008-58-4
    Molecular Formula C7H5Cl2NO
    Molecular Weight 190.03 g/mol
    Appearance White to off-white solid
    Melting Point 146-148°C
    Boiling Point Unknown (decomposes)
    Density 1.47 g/cm³
    Solubility In Water Slightly soluble
    Pubchem Cid 17135
    Synonyms BAM, Dichlobenil acid
    Smiles C1=CC(=C(C(=C1)Cl)C(=O)N)Cl
    Iupac Name 2,6-dichlorobenzamide
    Storage Conditions Store in a cool, dry place

    As an accredited 2,6-Dichlorobenzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 2,6-Dichlorobenzamide, 100g, supplied in a sealed amber glass bottle with tamper-evident cap, labeled with hazard information and batch details.
    Shipping 2,6-Dichlorobenzamide is typically shipped in tightly sealed, chemical-resistant containers to prevent moisture and contamination. It should be packaged and labeled according to local and international hazardous material transport regulations, stored in a cool, dry place, and handled with appropriate protective equipment to ensure safety during transit.
    Storage 2,6-Dichlorobenzamide should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers. The storage area should be clearly labeled and protected from direct sunlight and sources of ignition. Ensure adequate ventilation to prevent accumulation of dust or fumes and use appropriate personal protective equipment when handling.
    Application of 2,6-Dichlorobenzamide

    Applications of 2,6-Dichlorobenzamide in Industrial Manufacturing

    2,6-Dichlorobenzamide is a specialty raw material with well-documented downstream industrial uses, primarily in highly regulated sectors. As a direct manufacturer, we serve customers who require strict batch consistency and compliance with local and international chemical standards for demanding end-use applications. Below we detail key downstream sectors where this material is integrated into specialized formulations, including practical guidance for process engineers and regulatory supervisors.

    1. Non-Selective Herbicide Formulation

    This compound is an essential intermediate for the synthesis of non-selective, residual herbicides used on railway tracks, industrial sites, and certain perennial crop plantations. Known for its stable amide linkage, it enters the downstream process as a controlled-release agent for soil applications where effective, long-lasting weed suppression is required. Formulators select it based on the environmental persistence profile regulated by local laws on agrochemical runoff.

    Industry compliance standards

    • EU Regulation (EC) No 1107/2009 for plant protection products
    • US Environmental Protection Agency (EPA) registration for herbicidal ingredients
    • OECD guideline No. 501/502 for pesticide degradation
    • China GB2763 Maximum Residue Limits for Pesticides in Food

    Typical usage ratio

    • 8%–22% weight of total herbicidal active content per formulation; dosage varies by soil organic matter, precipitation forecast, and target weed spectrum.

    Downstream process integration

    • Direct addition during pre-mixing of liquid suspension concentrate (SC) or dry granulation step for wettable powders (WP); requires close control of batch pH and chelating agent compatibility to ensure controlled release kinetics.

    Final product types

    • Pre-emergent herbicide granules
    • Residual herbicide wettable powders
    • Herbicidal suspension concentrates for railways and non-crop zones
    • Commercial ground-sterilant mixtures

    2. Forestry and Industrial Vegetation Management

    This material functions as a key active in vegetation control formulations for electrical utilities, pipeline corridors, and industrial forestry access roads. Engineers use it where long-term weed inhibition is necessary to prevent root damage to infrastructure. Careful calibration in the process prevents overapplication and ensures site-specific compliance with local forestry chemical rules.

    Industry compliance standards

    • International Organization for Standardization (ISO) 9001:2015 for process consistency
    • Environmental Protection Regulations for Utility-Scale Vegetation Management (varying by region, e.g., US EPA FIFRA, EU Directive 2009/128/EC)
    • Global GAP for forestry management, where applicable
    • ANSI A300 Part 7 (Integrated Vegetation Management)

    Typical usage ratio

    • 10%–18% active component per formulation; adjusted according to seasonal rainfall and site-specific runoff risk assessment.

    Downstream process integration

    • Integrated during the final blending phase of water-dispersible granule (WDG) manufacture; critical control point at temperature stabilization to prevent compound loss.

    Final product types

    • Vegetation management water-dispersible granules
    • Total vegetation control liquid concentrates
    • Tree growth suppressant mixes for utility right-of-way applications

    3. Reagent for Synthesizing Functional Polymers

    In polymer chemistry, the amide functionality makes it a valued moiety for modifying polyacrylamide and related hydrogels used in environmental sorbents and specialty membranes. Manufacturers benefit from its reactivity profile during copolymerization, conferring chlorinated resistance and matrix stability. Pilot and large-scale lots must align with polymer-grade impurity specifications.

    Industry compliance standards

    • REACH Regulation 1907/2006 (EU chemical substances)
    • ISO 9001 for specialty polymer manufacturing
    • ASTM D638 for mechanical performance testing of end-use polymers
    • EPA TSCA (for US industrial chemicals)

    Typical usage ratio

    • 0.5%–2% of polymer backbone monomer mass, depending on target crosslink density and functional group incorporation percentage.

    Downstream process integration

    • Bathed into aqueous solution during the controlled batch copolymerization stage alongside acrylamide or other vinyl monomers; the feed rate determines extent of amide integration into final polymer lattice.

    Final product types

    • Hydrogel water purification membranes
    • Industrial absorbent polymers
    • Chemically resistant filtration pads

    4. Synthesis Intermediate for Agrochemical Active Ingredients

    Chemical companies employ this substance as a synthetic building block in multi-stage routes for the preparation of advanced herbicide active ingredients, particularly those belonging to the substituted benzamide and phenylurea classes. The precision of upstream batch identity and minimum trace contamination is monitored by process chemists to meet strict downstream registration dossiers.

    Industry compliance standards

    • GMP for Active Pharmaceutical Ingredient (API) relevant if used in dual-use lines
    • ICH Q7 Guidelines for chemical manufacturing quality
    • EU Directive 91/414/EEC for the authorization of plant protection products
    • US EPA Registration under the Federal Insecticide, Fungicide, and Rodenticide Act (FIFRA)

    Typical usage ratio

    • 25%–50% molar equivalent in multi-step synthesis pathways; actual proportion tuned to optimize conversion yield, impurity profile, and ease of work-up in subsequent steps.

    Downstream process integration

    • Enters the process during the amide coupling stage of synthesis; in continuous or batch reactors, its addition rate is monitored to control exothermicity and avoid off-spec byproducts.

    Final product types

    • Advanced phenylurea herbicides
    • Substituted benzamide agrochemicals
    • Custom active chemical intermediates for contract farmers

    5. Soil Residual Weed Barrier Products

    The compound is blended with clay minerals and inert carriers to generate granules or pellets for professional soil weed barrier products. These help commercial landscapers and orchard managers ensure long-acting suppression without frequent reapplication. Manufacturing operations implement staged blending and particle size calibration for effectiveness and regulatory compliance.

    Industry compliance standards

    • EU Regulation (EC) No 1272/2008 (CLP Regulation) for mixture labeling
    • Japan Agricultural Chemicals Regulation Law
    • US EPA Label Review Manual for soil-applied pesticides
    • OECD Series on Pesticides No. 23: Guidance on Testing and Assessment of Persistence

    Typical usage ratio

    • 5%–15% by weight of finished granule or pellet, set according to manufacturer field efficacy trials and re-application interval.

    Downstream process integration

    • Compound incorporated during high-shear blending of carrier base, followed by extrusion or compaction into finished size; dosage monitored at feeder station to match registration requirements for field use.

    Final product types

    • Professional soil weed barrier pellets
    • Granulated weed control agents for orchards and forestry
    • Industrial weed-proofing substrate mixes
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    Certification & Compliance
    More Introduction

    2,6-Dichlorobenzamide: Direct from the Manufacturer’s Perspective

    Manufacturing 2,6-Dichlorobenzamide has put us face-to-face with the changing landscape of chemical synthesis. We have worked with this compound for decades, refining every step to deliver real and measurable consistency. The industry mostly refers to this product as BAM. It's a vital intermediate and sometimes makes headlines for both right and wrong reasons—often as a byproduct of herbicide breakdown, but also as a specialty tool for researchers, analytical labs, and companies committed to environmental monitoring.

    Hands-On Experience with 2,6-Dichlorobenzamide

    We have observed that the production of 2,6-Dichlorobenzamide goes far beyond standard blending or batch processing. The process begins with stringent control of raw materials: benzene, chlorine, and the right catalysts. Any shortcut here will compromise the resulting purity. The dichlorination at meta positions and precise amidation steps have challenged some manufacturers, leading them to accept inferior yields and off-color batches. For us, close oversight and robust reaction monitoring stand as the critical safeguards. Each kilogram must offer crisp, snow-white crystalline powder—no clumping, no discoloration. These details matter once the product moves into analytical or agricultural applications.

    We see more than just a chemical in every bag of 2,6-Dichlorobenzamide; we see the labor of careful filtration and dedicated drying, steps that are ignored with cost-cutting approaches. Much of the market confusion comes from variations in granularity, moisture content, and impurity load. Over time, we've invested in more advanced filtration and vacuum drying systems, resulting in lower trace residues. These marginal improvements proved essential for analytical end-users who can't risk instrument fouling or ambiguous results.

    Why Specification Matters in Practical Use

    Most suppliers list “purity” in big, bold print, but a deeper look unearths the real variables that concern buyers. In our own runs, we keep HPLC-assayed purity above 99.5%, ensuring minimal mono-chlorinated or tri-chlorinated benzamide byproducts. These trace contaminants often escape broad certificate declarations but can skew analytical controls, inhibit targeted reactions, or lead to erroneous environmental monitoring. Our facility targets a narrow, repeatable melting range. Visitors in our QC lab often remark on our avoidance of product agglomeration, which can arise from shortcut drying or loose sieve practices.

    Our experience with global clients—particularly European water laboratories—has shown us how small differences in analytical cleanliness impact downstream data. Poorly made 2,6-Dichlorobenzamide can introduce unidentified chromatographic peaks or raise baseline impurities, undermining legal evidence in contamination studies. On the other hand, agricultural users seem less sensitive to ultra-high purity, sometimes accepting minor colored inclusions or grain size disparities. Even so, we stick to a higher bar because regulatory standards continue to tighten, and cross-sector requirements overlap more each year.

    Applications Shaped by Manufacturing Quality

    Over the years, 2,6-Dichlorobenzamide has seen its identity shift. Originally known for use in herbicidal pathways—especially as a degradation product of dichlobenil—this compound is also valued as a reference material in laboratories, a building block in pharmaceutical syntheses, and a calibration standard for sensitive chemical analyses. In the European Union, it's tagged closely by water monitoring authorities as trace levels in drinking water trigger investigative protocols. Our role as a manufacturer means we’ve learned to deliver consistent, documented outputs to satisfy not just chemical buyers but regulatory reviewers and public health labs.

    Several industry partners use our 2,6-Dichlorobenzamide as a trace element in plant growth regulator research, owing to its stability and chemical inertness under standard soil and aqueous conditions. Some sectors benefit from our custom granule sizing, a hands-on touch that prevents clogs in automated handling and ensures reliable weighing accuracy, especially in micro-analytical contexts. The standard product—typically 25 kg drums of powdered solid—has evolved into a menu of offerings that align with practical realities at the lab bench, in the field, or on the factory floor.

    Direct Comparison with Other Benzamides

    We receive frequent questions about how 2,6-Dichlorobenzamide stands apart from mono- or tri-chlorinated isomers, or from related benzamide derivatives. From a synthetic chemistry standpoint, ortho- and para-chlorination make a world of difference in terms of both reactivity and downstream use. 2,6-Dichlorobenzamide brings less steric hindrance than 2,4- or 3,5-isomers. This small twist in structure translates into different environmental fate and transport in soil or water, which regulatory agencies spend considerable time tracking.

    On the analytical side, our pure 2,6-Dichlorobenzamide delivers single, sharp peaks in both HPLC and GC-MS assays. Lower grade products, or other isomeric benzamides, will result in signal overlap or retention time drift, skewing data during trace contaminant analysis. Practically, users tend to choose our model for its consistent melting point, low water affinity, and resilience under ambient shipping conditions—whereas some ortho-only chlorinated benzamides absorb moisture, cake within days, and complicate both handling and weighing.

    Downstream, buyers trading up from mono-chlorinated versions tell us about the savings in time and solvents. There’s less need for pre-dissolution filtration, fewer complaints of residue buildup on probe tips and sample pans, and no unexplained fouling in analysis instruments. Each difference marks the end of yet another headache from previous suppliers who didn’t keep a tight enough hand over their process variability.

    Maintaining Consistency and Meeting Today’s Standards

    The chemical sector rarely rewards shortcuts for long. Early on, we committed to a process that eliminates batch-to-batch drift and surprise properties. Sourcing fresh raw inputs, reactive flags on temperature changes, and manual checks have been part of our toolkit. Auditors see our archived batch samples and real-time digital logs; these are not just paperwork, but defenses against creeping impurity profiles or sudden process failures.

    For us, customer trust comes from repetition. Each drum and sample bottle has to mirror the last. We record and track every production batch, trace back to raw material lots and reaction conditions. Any deviation ends up under a microscope—literally and figuratively. We’ve learned the hard way that a single off-spec batch can erode years of confidence, generate expensive recalls, or contaminate thousands of downstream analyses. Safety isn't just a regulation; it’s practical economics.

    Market Shifts and Environmental Responsibility

    Recent years have put more pressure on manufacturers—like ourselves—to track and minimize any emissions of 2,6-Dichlorobenzamide in the process cycle. Regulatory authorities monitor both in-process stocks and effluent streams, asking for tighter controls than ever before. It's not enough to just confirm product purity; operators have to invest in closed-system transfers, proper vapor scrubbing, and secondary containment, ensuring nothing leaks into the surroundings. We invested in additional process-monitoring technology and expanded secondary filtration to minimize any chance of off-site migration.

    Commitments driven by local regulation are only part of the story. Our own workers benefit from this upgraded environment—cleaner air in the loading bays, better containment around mixing lines, fewer odor complaints on night shifts. Long-time staff have told us how much more tolerable process days have become since upgrading our scrubbing systems. We see firsthand the value of internal accountability, not just as compliance but as pride in our work area.

    Responding to User Feedback: Lessons and Trends

    Handling feedback becomes a constant learning tool for our technical team. Twenty years ago, clients barely commented on moisture sensitivity, dust-off, or elevated trace metals. Today’s researchers and agri-tech groups ask for fine-tuned moisture levels, lower dust fractions, and even deeper environmental impact statements. We started testing our own air emissions in-house, not just to comply, but to validate our workplace standards. Most direct users tell us the difference they notice is the ease of weighing and transfer, lower charring on hotplate evap tests, and accurate performance in method validation.

    Several academic researchers have collaborated with our chemists to examine long-term storage stability and breakdown under realistic temperature swings. These partnerships resulted in improved packaging: triple-sealed drums, moisture indicator cards, and upgraded ingress-resistant liners. In one example, a research team detected gradual hydrolysis in a competitor’s raw material but not in ours, attributed to micro-level differences in drying regime and sealed transport. Our subsequent technical bulletin explained why the production adjustments meant greater shelf stability for every user.

    Looking at the Demand across Sectors

    Environmental labs, government agencies, agrochemical formulators, and water quality researchers each approach 2,6-Dichlorobenzamide with different benchmarks. We've faced requests from laboratories demanding sub-parts-per-billion impurity levels, well beyond standard commercial targets. Agricultural customers look for bulk volumes, looking at pricing and batch consistency but rarely needing the exhaustive trace analysis. We recognized the need to separate product streams to serve both segments properly, using different production lines and custom documentation for each class.

    Global supply chain volatility, especially for solvent and chlorine feedstocks, keeps pressure on our operational planning. Recent disruptions taught us to double our safety stocks, rely less on single-source raw material suppliers, and build buffer into our drying and packaging lines. Shortages faced by competitor plants turned into new supply relationships because our customers appreciate the effort we put into not delaying shipments, even during market turbulence. We learned the hard way that reliability builds word-of-mouth loyalty, which in the chemical world means everything.

    Improving the Process: Small Details Yield Major Results

    Our team regularly reviews and tweaks steps in the run. Changes in filter cloth material, finer mesh sizes, or tuning solvent recycling have resulted in incremental improvements—sometimes missed by outsiders but critical for downstream processing and workplace safety. Technicians on our lines can spot a batch with a slightly off-white tint or faintly different scent, which flags us to review everything from raw input storage to temperature ramp rates.

    Frequent in-process analysis, digital tracking and human oversight together catch problems early. The investment in real-time moisture analyzers and finer particulate checks cut down post-shipment complaints. We implemented shorter harvest-to-pack times to lock in product dryness and purity at the last step, preventing caking during overseas freight or long-term storage.

    Hazards, Handling, and Shared Knowledge

    Years of hands-on experience taught us where things can go wrong in the handling and usage of 2,6-Dichlorobenzamide. Even experienced lab staff sometimes underestimate clumping risks in moist air or the formation of fine powder clouds without true dust control. Our on-ground experience led us to recommend specific transfer and weighing protocols for customer labs. Some customers called for improved user guides, so we assembled practical tips rather than just rehashing broad safety sheet language.

    Staff training makes a direct impact on both safety and batch quality. Our supervisors, drawn from decades in the field, teach new packers and QC staff how to read off-color signals before product leaves the floor. Monthly refreshers teach that even small gaps in drum sealing or mishandling during loading can compromise whole batches. We put these lessons straight into our customer technical support, closing the gap between plant practice and end-user reliability.

    Meeting and Anticipating Regulatory Shifts

    International regulations evolve fast, especially for compounds appearing in the environment or aquifers. More countries now require secure chain-of-custody from the first drum to the last gram of product consumed. Our team developed more robust batch-tracking and security seals to meet this expectation, working with both buyers and inspectors to ensure documentation matches reality at every hand-off.

    In past decades, loose guidelines allowed for wide variation among manufacturers. Today, the push towards transparency, source traceability, and certified purity leaves no room for outdated practices. We have adopted more comprehensive impurity profiling, providing not just a single purity figure but a full listing of co-contaminants, even ones present in microgram ranges. These disclosures are not marketing—downstream users depend on them to make decisions, develop methods, and defend findings before regulators.

    What Sets Us Apart in the Marketplace

    Feedback from returning buyers often highlights the directness of our technical communication and the accuracy of our documentation. Where competitors send boilerplate batch sheets, we give auditors unmasked raw data, laboratory logs, and shipment times down to the hour. These records helped resolve countless field investigations, prevented unnecessary recalls, and shortened customer troubleshooting blockades. Real transparency gives buyers and users the security that every batch aligns exactly with every promise.

    We found that simple things drive repeat business: answering calls with real technical staff, quickly resending certificates, sharing off-spec alerts before the customer detects them, and being honest about shipment hiccups. These traits, long practiced in old-school manufacturing, seem rare now but resonate in our customer base. It also makes product innovation easier—buyers feel comfortable asking for custom pack sizes, unusual purity specs, or alternative solvent residues, knowing they will get straight answers and workable solutions.

    Reflecting on the Bigger Picture

    The longevity of our 2,6-Dichlorobenzamide business did not come from being the biggest plant or offering the lowest price per kilo. Our success comes from daily attention to the smallest details, consistent staff experience, technical honesty, and a relentless drive to match every shipment to the last. We view each order as a test of our discipline—how precisely we blend, dry, pack, and document each batch, and how quickly we share findings with downstream labs, government offices, and researchers who rely on our claims.

    The story of this compound reflects broader changes in the specialty chemical sector: rising global standards, a shift towards ultra-trace contamination control, and the need for face-to-face communication between makers and users. Buyers want not only a pure product but also confidence in the history, handling, and real-world experience of those who produced it. That’s the challenge and satisfaction of our work—balancing chemistry, process safety, customer trust, and honest feedback, in an industry built on more than molecules alone.

    Each container of 2,6-Dichlorobenzamide we ship stands on the foundation of every lesson, trial, failure, and improvement we gained over years in the plant. As new regulations and uses come into focus, we press forward, committed to cleaner, safer, and better-controlled manufacturing. The users—scientists, regulators, formulators, and field workers—drive us to keep refining both the product and the process, ensuring each lot stands up to real-world testing and scrutiny.